Document O1JrK8Ezm43qzkq5xNEJ8Grxp
ASFDuco20252027022
Table 3 DbiesntzroiibcutaicoindoofnrasdoiiolaLctUiFviAty2.a4ftaenrdapipnlciucbaattiioonnofun"dCe4r{raeirfolbuiocrcoomnedtihtoixoyns) [% TAR]
ACNMO ATClNiMeO Totalexe
O=D Acc1t2one tracted
w81z7 Tnrra 503 T0o0 nawa. 2p3x) T1o0r2s2
si1s 112s5 979s4 0705 n0a00. 2169.2 1a0b2s0
ssass 112265 7124 a7r8 000%0 119910 558833
14402 aiss 15880 3o500o0w
1a0408
s50i 2248 171)s s2027 0o0ot0 50 2or7a
2250 i2)2 a3rs 221 oooott aa74 s5u3s8
77 0078 o0s2 1130 6i1r 00000 || aatts sors.
mean| 0057 o0a4 i11 5s9a ooom | | aasd 5s8s5s
o0s5 0044 10s0 s5i5a1 o0o0 || aas2d || t1o0o1os
0055 o0a4 0099 st5a93000%00 3037.92 5575.34
o0s3 0043 a0ss 6sss 0o0m sa2s [s0603s
0034 0033 a0ss 66ss o0om asrsa | i59z8
0022 0023 0044 s8y900om
[[00
02 02 os sr om
856
TwNAEaRRsnraolsnatcaecadinatdeorecshces 100% = 07ma)
aoesaoorowwamth5bporess aaac adpinngofcCOubanand rndoy afer rca
B. Characterization and identification of extractable radioactive residues (ERR) "tThhee i"dCelntaibteyolfetdhetepstareinttemsuabnsdtanadcdeitwiaosnalconmfaisrsmedspbeyctcroommpeatrriicsonanwailtyhsitsheofretreenptrieosnenttiamteivoef samples. Results are shown in Table 4to Table 6. -Du1r0i2n.g7t%heTcAoRurastedoafyt0hetostvuadyl,uetshe a2m.o0u%ntTAofRpaatre1n4tDcAoTmp(osuoinldLiqu1i0c).kl6y dDeAcTre(assoleldLfUrFomA927..24) daentdec7teDd,ATbu(tsoalll bLeUlFoAw l2e.v4e)l.sBoefs0i.d2e%thTeARpa.rent compound, a few unknown metaboltes were
Page 20123
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applicationof *C-4trifluoromethoxy)benzoic acid and incubation under aerobic conditions [% TAR]
=5 [wim] v21| 261 |"26s J2s02e3]707500]515516[382s3e5s7|]
Te2r rr ra er [--omean roar|
eer|
oe er [mean es I
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TE Ee [mean mer1
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Ere rr rE [H4mean1201 1.1.
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FEE EE EE Eng [S7mean|os |na |na|na |na|na |na |na |na|
m Pi EEil stirmemmm------------ Crate
_--
ASFDuco20252027022
Table 5 Capopmlpiocsaititoinoonfo"fCr-a4d-i{oraicftlivueorroemseitdhuoexsyo)fbeenxztoraicctascoifdsaonildLiUncFuAba2t.i2oanfter under aerobic conditions [% TAR]
EE PPS ee FeTm 1Tmt Tout ftreratemednt [mm | a[ow [owe[ow] |7w3we] 268265| m1 |sersar| sr |
[Come1 s | e7r28a |.
e7n2a8
-|
[mean me To mea
eR [ZF mean zeaT Et N = T e6e2ese er[X}
[mean | s262 |.02 | | ss | 00 |
Foo[onPa[l a[m 0
[oP meiaann aTa a na TPhw a [w a na Ta ha
[aEmeEn|
aa a7
|vmnaas| mi a |
nVaO
|A na |
EE
tH
[Smean | 0s | na | na | na | na |
TAR oa ppdadc 100% = 07 ORG)
aS=evennontianrrtsneed
meaacneisn
adforndysc.noehpesHtPLoCnagnaslyseoswfsh, pocld ol exactswrecredoksce ealoxrcied
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Tables Gompositonofradioactive rsiofecxtruactseofsollLUFAZaft applicationof "C-4-{triflucromethoxy)benzoic acid and incubation
under aerobic conditions [% TAR]
Dane onns ny a[ee | mo] 3ars34 |
Fe a o T = ns |omean1 eea
esa |
[meanTr | a ma
sa [2mean meme|
su [mean
a7
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oe [fomean en 0 | na | [tLamoeaan[|oe0=0| [onwa | a |28mean a 056| rn na | r arroms [Semean| 04| na |
EERE I enc pentLbT ac :oars
C. CHARACTERIZATION OF NON-EXTRACTABLE
No further NERcharactrizawtaonscariod out.
