Document kg11p8z5kXxZr7V5K2VwdQ7y
PHYSICAUCHEMICAL PROPERTIES
TEST SUBSTANCE
Identity:[2-(N-Ethylperfluoroocetsaunlfonamido) ethylacrylate;may also be referredtoas B1228, D-1, ETFOSEA, or FX-13.(2-Propenoicacid,2[ethy[lheptadecafluorooctyl)slufonyl]amnio]ethylester,CAS # 423-825)
Remarks:Materiiaslan ambersolid.
Remarks:Reportstatetshatsamplepuritiys99% ormorebasedon information suppliedby Sponsor. The pudtyfidentiotfythe testsubstance cannot be substantiated.As presentedinthe reportt,he structuraflormulaindicatesthat "pudt)('cannobte assigned as "99% ormore".The lotnumber was 101.
METHOD
Water Solubility: OECD 105, Shake FlaskMethod Hydrolysis as a Function of pH: OECD 111 Dissociation Constants inWater: OECD 112, Spectrophotometdc Method PartitionCoefficient(1-octanoltwaterb)y HPLC: OECD 117 Vapor Pressure: OECD 104, Gas SaturationMethod
GLP (Y/N): Yes Year completed: 1994 Remarks: Detailfsromthesestudiecsan be foundinone reporetntitle"dD:eterminatiofn Physico-chemicalPropertiesofSample D-1".
RESULTS
Water Solubility0:.89 mg/L at250C Hydrolysis as a Function of pH: At 25"C the reactionrateconstantsofthe test. substance at pH 4,7,and 9 were 0.017,0.020,and 0.046 day-'withhalflife times of42, 35,and 15 days, respectively. Dissociation Constants inWater: No dissociatiocnonstantsofthetest substance were determinedbecause the spectraofthe testsubstance at differenptH values didnotsignificantdliyffefrrom one another. PartitionCoefficient:K. > 6 Vapor Pressure: 6.0x 10-3 Pa at 250C
Remarks: The studyresultisndicattehdatthetestsubstancweas composed of differenctomponents which,insome cases,yieldedresultsdifferenftrom each other.
Water solubility:Itissuggested thatthe water solubilitoyf each component ofthe testsubstance isdifferenftrom the others. Hydrolysis as a functionof pH: The chemicalstructureofthe test substance suggeststhatthe reactionrateofeach component issimilarto each other. Dissociation constants Inwater: The water solubilitoyfthetest substance istoo low tofindionizedand unionizedforms of thetest substance. The laboratorydidnot investigatietsconstantsfurtherby eitherthe titratimoenthod orthe conductometdc method inthe OECD Guidelinebecause both methods are considerednot suitablefor substances withsuch a low solubilityH.owever, the chemical structureof the testsubstance suggeststhatitsdissociatiopnotentiailsvery low. ParitioncoefficientT:he testsubstance was detectedas ten peaks or more by HPLC. Vapor Pressure: The chemicalstructureofthetestsubstance suggests thatthe vapor pressureofeach component isdifferenftrom the others.
DATA QUALITY
Water Solubility ReliabilityK:limischranking2. The reportstatesa purityofthe substance of"99% or more".Since the purity/identoiftythetestsubstance cannot be substantiatedt,he statedaverage solubilitoyfthe testsubstance isnotdefensible.As presented,the structural formulaindicatesthat"pudt)('cannobte assigned as "99 % or more".Since the method of detectionisnot compound specifica,nd was not validatedi,tcannot be determined ifthe peaks detectedinthesample chromatograms do indeed adse from the testsubstance.
Hydrolysis ReliabilityK:limischranking2. Withoutthe purity/identintfyormatioonn thetestsubstance and compound specificanalyticatlechniques,the experimentalldyetermined rateconstant cannot be substantiated.
Dissociation Constants inWater Reliability:Klirriisrcahnking1. Potentialfora compound ofthe givenstructureto ionizeatany pH islow.
Octanol/Water PartitionCoefricient
ReliabiliKtlyi:miscrhankin3g. Since thepudty/identiotfythetestsubstancecannotbe substantiatedt,hestated partitiocnoefficienitsnotdefensible.Itwas notestablishedinthisstudywhat the retentiotnime(s)ofthetestsubstance(si)s.The UV detectorisnotcompound specifiacnd ithas notbeen definitivelsytablishetdhatthe>10 peaks assigned as belongingtothetestcompound areactuallryelatedto thetestmaterial. Furthermore,ithas notbeen establishetdhatthismethod fordeterminingthe octanol/wateprartitiocnoefficieanptpliestofluorochemicaclompounds similarin structurteothe testmaterial.
Vapor Pressure ReliabilityK:limischranking3. The pudty/identiotfythetestsubstancecannotbe substantiatedT.he chromatogram ofthe testsubstancehas a distinctdliyfferenptrofiltehatthatof the standard.Ithas notbeen establishetdhatunder theconditionsofthe experimentthe nitrogenpassed overthesubstancehas become saturatedwith gas phase testsubstance.The referencecompound (benzoicacid)has a measured vaporpressure- 16 timesthatdeterminedforthetestsubstance. It would be appropriatetochoose a referencecompound witha vapor pressure closertothatdeterminedforthetestcompound The lowermolecularweight constituentwsillhave a highervapor pressurethanthe n=8 component.
REFERENCES Study conductedattherequestof Sumitomo 3M LTD by MitsubishCihemical SafetyInstitutLetd.,Yokohama, Japan
OTHER Submifter: 3M Company, EnvironmentalLaboratoryP,.O. Box 33331, St.Paul, Minnesota,55133
Last changed: 5/22/00
M.S.I.Report No. 4B2234B227 Determinationof Physico-chemicalPropertiesof
Sample D-1
Submittedto: SUMITOMO 3M LTD.
Prepared by: MitsubishiChemical SafetyInstitutLetd.
February 14, 1996 (Theoriginarleportwas submittedon August 8, 1994)
Determinationof Physico-chemicalPropertiesof Sample D-1 (Englishversion)
Study No.: Study Title: Sponsor:
4B223-4B227 Determinationof Physico-chemicaPlropertieosfSample D-1 SUMITOMO 3M LTD.
This testwas conductedin Yokohama Laboratoryof MitsubishiChemicalSafety InstitutLetd.,1000 Kamoshida-cho,Aoba-ku, Yokohama 227, Japan.
ThisreportistheEnglishversionof theoriginalw,hich was writtenin Japanese. The undersignedherebydeclarethatthisversionfaithfulrleyflecttsheoriginarleport tothebestofour knowledge.
Translatedby
Date: ShiroIWAMI, M.Sc. EnvironmentalScienceDivisionof theYokohama Laboratory
Approved by
-----------------D-at-e-:J-i-TTOoRIYA, c. Head of theYokohama Laboratory,
-------
TestingFacility
Study No.: 4B223-4B227
Study Title: Determinatioonf Physico-chemicaPlropertieosfSample D-1
Sponsor:
SUMITOMO 3M LTD.
Testing Fa@cflity: Yokohama LaboratoryM,itsubishCihemicalSafetyInstituLtted.t (M.S.I.), 1000 Kamoshida-cho,Aoba-ku,Yokohama 227,Japan(telephone0:45-963-3541)
t ne conwany'sname was changedon October1,1994. (ne formername:Mitsubishi-kaIsnesitituotfeToxicologicaanldEnvironmentaSlciences)
FacilityManagement: JunTORIYA, B.Sc. Head oftheYokohama Laboratory
Sealeddate:August 8, 1994
Study Management:
TadayoshiSHIGEOKA, Ph.D.
Sealeddate:August 8, 1994
Chief ResearchScientist, EnvironmentalScienceDivisionoftheYokohnma Laboratory
Study Director:
Takemi NAKANOME, B.Sc.
-Sealeddate:August 8, 1994
SeniorResearchScientist, EnvironmentalScienceDivisionof theYokohama Laboratory
Experimental Scientist:
Akiko TAKEDA, M.Sc.
Sealeddate:August 8, 1994
EnvironmentalScienceDivisionof theYokohama Laboratory
Contents
page Abstract.................................................5............
1 TestSubstan.c.e.........................................6............ 1.1 Identificat.i.o.n.....................................6............ 1.2 Source............................................6............
2 WaterSolubili[tSytudyNo. 4B223].............................7............ 2.1 Materialasnd Methods...................................7............ 2.2 Resultsand Discussio.n.................................9............ Tablesand Figures........................................27...........
3 Hydrolysiassa functioonfpH [StudyNo. 4B224]....................1.0........... 3.1 Materialasnd Methods..................................1.0........... 3.2 Resultasnd Discussio.n.................................1.4........... Tablesand Figures........................................35...........
4 DissociatiCoonnstantisnWater [StudyNo. 4B225]....................16........... 4.1 Materialasnd Methods..................................1.6........... 4.2 Resultasnd Discussio.n.................................1.8........... Figure................................................5.0..........
5 PartitioCnoefficie(n1t-octanol/wabtyerH)PLC Method(StudyNo. 4B226]....19. 5.1 Materialasnd Methods..................................1.9........... 5.2 Resultsand Discussio.n..................................21........... Figures...............................................5.1...........
6 Vaporpressur[eStudNyc@4.B227]..............................2.2........... 6.1 Materialasnd Methods..................................2.2.......... 6.2 Resultsand Discussio.n.................................2.6.......... Tablesand Figures..................................*...........@.5.3...........
(59pagesinall)
Abstract
Study No.: Study Title: Sponsor:
4B223-4B227 Determinationof Physico-chemicalPropertieosf Sample D-1 SUMITOMO 3M LTD.
1. Test Substance
Name:
Sample D-1
Chemical name: 2-[N-ethyl-N-perfluoroa(lCk-y1l-8)sulfonylamino]
ethylacrylate
Structuraflormula:CnF2n+IS02N(C2H5)CH2cH20C(.O)CH=CH2
n=1-8 (n=8: approx.78 %; n=1-7: approx.21 %)
2 Water Solubilit[yStudyNo. 4B223]
2.1 Methods: No. 105 @ "Water Solubility"(Flask Method) 2.2 Results: Water solubUityof the testsubstancewas 0.89 mg/L at 25 C.
3 Hydrolysis as a function of pH [Study No. 4B2241 3.1 Methods: No. 111 @ "Hydrolysis as a function of pH", (testingat pH 4, 7, and 9 at250C) 3.2 Results: At 25 0C reactionrateconstantsof the testsubstanceatpH 4, 7, and 9 were 0.017, 0.020, and 0.046 day-I with half lifetime of 42, 35, and 15 days, respectively.
4 Dissociation Constants in Water [Study No. 4B225] 4.1 Methods: No. 112t "DissociationConstants in Water" (Spectrophotometric Method) 3.2 Results: No dissociationconstantsof the testsubstance were determined because the spectraof the testsubstance at differentpH did not significantldyifferfrom one another.(But the chemical structureof the testsubstance suggests that its dissociationpotentialis very low.)
5 PartitionCoefiriden(t1-octanol/watebry) BPLC Method [StudyNo. 4B2261 5.1 Methods: No.117@ "Partition Coefficient (n-octanol/water),High Performance Liquid Chromatography (HPLC) Method" 5.2 Results: The testsubstance was detectedas ten peaks or more by HPLC. The log Pow value of the main component was more than 6.
6 Vapor Premure [Study No. 4B227] 6.1 Methods: No. 104@ "Vapor Pressure Curve" (Gas SaturationMethod) 6.2 Results: Vapor pressureof the testsubstancewas 6.0 X 10-3 Pa at 25" C.
t Number in OrganizationforEconomic Cooperationand Development (OECD) Guidelines for Testingof Chemicals
Test Substance
1.1 Identifi*cation
1)Namet: Chemical namet:
Sample D-1
2-[N-ethyl-N-perfTuoroalk=yl1(-C8)sulfonylamino] ethylacrylate
2)StructurfaolrmulatC:,,F2,,I+S02N(C2H5)CH2CH20C(=O)CH=CH2
n=1-8 (n=8: approx.78 %; n=1-7: approx.21 %)
3)Physico-chemicaplroperties:
Solubilityt:
water: acetone-' DMSO:
insoluble 50 % ormore insoluble
Meltingpointt: 27-42 *C
Boilingpointt: approx.150*C (1nim Hg)
t providedby thesponsor
1.2 Source
I)Batcht:
Lot No. 101
2)Supplier:
Misao SHIBA, SUMITOMO
3)Suppliedquantityta:pprox.100 g
4)Purityt:
99 % or more
5)Appearance:
amber likewax
iM LTD.-
t providedby thesponsor
2 Water Solubilit[yStudyNo. 4B223]
A solutionis a homogeneous mixtureof differenstubstancesin a solvent.The particlesizesof thedispersedsubstancesare of the same magnitude as moleculesand ions.Therefore,the smallestvolumes which can be obtainedfrom a solutionare always ofuniform composition.
Solubilitiynwater isa significanptarameterbecause 0 the spatiaalnd temporalmovement (mobilityo)f a substanceis largely
determinedby itssolubilitiynwater;
0 water solublesubstancesgain ready accessto humans and otherliving organisms;
0 theknowledge of thesolubilitiynwaterisa prerequisitfeortestinbgiological degradationand bio-accumulatioinnwawr and forothertests.
2.1 Materialsand Methods
This study was conducted in accordancewith the standardprocedure "Water Solubility("FlaskMethod) in the OECDT Guidelinesfor Testingof Chemicals No. 105 (1981).This method issummarized asfollows:
The testsubstance(Solidsmust be pulverized.i)s dissolvedin water at a temperaturesomewhat above'thetestt'emperature.When saturatioinsachieved the mixtureiscooledand kept at the testtemperature,stirrinags long as necessaryto reach equilibriumS.ubsequently,mass concentratioonf the testsubstancein the aqueous solutionw,hich must not containany undissolvedparticlesi,sdeterminedby a suitableanalyticamlethod.
t OrganizatiofnorEconomic C@operatioannd Development
2.1.1 Reagents
n-hexane: acetone:
Wako Pure Chemical IndustriesL,td., guaranteedreagent Wako Pure Chemical IndustriesL,td., guaranteedreagent
2.1.2 Apparatus
incubator:
TaitecCorporation, model M-100
centrifugasieparator: HitachiLtd.,
model SCT 15B
gas chromatograph(GC):Shimadzu Corporation,model GC-14A
integrator:
ShimadziL.Corporation,-.modCe-lR3A,
2.1.3 Testprocedure
Two hundremdilligraomfsthetesstubstanwcaesdissolviend10mL ofacetone in an Erlenineyerglassflask.The solventwas evaporatedwithstirrintgo deposita thinlayerof thetestsubstanceonto innersurfaceof theflask.The residualsolvent was thoroughlyremoved by stream of nitrogengas . Four hundred milliliteorfs distillewdater was added to the flask,which was then shaken at 400.2*C over a 3-day period.A 50-mL aliquotof thewaterphase was sampled after1,2, and 3 days.The aliquotwas subsequentlyshakenat250.2'C for 1 day or more toreach equilibriumof dissolutioonf thetestsubstance.
The operationby theabove procedurewas repeatedonce more.
2.1.4 Analytical methods The concentrationof the testsubstancewas measured by gas chromatography
(GC). Priorto GC analysise,achequilibrateadliquotwas treatedasfollows:
The aliquotwas centrifugeadt 4000 rpm (3000 x g) at 25*C. Sodium chloride,1.2 g, was dissolvedin thesupernatantt,o which 4 mL of n-hexanewas then added They were shaken for 1 minutesa-nd then centrifugeadt4000 rpm (3000 X g) at 25* *C. The n-hexanephase (supernatantw)as analyzedby GC under the followingconditions:
GC conditions
column:
Shimadzu Corporation,wide bore column CBP20-W25-100,
0.53 mm i.d.2,5 m inlength
temperature: column: 120*C; injector2:00*C; detector2:40*C
carrier:
nitrogengas (flowrate:20 mL/min)
detector:
electroncapturedetector(ECD)
injectiovnolume: 3 pL
As informedby the sponsor,thecomponents ofthe testsubstancedifferinlength of the perfluoroalkyclhain (see'1.1)I.n fact,the testsubstancewas detectedas fourmajor peakswithretentiotnimeof 3.8,4.5,5.1,and 6.0minutesby GC under the conditionsdescribedabove.Therefore,the concentratioonf the testsubstance was based on totalareaof thefourpeaks.
2.1.5 Calibration curve Standardsolutionsof the testsubstancewere preparedto make concentrationsof
0, 0.2, 1.0,and 5.0 mg/L inn-hexane.These standardsolutionwsere analyzedby GC under the conditionsd.escribe@d-i2n,1.4,.Thetgtalpeak area of the fourpeaks
was calculatedand plottedagainstthe concentratioonf the testsubstance.The
calibratiocnurveyieldeda straighltinepassingthroughtheoriginand itscorrelation
coefficienwtas calculatetdo be 0.999 by the leastsquare method describedin
JapaneseIndustriaSltandards(JIS)Z 9041-1968.
[Figure2.1and Figure2.2)
At measurement of the testsubstanceconcentrationt,he standardsolution with 1.0 mg/L was analyzed.Concentrationineach testsample was calculatefdrom ratiooftotalpeak areaforthesample tothatfor thestandardsolution.
2.1.6 Recovery An acetonesolutionof the testsubstancewas preparedto make a concentration
of 483 mg/L. Two milliliteorfsthesolutionwas dissolvedin 1000 mL of distilled water(finalconcentratioonf thetestsubstance0:.97 mg/L).
Sodium chloride,1.2g, was dissolvedin4 mL of thewatersolutiont,owhich 4
mL of n-hexanewas then added. They were shaken for 1 minutesand then
centrifugeadt4000 rpm (3000X g) at25 *C. The concentratioonf thetestsubstance
in the n-hexane phase (supernatantw)as measured by GC under the conditions
describedin 2.1.4toevaluaterecovery.
[Table2.2 and Figure2.3]
The recoveryof the testsubstancewas 94 %. The concentrationosf the test substancereportedbelow were correctedby thisfactor.
2.2 Resultsand Discussion
Average watersolubilitoyf thetestsubstancewas 0.89 mg/L at25 *C. [Table2.1 and Figure2.4.1toFigure2.4.3]
The component withGC retentiotnime of 4.5 minuteswas rathersolubleinwater compared with the others.Dissolutioonf thiscomponent at40 *C reachedequilibrium within1 day.
Itissuggestedthatwatersolubilitoyf each component of the testsubstancediffers from one another.
3 Hydrolysisas a Functionof pH [StudyNo. 4B2241
The testingof substanceforhydrolysisisrelevanttotheirpersistenceH.ydrolysis isone of themost common reactionscontrouingabioticdegradationand istherefore one of themain degradationpathsof substancesintheenvironment.
A procedureto determinehydrolysisisimportantalsoinindicatinwghether other testingshouldbe carriedout on a parentcompound or itshydrolysisproduct.Itisthe degradationproductsthatarecrucial.
Hydrolysisbehaviorneeds to be examined at pH valuesnormallyfound -inthe environment(pH 4-9)and under more acidiccondition(spH 1-2)for physioloigcal purpose.
Surface-controllerdeactionscan sometimes predominate over bulk solution hydrolysise,specialliynthesoilenvironment.This may resultindifferendtegradation ratesthan would be predictedfrom thismethods based upon ratesin homogeneous solutions.
3.1 Materialsand Methods
This studywas conductedinaccordancewith the standardprocedure "Hydrolysis asa functionof pH" intheOECD GuidelinesforTestingofChemicalgNo.,l11 (1981).
In theenvironimentc,hemicalsusuallyoccur in dilutesolutionw,hich means that water ispresentinlargeexcess,and thereforet,hekineticosfhydrolysisare generally pseudo-firsotrderatfixedpH and temperature.
The hydrolysirseactionmay be influencebdy acidicor basicspeciesH30+ (H+) and OH-, inwhich caseitisreferredtoasspecifiaccidorspecifibcase catalysis.
The concentratioonf thetestsubstanceisdeterminedas a functionof time.The logarithmsof the concentrationasre plottedagainsttime and theslopeof theresulting straightline(assumingfirst-ordeor pseudo-firsotrder behavior)gives the rate constant.
3.1.1 Reagentsand water
acetone: n-hexane: sodium chloride: sodium hydroxide:
Wako Pure Chemical IndustriesL,td., guaranteedreagent
KishidaChemical Co.,Ltd.
guaranteedreagent
JunseiChemical Co., Ltd.,
guaranteedreagent
JunseiChemical Co., Ltd.,
guaranteedreagent
monopotassium phosphate: Wako Pure Chemical IndustriesL,td., guaranteedreagent
monopotassium citrate:NacalaiTesque Inc.,
extraPure reagent
boricacid: potassiumchloride:
Wako Pure Chemical IndustriesL,td., guaranteedreagent
JunseiChemical Co., Ltd.
guaranteedreagent
water:
deionizedwaterpurifiedby MiUi-(@9
3.1.2 Apparatus
,incubator: pH meter: gas chromatograph(GC):
integrator:
TaitecCorporation,
model M-100
Toa ElectronicLstd.,
model HM-50S
Shimadzu Corporation, model GC-14A
[equippedwithan electroncapturedetector(ECD)]
Shimadzu Corporation, model C-R3A
3.1.3 Testprocedure
3.1.3.1 Preparationof buffersolutions Buffersolutionwsere preparedby thefollowingtwo methodsdescribedin the
annex of theGuidelineNo. 111:
Buffermixturesof Clarkand Lubs CitratbeufferofKolthoff-andVleeschhouwer
Each buffersolutionofpH values4, 7, and 9 was preparedtobe 1000 n3L using
thefollowingreagents:
I
I)pH4:
0.1 m monopotassium
citrate and 0.1 N sodium hydroxide
2)pH7:
0.1 m monopotassium
phosphate and 0. IN sodium hydroxide
3)pH9:
0.1 m potassium chloride, 0. 1 m boric acid and 0. 1 N sodium hydroxide
The buffersolutionsobtainedwere passedthroughMilliporeefilteorf pore size 0.25 lim.The pH valuesof thefiltratweesre determinedtobe 4.05,7.02,and 9.05 fornominalvaluesof 4, 7,and 9, respectively.
3.1.3.2 Preparation of stocksolutionof the testsubstance The testsubstance,80 mg, was dissolvedand dilutedwith acetonetopreparea
stocksolutionwith40 mg/L.
3.1.3.3Preliminatreys(tat50*C) Fourmilliliotfetrhsestocskoluti(opnrepariend3.1.3.w2a)saddedto400mL
each of thethreebuffersolutiontsopreparetestsolutionosf pH values4, 7, and 9. The solutiontshuspreparedwere testedunder thefollowingconditions:
1) Conditions
pH: concentration: temperature: testinpgeriod: testvolume: test'vessel:
4, 7, and 9 0.40mg/L 50.00.10c 5 dayswithcontinuousshaking 400 mL (containin1g% acetone) Erlenmeyerglassflask
II)Analyticalmethods The concentrationof the testsubstancewas measured by GC. Priorto GC
analysist,hetestsolutionwsere treatebdy thefollowingprocedure:
Sodium chloride,128 g, was dissolveidn each of thethree400-mL solutions, from which thetestsubstancewas thenextractewdith 100 mL of n-hexane.The extractiownas repeatedtwice more. The threeextractswere combined and concentratetdo50 mL, which was thentransferreidntoa 200-mL glassvolumetric flaskand filletdo200 mL with n-hexane.The hexanesolutiownas analyzedby GC under thefollowingconditions:
GC conditions
column:
Shim@dzu Corporationw,ide borecolumn CBP20-W25-100, 0.53mm i.d.2,5 m inlength
temperature: column:120*C;injecto2r0:0'C; detector2:40'C
carrier:
nitrogegnas(flowrate:20 mL/min)
detector:
ECD
injectiovnolume: 3 pL
As describedin2.1.4,theconcentratioonf thetestsubstancewas basedon total area of the fourpeaksdetectedby GC (retentiotnime:3.6,4.3,4.9,and 5.8 minutes).
III)Recovery Four milliliteorfsthestocksolutio(nprepareidn3.1.3.2)was addedto400 mL
of waterin an Erienmeyerglassflask(fmalconcentratio0n.:4 mg/L). Sodium chloride,128 g, was dissolvedin thissolutionf,rom which thetestsubstancewas thenextractedwith 100 mL of n-hexane.The extractiownas reppatedtwicemore.
The threeextractswere combined and concentratedto 50 mL, which was then transferreidntoa 200-mL glassvolumetricflaskand filletdo200 mL withn-hexane. The concentratioonf the testsubstancein the finalsolutionwas measured by GC under theconditiondsescribedin3.1.3.3.Il.
Recovery was determinedto be 101 %. T"neconcentrationosf thetestsubstance reportedforthispreliminarytestwere correctedby thisfactor.
[Table3.6 and Figure3.1]
3.1.3.4 Further investigddon (at25 OC) Four milliliteorfsthestocksolution(preparedin 3.1.3.2)was added to 400 mL
each of thethreebuffersolutiontsopreparetestsolutionosf pH values4, 7, and 9. Six 5-mL aliquotsfrom each of thetestsolutionwsere transferreidntoglasstubes. These solutionwsere examined asa functionof time under thefollowingconditions:
I) Conditions
pH: concentration: temperature: testingperiod: testvolume: testvessel:
4, 7,and 9 0.40 mg/L 25.00.2 0C 33 days with no shaking 5 mL (containinIg % acetone) glasstube
II)Analytical methods The concentrationof the test substance was measured by GC.
analysis,thetestsolutionswere treatedby the followingprocedure:
Prior to GC
Sodium chloride,1.6 g, was dissolvedin the5-mL aliquottreatedin the tube. Two milliliteorfsn-hexanewas added to thissolutionT.hey were shaken for 1 minutes and thencentrifugeadt 3000 rpm. The n-hexanephase (supernatantw)as analyzedby GC asdescribedin3.1.3.3.
As describedin 2.1.4,theconcentratioonf the testsubstancewas based on total area of the fourpeaks detectedby GC (retentiotnime:3.6,4.3, 4.9,and 5.8 minutes).
III)Recovery Four milliliteorfsthestocksolution(preparedin3.1.3.2)was added to400 mL
of water in an Erlenmeyerglassflask(thefinalconcentratio0n.:4 mg/L). Sodium
chloride1,.6g, was dissolvienda 5-mL sampleofthissolutiotno,whichtwo milliliteorfs n-hexanewas then added. They were shaken for 1 minutes and then centrifugedat 3000 rpm. The n-hexanephase (supernatantw)as analyzedby GC under theconditionsdescribedin3.1.3.3.
Recovery was determinedto be 95 %. The concentrationosf the testsubstance reportedforthisfurtherinvestigatiwoenre correctedby thisfactor.
[Table3.7 and Figure3.3]
3.1.3.5 CaUbration curve TJie calibratiocnurve prepared in 2.1.5 (Determinationof Water Solubility)
was used. [Figure2.1 and Figure2.2)
At measurement of the testsubstanceconcentrationt,hestandardsolutionof the testsubstancewith 1.0 mg/L was analyzed.Concentrationin each testsample was calculatedfrom ratioof totalpeak area for the sample to thatfor the standard solution.
3.1.3.6 Calculafions Residualpercentof thetestsubstancewas calculateadsfollows:
rt= 100 (Ct/cto)
where
rt:
residualpercentof thetestsubstanceafter"t"days
ct:
concentratioonf thetestsubstanceafter"t"days (mg/L)
cto:
initiacloncentratioonf thetestsubstance(0.4mg/L)
Assuming thatthelogarithmsof theresidualconcentrationasre firstorderas a functionof time,theirreactionrateconstantswere calculateads follows:
k t-Iln(100/r)
where
k:
reactionrateconstantof thetestsubstance(day-1)
Using theaverageof theserateconstants,halflifetime of the testsubstancewas calculateads follows:
tl/2 = k-I In 2 where
tl/2: halflifetime of the testsubstanre(days)
3.2 ResultasndDiscussion
1)Preliminatreyst
After5 daysat50'C theresidupaelrcentosfthetesstubstanactepH 4,7,and9 were 76, 76, and 52, respectively.
(Table3.5 and Figure3.2]
On thebasisof theresultsi,tissuggestedthatthetestsubstanceistransformedat leastby 24
Relatingto thepreliminarytestresultt,hereisthe followingdescriptioinn the OECD Guideline:
Iflessthan 10 per centofthe reactionisobservedafter5 days (tII2> I year), thechemicalisconsideredhydrolyticalsltyableand no additionatlestingisrequired.
Therefore,we decidedtoperformthefurtherinvestigatidoenscribedbelow.
2)Furtherinvestigation
At 25'C thereactionrateconstantsof thetestsubstanceatpH 4, 7, and 9 were 0.017,0.020,and 0.046 day-I with halflifetime of 42,.35, and 15 days, respectively.
[Table3.1toTable3.4and Figure3.4]
The chemicalstructuroef the testsubstance(shown'in 2.2)suggeststhatthe reactionrateof each component issimilarto each other.
4 DissociatioCnonstantsin Water [StudyNo. 4B225]
The dissociatioonf a chemicalin water isof importancein assessingitsimpact upon theenvironment.Itgovernstheform of thesubstancewhich inturndetermines itsbehaviorand transportI.tmay affecttheadsorptionof thechemicalon soilsand sedimentsand adsorptionintobiologicaclefls.-
4.1 Materiallasnd Methods
This study was conductedinaccordancewith the standardprocedure"Dissociation Constantsin Water" (SpectrophotometrMiecthod) in the OECD Guidelinesfor TestingofChemicalsNo. 112 (1981).Generalsummary of thismethod isas.follows:
A wavelengthisfound where the ionizedand unionizedforms of thecompound have appreciablydifferenetxtinctiocnoefficientTsh.e LJV-visiblaebsorptionspectrum isobtainedfrom solutionosf constantconcentratiounnder a pH conditionwhere the substanceisessentialluynionizedand fullyionizedand atseveralintermediatpeH's. This may be done, eitherby adding incrementsof concentrateadcid (base)to a relativellyargevolume of a solutionof the compound in a multicomponentbuffer, initialaltyhigh (low)pH, or by addingequalvolumes of a stocksolutioonf the compound in e.g.water,methanol,to constantvolumes of variousbuffersolutions coveringthe desiredpH range.From thepH and absorbancevaluesatthe chosen wavelength,a sufficienntumber of valuesfor thepKa iscalculateudsingdatafrom at least5 pH's where thecompound isat least10 per centand lessdm 90 per cent ionized.
4.1.1 Reagents and water
methanol:
JunseiChemical Co., Ltd., guaranteedreagent
0.1 N hydrochloricacid: KishidaChemicalCo., Ltd., reagentfortitration
(dilutetdo0.01 N withwaterpriortouse)
0.1 N sodium hydroxide: KishidaChemicalCo., Ltd., reagentfortitration
(dilutetdo0.01N withwaterpriortouse)
water:
Deionizedwater was distilled.
4.1.2 Apparatus UV-visiblespectrophotometer:'ShimadzuCorporationM,odel UV-260
4.1.3 Testprocedure
4.1.3.1Preparatioonfstocksolutioonfthetestsubstance A stocksolutionfthetesstubstanwcieth80 mg/L inmethanowlasprepared
using20.0 mg ofthesubstance.
4.1.3.2 Preparationof testsolutions For measurement of UV-visiblespectraof thetestsubstancet,hreesolutionosf
thetestsubstancweere preparedasfollows:
1)Acid solutionof thetestsubstance Two milliliteorfsthestocksolutio(npreparedin4.1.3.1.)and 2.4 ml'of 0.01
N hydrochloriaccidwere transferriendtoa 200-mL glassvolumetrifclaskw,hich was thenfilletdo200 mL withwater.(finacloncentratiofnthetestsubstance0:.8 mg/L)
2)Alkalinseolutioonfthetesstubstance Two millilitoefrtshestocksolutioand2.4mL of0.01N sodiumhydroxide
were transferreidntoa 200-mL glassvolumetricflaskw,hich was thenfilletdo200 mL withwater.(finacloncentratioofnthetestsubstance0:.8 mg/L)
3) Neutralsolutioonf thetestsubstance Two milliliteorfs the stocksolutionwas transferreidntoa 200-niLglass
volumetrifclaskw,hichwas thenfilletdo200 mL withwater.(finacloncentration of thetestsubstance0:.8 mg/L)
4.1.3.3 Measurement of UV-visiblespectrum The UV-visiblespectraof thetestsubstanceinthesolutionosf threedifferenptH
valueswere measuredwiththeapparatushown in4.1.2.
4.2 Resultsand Discussion
No 4issociatiocnonstantsof thetestsubstancewere determinedbecause the spectra of thetestsubstanceatdifferenptH did notsignificantdliyfferfrom one another.
[Figure4.1
The water solubilitoyf the testsubstanceis too low to find an ionizedand unionizedforms of thetestsubstance.We did not investigatietsconstantsfurtherby either"TitratioMnethod" or "ConductometricMethod" in the OECD Guideline because theboth methods are considerednot suitablefor thesubstancehaving such a low solubilit(y0.89mg/L, reporteidn2.2).
But the chemicalstructuroef the testsubstance(shown in 1.1.2) suggeststhatits dissociatiopnotentiailsvery low.
5 PartitiCoonefficie(n1t-octanol/water) by BPLC Method [StudyNo. 4B226]
The partitiocnoefficie(nPt) is defmed as the ratioof the equilibrium concentrationosf a dissolvedsubstancein a two-phasesystem.consistinogf two largelyimmisciblesolventsI.n caseof 1-octafiaonld water,
POW= co /cw
where Pow: 1-octanol/watpearrtitiocnoefficient Co: concentratioinn 1-octanoplhase Cw: concentratioinnwaterphase
The partitiocnoefficiebnetingthequotienotf two concentrationisusuallygiven intheform of itslogarithmtobaseten(logPow).
Pow isa key parameterinstudiesof theenvironmentaflateof chemicalsubstances. A highly-significraenltationshibpetween the-Pow of substancesand their bioaccumulatioinnfishhas been shown. Ithas alsobeen shown thatPow isa useful parameterin thepredictioonf adsorptioonn soiland sedimentsand forestablishing quantitatisvteructure-activrietlyationshifposra wide rangeof biologicaelffects.
5.1 Materialsand Methods
This studywas conductedin accordancewith the standardprocedure"Partition Coefficien(tn-octanol/wateHri)g,h PerformanceLiquidChromatography(HPLC) Method" in theOECD GuidelinefsorTestingof ChemicalsNo.117(1989).Principle of thismethod isas follows:
HPLC isperformedon analyticaclolumns packed witha commerciallyavailable solidphasecontaininlgonghydrocarbonchains(e.g.C8, C18) chemicallybound onto silica.
Chemicalsinjecteodntosuch a column move alongitby partitionibnegtween the mobile solventphase and the hydrocarbonstationarpyhase.The chemicalsare retainedin proportionto theirhydrocarbon-wateprartitiocnoefficienwti,th water solublechemicalselutedfirstand oil-solublcehemicalslast.T'his enablesthe relationshibpetween the retentiontime on a reverse-phasceolumn and the 1-octanol/watpearrtitiocnoefficienttobe established.
5.1.1 Reference compounds
A referencecompounds whose Pow valuesare well known, we selectedfive substanr-esm:ethyl benzoate,bromobenzene, diphenyl,dibenzyl,and DDT. In additiont,hioureawas used fordeterminatioonf thedead time.A mixtureof thesix substanceswas preparedin acetonitrile.
5.1.2 Correlationbetween retentiontime and Pow The mixtureofthereferencceompounds(shownin5.1.1)was analyzebdy high
performanceliquidchromatography(.HPLC)under the conditiondsescribedbelow:
HPLC con&dons column:
mobile phase: flow rate: wavelength: temperature:
GL SciencesInc.,InertsiOlDS-2 4.6mm i.d.,250 mm inlength (Cl8 chemicallybound ontosilica)
acetonitrile/wa=te7r5/25 (v/v) 1.0 mL/min. 210 run 25 OC
The HPLC retentiotnime of thereferencecompounds were correctedas follows:
Rt '=Rt' -Rto
where Rt:
correctedretentiotnime ofthecompound (minutes)
Rt': Rto:
retentiotnimeof thecompound (minutes) retentiotnimeof thiourea(minutes)
Correlatioenquationbetween thecorrectedretentiotnime of the fivecompounds and theircorrespondingPow was computed by the leastsquaremethod, resultinign
thefollowingequation:
log Pow = 5.274 log Rt - 0.0219 (r
0.973) [Figure5.1 and Figure5.21
5.1.3 Retention time of the testsubstance A mixtureof the testsubstanceand thioureawas preparedin acetonitrilTeh.e
mixturewas analyzedby HPLC under theconditionsdescribedin 5.1.2.Based on thechromatogram,retentiotnime(Rt',minutes)were determinedforcomponents of the testsubstance.
5.2 Resultsand Discussion
The,t.estsubstancewas detectedas tenpeaks or more by HPLC.
The correctedretentiotnime (Rt)of the main component was determinedto be 29.245 minutes,whilethatof.DDT (Log Pow isreportedto be 6.20.)was 13.263 minutes.
Based on thecorrelatioenquationshown in 5.1.2,thelog Pow valueof themain
component was more than 6.
[Figure5.2)
6 Vapor pressure[StudyNo. 4B227]
The envirorunentarlelevanceof vapor pressureisaccountedforby the following reasons:
The vapor pressuregivesan indicatioonf the probabilitoyf the phase transitionlsi,quid/gaasnd solid/gas.
The vapor pressure,togetherwith the solubilitiyn water,is the major auxiliarvyariableforcalculatintghevolatiliotfy a substancefrom an aqueous solution.
Vapor pressureis thus a significanftactorfor predictinagtmospheric concentrations.
The vapor pressureof a substancecan furthermorebe usefulas a basisfor decidingwhetheror nota photochemicallyinduceddegradationstudy(inthe homogeneous gas phase or inan absorbedphase) isnecessary.
6.1 Materialsand Methods
This study was conductedin accordancewith the standardprocedure "Vapor PressureCurve" (Gas SaturatioMnethod) in the OECD Guidelinesfor Testingof ChemicalsNo. 104 (1981).This method issummarized asfollows:
A streamof inertcarriergas (nitrogengas)ispassedover thesubstanceinsuch a way thatitbecomes saturatedwith vapor of the substanceand the vapor is then collectedina trapadsorbent.Measurement of theamount ofmaterialtransportebdy a known amount of carriergas is used to calculattehe vapor pressureat a given temperature.
6.1.1 Reagents
acetonitrile: Wako Pure ChemicalIndustriesL,td., reagentforHPLC
adsorbent: GL SciencesInc.,
Tenax GC'O, 60-80 mesh
6.1.2 Apparatus
saturatcoorlumn:
adsorbentcolilmn:
glassbead: flow meter: gas chromatograph: data processor:
SibataScientifiTcechnology Ltd., 12 mm i.d.,150 mm inlength
SibataScientifiTcechnology Ltd.,
12 mm i.d.,150 mm inlength IuchiSeieidoCo.,Ltd., 1 mm indiameter Shinagawa Corporation, model NWK-IC Shimadzu Corporation, model GC-14A Shimadzu Corporation, model C-R3A
6.1.3 Vapor pressurememuring apparatus
For measurement of vapor pressureof thetestsubstance,an apparatusshown in
Figure 6.5 was assembledand setin a room air-conditioneadt25 1*C. [Figure6.5]
The glassbeads coatedwith the testsubstancewere packed intothe saturator column up to 7 cm in length.Nitrogengas,kept at a constantflow rateby the pressurecontrollearnd theflow gauge,was introducedto thiscolumn.
The nitrogengas saturatedwith vapor of the testsubstancewas deliveredto the Tenax GCO-packed column to trapthe testsubstance.Totalamount of the nitrogen gas which passedthroughthistrapcolumn was measured by theflow meter.
Preparation of saturatorcolumn 1) Ten milligramsof the testsubstancewas dissolvedin 10 mL of acetonitrilien a 100-mL round bottom glassflask.
2) Eight milliliteorfsglassbeads was added intothe flask.The solventwas removed by rotaryevaporation.The residualsolventwas thoroughlyeliminated with a vacuum pump atroom temperature.(The testsubstancewas thuscoated onto theglassbeads.)
3) The glassbeads coatedwith the testsubstancewas packed intothe saturator column up to7 cm inlength.Both open sidesof-thecolumn were heldby quartz glasswool, which was then incorporateidn the vapor pressuremeasuring apparatus.
nitrogen gas 1) Nitrogen gas was deliveredintothevapor pressuremeasuring apparatusfor 70
hours.Totalvolume of the carriergas was measured with the flow meter and
determinedtobe 1.017 m3. (averag.eflow..rat2e4:2 mumin)
2) The totalvolume of thegaswas correctedasfollows:
V = Vr [(273/T)(760-/P7)601"2
where V: Vr: T:
P:
totaglasvolumecorrecte(dm3) amountofthegasmeasuredby'theflowmeter(1.017m3) temperatureof thenitrogengas(298 *K)
pressuredifferencebetween at the flow meter and at the absorber-packedcolumn (0.4 mm Hg)
The totalvolume of the carrierwas thus correctedby factorsof the temperature and pressureditference,resultingin 0.973 m3.
Adsorbent column
1) Eight milliliterosf the adsorbent (Tenax GC!O) was packed into the absorbent column. Both open sides of the column were retainedwith quartz glass wool. The column thusprepared was connected to the saturatorcolumn.
2) The testsubstance trapped by the Tenax G(Z!O was desorbed by the procedure describedin 6.1.4.
6.1.4 Analyticalmethods
The testsubstancetrappedby the adsorbentwas desorbed as follows:
1) The adsorbentpacked in -thecolumn was transferredinto a glass filterT.he insideof the vacant column was rinsedwith 20 mL of acetonitrilew,hich was then transferredin the glassfilterT.he rinseof the Tenax.GC was repeated twice more with 20 mL and 10 mL each of acetonitrile.
2) The threefiltratewsere combined and transferredintoa 50-mL volumetric glass flask,which was then filledto 50 mL with acetonitrilAen. aliquotof the solutionwas diluted50 fold in volume.
3) The concentrationof the testsubstancein the finalsolutionwas measured by GC under the followingconditions:
GC conditions
column:
Shimadzu Corporation,wide bore column CBP20-W25-100,
0.53mm i.d.2,5 m inlength
temperature: column 120 'C, injecto2r00 *C, detector240 0C
carrier:
nitrogengas(flowrate:20 mL/min)
detector:
ECD
injectiovnolume: 3 liL
Calibrationcurve Standardsolutionosfthetestsubstancweere preparedtomake concentratioonfs
0, 0.25,0.5, and 1.0 mg/L in acetonitrilTeh.ey were analyzedby GC under the
above conditionsA. calibratiocnurvepreparedby the method describedin 2.1.5
generateda straighltinewhich crossestheoriginand itscorrelatiocnoefficienwtas
calculatetdo be 0.999.
[Figure6.1 and Figure6.2]
At measurement of the testsubstanceconcentrationt,he standardsolution with 1.0 mg/L was analyzed.Concentrationineach testsample was calculatefdrom ratioof totalpeak areaforthesample tothatforthestandardsolution.
Desorption efficiency(Recovery) Desorptionefficiencyof the testsubstancefrom Tenax GC'O was determined
accordingtothe followingprocedure:
1) Twenty fivemilliliteorfsthesolutioonf thetestsubstancewith I mg/L in acetonitri(lmeass of the testsubstance2:5 pg) was added to 4 mL of the adsorbentin a 50-mL round bottom glassflask.The solventwas removed by rotaryevaporationto adsorbthetestsubstanceonto theTenax G(@e.
2) The testsubstanceadsorbedon theTenax GC'O was recoveredby thedesorption proceduredescribedabove (exceptthatthe substancewas extractedwith 10, 10, and 5 mL ofacetonitrialned thefiltratweesre transferreidnto25-mL volumetric glassflask,which was then filletdo 25 mL). The concentratioonf the test substancein the finalsolutionwas measured by GC to evaluatedesorption efficiency.
The desorptionefficiencwyas determinedtobe 97 %. For measurement ofvapor pressure,the concentratioonf thetestsubstancewas correctedby thisfactor.
[Table6.3 and Figure6.3]
6.1.5 Calculatioonf vapor pressure
V@por pressureof thetestsubstancewas calculatedas follows:
P = (W/M)(RT/V)
where P: W: M: R: V: T:
vapor pressure(Pa) amount of thetestsubstancetrapped(g) molecularweightof thetestsubstance(g mole-1) gas constant(8.31Pa m3 mole-I K-1) totalvolume of thecarriergas corrected(m3) temperatur(e'K)
6.2 Resultsand Discussion
Vapor pressureof thetestsubstancweas 6.0 x 10-3Pa. [Table6.1 toTable 6.2,and Figure 6.4]
But the chemicalstructureof the testsubstance(shown in 1.1.2)suggeststhat vapor pressureof each component isdifferentfrom one another.
Vapor pressureof benzoic acid (a referencesubstancein the OECD was 0.10 Pa (24 C) under theconditionsemployed in thisstudy.
Guideline)
Table 2.1 Calculationof concentrationof the testsubstance dissolvedin water.
Measurement No. 1
time at 40.OC-,days
2
conc.ibStd,.;.mg/L' Peak area,pV-sec
Std. testsolution concentratiofnactor
A
1.01
1.01
1.01
B
2589644
2717449
2732276
c
2030738
2414771
2230296
D
1
1
1
conc.of thesubstance,mg/L
E
0.84
0.95
0.88
Calculatioenquation E = A(C/B)(I/D)(1/0.94)
Measurement No. 2 time at40 OC, days
2
3
conc.in..Stdm.g1l,l, peak area,ijv-sec
Std. testsolution concentratiofnactor
A
i.o'i
1.01
1.01
B
2589644
2717449
2732276
C
2115067
2319263
2293546
D
I
I
I
conc.ofthe substance,mg/L
E
0.88
0.92
Calculatioenquation E = A(C/B)(l/D)(1/0.94)
averagewater solubility:0.89itg/l
0.90
-Table2.2 Calculationof recovery
conc.of the substanceadded, mg/L A
0.97
conc.'iSntd.,mg/L
B
1.01
peak area,jjv-sec
Std:
C 2723221
test,solution
0 2456907
concentratiofnactor
E
I
conc.of the substancerecovered,mg/L
recovery
F
calculatioenquation F=B(D/C)(I/E)(IOO/A)
0.91 94
Figure2.1 Calibratiocnurve of the testsubstance
Curve Fitting (Least Square Method]
Inp-ut Data -----------------------------------------
Concentration
Peak Area
No
X (mg/ I
Y iUV -sec)
---------------------------------------------
1
0
0
2
0.2016,
550784
3
1.008
2758732
4
5 .'04
13119948
---------------------------------------------
Y = 5.0483X 104 + r = 0.99995
2.5966X 106 X Xl
X ioooooo
14 13 12 11 io
4)
tn
9 8
d) 7 6
5 4 3 2 1 Oc
0.00
Calibration Curve
1.00
2.00
3 .00
4.00-
Concentration(mg/1)
5.00
6.00 XI
U) 33.,4U-i77;8-_
5. !65
7.
C) c@o OC)
p 11%110
IME
AREA liK
3.767
80396 v
3
4.492
317962 V
4
5.1@fi
1821019 v
5
5.982
539354 S Y
TOTAL
2769805
-@KtiC, t
4 5
7.. t-ZZ-"
c@9!
r+
TIME
AREA hK IDNO
CONC
a 3.783 4.503 5.123 5.992
;Z C4 co 2
-;Za 4 467507 V 1545826 V 8586993 V 211519622 SV
Cl.4073
c@
3.5436
11.7168
65.0866
19.0979
0. 1478 -------------
TOTAL
13193186
WARMING NO PEAK
2-0 4'.
PKIio
1
2 3 4
TIME
AREA
3.76
15993
4.4'c.'5
645C.8
5.1
373677
5.97
96547 ---------
TOTAL
5 5rj78 4
cn
12 -'3F-itt;'2
9.228 T Ih E
C5 c@o co AREA liK
3.792
74532 V
4.518
30913 !6 v
4
5.137
1812582 v
5
0 12
527793 SY
TOTAL
2735141
r+
CD
7.0 0
PKI-10
3 4 5
TIHE
!3 Z..792 4.517
6.005
TOTAL
AREA 11K
t t ri5 C, 69258 v Ir-180909 v IE-28500 V 478240 OVV
24679le7l
@(@4
54. '53 33
0
T IIlE
AREA IIK
2
3.77
24910 V
3
4.473
927738 V
4
5.065
879701 V
5
5.943
198339 v
P.S'12
9.
TOTAL-
2253382
-,477
CD
cn
0 r
K 110
2 3 4 5 6 7
T I iiE
AREA IIK
62
3 . 7 E.17,
16505 V
4.477
1039350 V
5. 077
8!o97 5 1 V
5.9--13
199461 V
94F-
i
T 13
C4 1 C4
TOTAL
2303814.
?KliO
2 3 4 5
9@55 77 Cl'-..'
T IfiE
AREA
FL
c@ C:) co li 1.11
3.757 4.49 5.087 5.455
TOTAL
67922 y '093103 y 1732292 y 496327 SY ---------
2600681
Figuret.4.2 GC chromatograms of the testsubstance ---for measurement of concentrationin water (after2 days at400C)---
Std. 1.008mg/l
4m
c LO N U-) C-i I f.%i
ui
m k@j 0') -
I Z-
.
ix
ID n U") r.
-:%I
<z
a- CU cr, I :o
C-J
cli
0 co tr) I N
I cli
C-V'
rb,p
cfk
C's %N*) C-) Cli
u-@ f%. r@, I", -i
<r
k %Vi -r u-i n
f->
T cu cl@Ir u-i
testsolution n=l
ci u-) u-) o r .
WA,
<r
c
I
:@
C-
Li
c,,
-<j= r
klj CIO V tro C-
. testsolution
n=2
<r Li
ix <r
>
D C-i C-) N
cl@ N C-i CN %") Cli CU a%
cu Lri
cli
LAJ
-:o 0.-
tN
O.C. -:0 tri
rl%
Ir
I cu
e-i ce@
try L- N
5 4@,41 .437
U;3
0
TIME
AREA hK
:3.4 OF
9-)4
2
f-.:7' 7 7
29460 V
.:3
4 @7@l
loi5oo2
V
4
5 . fJ73
965788
V
5
5.947
e 0 ri4 6
eiz
9c47-
v
c'7
TOTAL
2497030
u ti,:. u 8 Orj7
PKIIO
i
2 3 4 5
6
T I liE
3 .4 i
3.797 4.512 5.118 6.003
r:o. A- E4;z
AREA HK
24657 V 1008133 V 1020090 y
240666 V
14 C42!9
TOTAL
2463445
-t4
cn
K Il0i
2 3 4 5
T 1 ME
AREA liK
co
a
ce
3.737 4. 447 Ic. r;5i 3 5.917
OTAL
76145 V :?1 ! 144 V 1819770 V 525^c 17 SY
27e:4 I
Table 3 Calculationsof reactionrateconstant and halflifetime of the testsubstance (Table3.1-Table3.3)
Table 3.1 (pH 4 at 250C)
time, days (t)
residualpercent rateconstant,
of the'substance,day-1
ryig/(LC)
(k)
5
89.7
0.022
8
87.3
0.017
15
77.0
0.017
is
76.8
0.014
26
68.3
0.015
33
62.1
0.014
average rateconstant 0. 017dayhalflifetime(t 1, 2 42 days
calculatioenquations
k=l/tX In 100/c
tl,2=1/kXln
2
Table 3.2,(pH7 at 25*C)
time, days (t)
residualpercent ofthe substance
mg/L (C)
rateconstant@ day-1 (k) -
5
88.6
0.024
8
86.9
0.018
is
74.1
0.020
19
69.5
0.019
26
59.9
0.020
33
53.8
0.019
average rateconstant 0.020day
tl,2
35 days
Table 3. (pH 9-at250C)
time, days (t)
2 5 8 12 15
residualpercent rateconstant,
ofthesubstance, day-1
mg/L(C)
(k)
92.4 78.4 69.0 57.1 50.2 37.7
0.040 0.049 0.046 0.047 0.046 0.051
average rateconstant 0.046day-I
tl/2
15 days
Table 3.4 Calculationsof residualconcentrationof the testsubstance ---far Further investigatidn(at 2 5.0. :t0.2 0C) ---
time, days pH
29
4 57
9
4 87
9
12 9
4 is 7
9
4 19 7
9
4 26 7
4 33 7
peak area,ijv*sec
test.
Std
solutioh
B
c
conc.in residual testsoin.percent
0
2889193 2523765 0.371 92.4
2951466
2951466 2951466
2502799
2473261 2186759
0.361 0.356
0.315
89.7
88.6 78.4
2868192 2968192
2968192
2449526
2439536 1936885
0.351 0.350 0.278
87.3
86.9 69.0
2939623 1585436 0.229 57.1
2871688
2871668 2871668
2089210 2011015 1361482
0.309 0.298
0.202
77.0
74.1 50.2
2871088 2871088 2871088
2084603 1886031
1022942
0.309 0.279
0.152
76.8 69.5 37.7
2962788 1912723 2962788 1676378
0.275 68.3 0.241 59.9
2928913 1718699 0.250 62.1 2928913 1490039 0.216 53.8
concentratioonfthestandardsolution(A): 1.01 mg/L
concentratiofnactor(E):
2.5
initicaolncentratioonf thetestsubstance(F)0:.402 mg/L
recovery(G).
95 %
calculatioenquation:
-D-A(C/D)-E--1F-1(100/G)-100
Table 3.5 Calculationsof residualconcentrationof the test substance ---for Preliminarytest(after5 days at 50.0 0.1 OC) ---
pit4
PH 7
PH 9
initiacloncentration
of thetestsubstance,mg/L
A
0.402
0.402
0.402
.;afte5r-days conc. ih@Std..,.mg/L peak area,ijv-sec Std. testsolution concentratiofnactor conc.in..thtee:stsolution..
B
1.00
1.00
1.00
C 3022269
3022269
3022269
D 1867539
1876183
1264465
E
2
2
2
0.306
0.307
0.207
residualpercent of the testsubstance
F
76
76 -
52
calculatioenquation F B(D/C)(I/E)(I/A)(1/1.01)100
Table 3.6 Calculationof recovery ---for Preliminarytest
conc.ofthetestsubstance added,mg/L
conc. ;PLStd.,mg/L
peak area,uV*sec Std. testsolution
concentratiofnactor
A
0.402
a
1.00
C 2977220
D 2420272
E
2
conc.of thetestsubstance recovered,mgll
recovery,%
F
0.406 101
calculatioenquation F.= B(D./C)(I/E)(I/A)100
Table 3.7 Calculationof recovery ---forFurtherinvestigation
conc.ofthetestsubstance added,'mg/L
conc. i'n@,Stdm.g@/,L peak area,jjv-sec
Std. test-solution
concentratiofnactor
A
0.402
B
1.01
C 2782217
0 2639636
E
2.5
conc.of thetestsubstance recovered,mg/L
recovery,%
F
calculatioenquation F = B(D/C)(I/E)(I/A)100
0.383 95
START
77
:'K i-0f
4 5
U)
9.817
1+
FL
T 1 (iE
AREA liK I DUIC,
COHC
liA 11E
A 4 4:7
E3
34
577 4.347 4.9145
68147 V 276040 V 2100565 V
2.2809 9.2393 70.3078
5.77
532469 SV
17.8222 -------------
TOTAL
'987667
T A F,T
7' r+
((Dn-i
9 .E.1-2
r+
i-AIliF- 2.
T IliE
AREA liK I DNO
c
ct
2
0
55151 V
:3
9 . ctri@4
2
4.
229949 V
70-9537.
3
4 .41
1717273
V
17. cl'667
4
5.773
4 1790rl S..-)-
-------------
TOTAL
2420272
i (ICI
START
T IIIE
AFEA
K
5'1'3
39049 V
4 35
176830 V
4 '@27
13 1 ! 0 (14 V
4
TOTAL
IE,76183
.START
5 94
PK[i@
T 1liE
AFEA ['KI
co
1
3.578
2 (117 3
2
4 . (IE-7
15877 V
3
4.@l
'@'97747
4
ti.772
211,0668 sv
4 C4
TOTAL
12.*34 8 5 C4
.-,TART
9.795
cn
FL
T Ili[
A izE. A (i
Iz1!
00
595
69716 y
4. 3 4
cl*U1Z3IriI y
4
4 1 'z 21 10,252
5 .7
5".@2271? SY
-- -- ---- -
TOTAL
@-Ici 4 5 0 i
START
9 17
?KtiO
1 2 3 4 5
TIME
AREA M K
--1.592 4 . '14 @@' 4.9!7 5. 79
3 6:32 i-*. 186550 v 1308Z49 335415 V
5,@C4G
TOTAL
1 2 8 47
6. 9 r -c 99ii
E4
c@l
T I liE
AREA H K
3.615
7f$688 V
4.38
307633 V
4
4.938
1888329 v
5.813
507568 V
v - --- ---------
TOTAL
2816536
r+
.CD
cn
r 9 e.
PKHO 4-
4 5
TIIIE
"1.572 4.322 4.882 5.757
(4 1
TOTAL
AREA MK
C4
71301 v 270242 Y 17909O.C- IT, 507107 y
v
2677385
eg,
cn
FL
c@
?KHO
TIME
AREA H@,
2
3.6',5
*.1198 v
3
4.367
3f$i 785 y
4
4.938
!928231 v
5
5.813
547979 V
v
TOTAL
2928667
CD 33 24@p.-.
tp44,
@89 9
p ie1-10
3 4
T flie
3 .6, 3 4.382 4.942 5.822
AREA [iK
69455 V 241338 Y 1738036 V 474936 V
v
TOTAL
2542849
5. E-98 9'7
P.<ti0
I 2
4
TIME
AREA 1-1K
3.535
6992i v
4 . 2 ec7*-
265288
v
4.837
1672584 V
5.6-98
465468 SV
-i 4@;z6
---------
TOTAL
24920'c*c'
1 DliO.
-7 i.@r,7
Z7
Fl!1".10
2 3 4
TIME
AREA hl' IDMO
3 57 4.313 4 8!f,7 5. 7 i 7
9 rl9-
6 14 !9 v 171377 1 610692cl $26543 S V
TOTAL ---21-9-7-69-6--
CL
"9 's
m ri
T 1H
AREA MK
DIIO
3.58
84103
v
3
4. 3c-*2
332077 v
4
4 . C'.? '@. 1973856
V
5
5.742
561432 SV
---------
TOTAL
21?63383
a 7
@KMO
2 3 4
Tlt'IE
AREA tiK 1 D[iCi
568 4.317 4.87 fl.73
TOTAL
72548
6 43 6 4 1763114 v
402272 S';' ---------
!E@.77
6:
7 e@ 77'
0
TIME
AREA h K IDNO
7 2 5 7 @j V
4 31
276869
4. '37
1764394 v
4
74
'@'25699 SY
TO-t AL
'-1*439536
3@C.3
cn
7C, 6.77 i"
9 . Ee.
PKNO
T 1 ME
APEA iiK ID ['(II
2
3.54
84865 v
4.283
34 2 4 2:@ Y
4
4. 811:7 1976176
5
5.7133
5E.4727 V
4
6,. P A-
TOTAL
3riBOO70
co d. 83r$
r'KliO
1 2 11 4 5 6 7
TIME
AREA
MK IDNO
3.537 4.035 4 . 03 4.838 S. 7L45
9 ;L@-:
47846 Y. 34361 V 5637@ 1442243 Y 356058 SY
a 4- T
TOTAL
199-8049
7
PKIIO
2 3 4 5
T IME
AREA 1-1K I DI*10
3.607 4 . 'DE,. 4.92 5.702
TOTAL
70742 Y 22@@64S V 1 6894E,4 V 463678 SV - - - - - - -- -
2460565
33 Z1.04&2
C/)
CL
li0
T IliE
AREA MK
Dtio
3
4.358
341391 V
4
4.922
2006286 v
5
5.81;13
506656 sv
TOTAL
295229@,
7..E55.7.t7;72 7 7. -E7. 5
tio
T!hE
AREA MK IDliO
3.557
41384 V
2
4.048
27159 V.
3
4.332
7cici3 8
4
4.86
lll5oci7 v
5
5.727
331843 Y
TOTAL
1585436
@;33 c- . 6 7
PKIIO
1 2 3 4
TIME
3.54 4.275 4.833 5. c@87
TOTAL
AREA 1111% 1 litio
54941 V 176806 V 1362655 V 416614 SY
2@ii@15
5,2.17 -
4.93
pkiio
2 Z" 4 5
TIME
4.108 4.368 4.93 5.'$17
AREA MK
2 1) 22387 v 35866 v 1010484 V 259$45 SV
IDNO
TOTAL
1378387
33 1',F;ig
81 .7 77
r+
6. SPS7
FL
PKNO
i 2 3 4 5
T I ME
9. 3.582 4.327 4.9 5.77
TOTAL
AREA IIK I DtiO
78196 V 329297 V 1883392 v 580784 SV
2884962
12
PKNO
4-2 3
5
TIME
i i i; -@.525 4.267 4.812 5.65
.. TOTAL
AREA h 1'% IDNO
tee43 59779 V 169135 v 1444165 V 4 1 13.1 SV
2099453
PKTIO
1 2 3 4
2 95 qI,
TIIIE
57 8 4.322 4.895 5.752
TOTAL
AREA MK
52284 Y 155916 V 1248817 V 429014 SV
1886031
IDHO
4.953
?Klio
1 2 3 4 5
!HE
AREA tiK
3.62
22481
4 . IrJ
14349 V
4.417
40911 Y
4.95.'$
723651 V
5 .83
221549 Y'
-----------
Tri TO 1
1022942
I B 11C,
PKIIO
6i 7tt'
;-'27
T 1h E
AREA liK
3
4.252
328533 V
4
4.827
1879027 V
5
5.68
583525 SY
TOTAL
2804227
%v783' 17
PKMO
1 2 3 4
TIME
AREA liK ID li0
3.597
55724 Y
4.347
149067 V
4.917 ----1-41-4-1-72-- V
.5.783
465641 SV
TOTAL
2084603
84
PK[iri
1 2
4
TIME
3.54 4.308 4.842 5.692
TOTAL
AREA MK IDNO
54270 'V' 1302 19 v 110024*0 V :2@9 650 V
1676373
PKiiO
33 1 .3 T I ME
Cl) AREA I'Kl I D 1-10
2
3.52
86807 v
3
4.245
338231 v
4
4.803
1970817 V
5
5.657
566933 SV
TOTAL
2974607
Ic.67
1"23
PKIIO
I 2
4
TIME
AREA MK !DMO
3.,i'c7 4.28 4.823 5.667
58084 V 152256 V 1349336. V 352547 SY
TOTAL
1912723
84
ti0
T I 1-!E
AREA liK I DliO
1
3. 533
46752 V
4.297
116978 Y
3
4.84
1032i99 v
4
5.688
294110 SV
---------
TOTAL
1490039
;,Klio
cn
7
T I tiE
AREA IIK idtio
2
3. 5 1 P,
86430 V
3
4.245
341379' V
4
4.82
1937852 V
5
5.67
563253 Y
6.
V
TOTAL
29 669:30
9 43
p 110
1 2 3 4
T I I-IE
:3.5 4 5 4.3Ci8 4.843 5.69
TOTAL
AREA 11K
43236 Y 114465 Y 1193570 11, 362408 SY
1718699
1 DI-10
Figure4.1 UV spectrum of the testsubstance inacidic,neutral,and alkalinesolutions concentratioonfthe testsubstance 0.8mg/ i
acidic neutral alkaline
ILriC-
Figure5.1 Correlationbetween HPLC retentiontime and Pow cpfthe roferpnce,..Compounds:
Curve Fitting
[Least
Square
Method3
Input Data ---------------------------------------------
log Rt
log Pow
N-o-.-------------------------------------------
1
0. 355
0.626
2. 12 2..99
2
3
0.813
3 .76
0.981
4 .81
4 1 .123
6 .20
--5------ ------------------------------------
Y = -2.1919X
r = 0 . 97258
10-2 +
5.1282 X XI
X 7 .00
6.00
5 .00
9= 4 .00
C4
3.00
2.00
0
0
0
0 0
1 .00
0.00 0.0
0.2
0.4
0.6
0.8
1.0
1.2
Xj
log Rt
Figure 5.2 HPLC chromatograms of the referencecompounds and the testsubstance
Li: n Z 10.-1 trji).sn or o-i.oz.o
toll.
I r3 0
14 C.1 c
0
E tr
reference compounds
CL
Peak& 1
.2
3 4 s G
net Time 2.637 4.903 G.eG7 S. i:ss 12. @u04
15.900
T-/PC PV L)V av 6-1 ev vv
W; d. h 0:07C 0. 116 e. IS7 0.208 0.274 0.325
a t-i
3LI
40
T
Area
11214 1042 633.02 Z78.54 3S3.74 169.83
thiourea
Rt-Rto
lknsodft 2.266
bromobanzone 4.230
diphanyl
6.502
dibenzyl
9.567
DDT
16.263
log Rt
0.355 0.626 0.813 0.981 1.123
log Pow
2.12 2.99 3.76 4.81 6.20
LC R 2 10. -1 4
fj0
u-
;,U, testsubstance
Li
In
a)(ZCD Qi) OD
Peakt I
2
3
4
s 6 7 e 9
le
net Time Z. 633 6.144 7.SSS
9.502
I'@.@304 1E .44S 22.SG2 'IS.308 2713ss
a .7 2 z
31.87D
Type
PV
vii vv
ev
ov
vv
BV eV vv
vv
WEdth O.CGS 0. '&3G 0.199
0.261
9.2SS
0.377
0.41G 0. 46Z
0.7SI
0.402
0.669
T
7
Area
'L?SS9
53.99 se.es
138.G4
79.43 114.04
67.83 160.lc
3SS.40
37 1.IL3
thiourea
(i)
(2)
RL-Rto
3.511 4.922 6.869 9.671 13.812 19.929 23.675 24.726 26.089 29.245
lQg RL
0.545 0.692 0.837 0.985 1.140 1.299 1.374 1.393 1.416 1.466
log Pow
2.77 3.75 4.27 5.03 5.82 6.64 7.02 7. 12 7.24 7.50
Tabfe6.1 Calculationof-vaporpressure
trapped testsubstance (correctedmass), g
1
molecular weight'ofthe testsubstance
m
gas constant, Pa*M3-.mole-l-K-1
R
correctedtotalvolume of the carrier'qas.-M3
v
temperature, OK
T
1.47 X 10625
8.31 0.973
298
vapor pressure,Pa
calculationequations
P =(W/K)(RT/V)
p
B. ox 10-3
Table 6.2 !Calclialtion:of:mass" of the trapped test substance
conc...infStd...,,.rng/L peak area,AtV*sec
Std. testsolution conc. iKth6 test'sol6tionm,g/L finalvolume, mL dilutionfactor
A
1.006
B
2489067
c
1412087
0.571
D
50
E
50
trapped testsubstance as measured mass, g
as,correctedmass.,g
1.43X 10-3
w
1.47 X 10-3
calculationequation
I A(C/B)E(D/1000)(1/0.97)(1/1000)
Table 6.3 Calculationof desorptionefficiency
conc. ofthetestsubstance:
A
added, mg/L
conc.ihistd.m,g/L
B
0.02515 1.006
peak area,ijv*sec Std.
C 2451409
test:solution
D 2372240
finalvolume.mL
25
conc. ofthetestsubstance recovered,mg/L E
desorptionefficiency%,
F
0.02434 97
calculatioenquations E B(D/C)(25/1000)
F (E/A)100
FigLire6.1 Calibrationcurve of the testsubstance
Curve Fitting CLeast Square Method)
Input Data ---------------------------------------------
Concentration
Peak Area
No
X (mg/ I
Y V -sec)
-------------r-------------------------------
1
0
0
2
0.252
602790
3
0.503
1234186
4
1.003
2475687
---------------------------------------------
y = -9.1506X 103 + r = 0.99997
2.4740X 106 X Xl
x 1000000
2.6 2.4 2.2 2.0 1 .8
rA
> 1 .6 1 .4 I .2 1 .0 0.8 0.6 0.4 0. 2 0.0 0.0
Calibration Curve
0.2
0.4
0.6
0.8
Concentration(mg/1)
1 .0
1 .2
X
S.TA F,T F.'T
77
TIME
3.762 4 4e5 5 Ci97 5. ';75
OTAI-
7
K v 17 4 2 V -343 Cl2 3 y rSC,4 2^4 IE*,t
I D I-('i
U) r+ PL
c 0 1*c1
C>
C> 1:1. :34 :,I.1.1 5 I C4. 6744
1!@, 670* -------------
I Cie
START
@RT i
@KNO
2 4 5
@7 7..E.;@36 :@@.j@CJ
TiliE
AREA MK 1 DtiO
colic
3.762
62275 V
4. 49
5. i
!674132 V
5 . 9E-2
472732 SV
- - - ---- - - -
TOTAL
2 4 8 5 -?(45
2.51351 10.7224 67.3449 ig.ol6s - - - - - - - -- - - - -
1 CIG
U)
FL
C:3 9 00 t.Ztb
F99..4787 6-
:,Klio
2 11 4
T 1 ME'
AREA MK
3.762 4.497 5. i i 5 .9 9
TOTAL
13433 v 63505 v 4 1729Cj 108563 SV - - -- - -- - -
27 0
DHO
colic
69.226
If-.*0 10 - - - - - - -- - - - -
6-1ART
5-5:@;Q.'li5 -3-@7
<!icl 5
A --tA
!INC'
75 4. 477 5 0;?7 5
IOT AL
E.ci9 e.E. 2 4.2 4 1 t.6 CN9 '1*:" V 4E.4747 S%-'
24 17 i7
crn+
CL
c 0 ti.1@
NA[IE
Ci 4 2. 4774 (1 6 7 Cl":-t E-7 554 1 I ?, 87'1
1 cli-I
S T AF,T
5 @7 7 .
<
2 4
T V, 3.752 4. 482
93 T(ITAL
A r-A oK 1 DNO
59':-40 V
2 5 3 Cl
V
IA!2761 V
44i.6'@7 SV
CD ri)
cn 0.
E
colic
-.A-ifiE !:t
0
2.5225 r-_.l66 st E-7.984' 7 i 8. 8 7 6
1 cl1)
Figure6.4- GC chromatograms of the,testsubstance for measurement -of--mass-.ot.hfe..,trappetde.st substance;--.:.@
Std (I.Omg/I
test:,qolution
C'J
LLJ
ID N
cl:
:Cl
C-i
IT
-r
12,
(.j I;x
r%
r4
Li
Li
U'o vi*
C"i cli U:l U:l
C-J CIO V U-i
Figure6.5 Vapor pressuremeasuring apparatus
c E 2
flow meter
adsorbent (Tenax GCO)
0 0 M CD
N
c 0
CD
LZ-) CL
cp