RESID
UES
(NER)
0. PROPOSED DEGRADATION PATHWAY aThne 0eosnlfy5atomreandosfrorsdmaotitrohneiOraeGnaFcvtiainroonouompfad-te{omfonuncsotfrromamteeothhvotryedboesnngzorwciihaschide.odbTosogeepravWdeoodhsowanemrooefuhnet cece, OCFrors ray' a lrg raised, wih na proces. of `eminaeraslaiizaTtioionn cncoonnTtainanuaminargcereavstesnyatarofnatebHr oitmehesth,readLOiooCaFc1tsiavniotdysdwaso2tpoarmtgdofoethpHeroosnknonih-neoxtsrotaocsttable oThneipornopsosedredegaramdeadtoonipathway of 4-fucromethoylbenzic acd in sol under aerobic
ison
anor onc asa
.
o
7 2 A You y
Nonreescitduaebs le .
co, Figure 1 sPorlolposed routeofdegradation for d<{rifluoromethoxy)benzoic acid in
E. KINETIC EVALUATION 4Ki-n{ertiilcucervaolmueatthiooyn)oaenndzociaclcaucliadtiwoans opferDfeogrTmsexd faolnldowiDneggtThseorevcaolumemsen(dtaitgigoenrsoefntdhpeoiFnsO)CUfoSr dKeitnaeiilscssoweorTkagbrloeu7p-[TRaefb.le1]5..The Gblained DegT.o and DegTes values aro given below. For Trigger endpoints of -(riluoromethoxy)benzolc acid at 20 C [sor T winoticmodol| gomortxs | DogTwist | Dostwia| [ueTw T see T aw [ oe | [|waza| so | we | ws | am | [waza | ws | a0 [ we | 21 | QTuoodaepripvreoatcihggaercceonrddpionignttosaFO1C2USC,[Rtehfe.c1o]rrceocntsiiodnefroirngteSmpFeOraKtiunretiwcasforcoanldtuhcrteeed suoslisn.gTthhee rbeelsopwe.cive temperature correction factor (fr) and trigger endpoints at 12 C are summarized Estimationof tigger endpoints for 4<{rifluoromethoxy)benzoic acid at 12 C
Dwoagee]|| Dwoagmee||C5e7e5r0" D|ogGe a)| DWoghon) [uo|so |ws |aor |ess|21|smo | wes | [weazz]soTwe| vis |ase|zie| 245 |ais| Jwraza]so | ze|ow |sz | zie |27|ear| "basedon 8 Qsconectionforo 258
Pron t6t20
SR [o EELE owm sr[[aRE vee T[eF [e0n] degradation of "C-trifluoromethoxybenzoic acid in soil Li 10
ccpiatie
ka: 0.0129
nd
(overall)
(overall)
EreTbeT ReV eA yETdk ea t represented by the SFO model; x" error is <15%; k is significantly different from zero (p-value T D Te T `estimated values for a and B are very large, indicating that degradation is close to first-order | BEE ERE IrRn HS model provideas visually good fit.thefitted initial concentration matches well and the overall
decline pattern is well represented, with no systematic deviations; x* error is lower than for SFO
Eo I er . NA = Not applicable. R BEIeE e nR c A: `approximately 1
2"
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ASFDuco20252027022 Tables dSteagtriastdiactailoannodfv"iCs-uralifalsusoersosmmeetnhotxoyfbdeinfzeoriecntackiidneitnicsomilodLeUlFsAt2e.s2ted for
[sro Toc [ro[Koil[ge[ vo [om | We 103.1 WA
FoMC | acceptable
a M6e.:3180E3+.0103
B: W1o:.0160E3+.0104 NA
K:08031| <0001 1.15
sacepiatie
kz:g0:1..001053 NndA (overall)
HS | acceptable
WLKoi::i01.06d30.31 NnndAe
[5 SFO Kinetic mode provides a visually accopta7b.i3o3f1i; althoughNtAhe residuals show somo systematic
Kdeivsiastiigonn,iftihceanotvedriafllrednetcirnoempzaetrtoer(ips-wvaelluer<e0p.r0e0s1e)n.tedbythe SFO model; 2error is above 16%;
[ iFsOnMotCimkipnreotivcedmosdienlceptrhoevid*eesraorvisisuailnlcyraecacseepdtcabolmepaire(vdertyo tshiemiSarFOtomSoFdeOl;fth:etheesgtoiomdanteesds-voafl-ufeist
[ DfoFrOaPankdineBtiacremovdereyllaprrgoev,idiensdiacavtiisnugaltlhyatacdceegprtaadbalteiofint viserdyosseimtiolafrstto-oSrFdOerfki)i,nebtuitcsn.o improvement
oavse1riSnFdiOcaatinndgFthOaMtCd;eghraeda2tieornoir icslohsieghteorftrhsatnorfdorerSkFiOnetaincds.FOMC; he parametor gs estimated
J HovSerKSinFeOtamnoddF el prO ovTihdeeM spaavriC asumalelry;tacscepntoatbaldeeqfiuta(tveelryy isinmsiildaertthoe SobFsOervfia)t,ibountrnaongie.mprovement
[> fCoorn"cClutsiifoonr:omSeFtOhomxoydbeelnzsoicocnasciidd:erDedethgebe=st1..f1i5t Jm,odDeelgTapwpr=op3r6ia2t.etoderive trigger endpoints
NndA==NNoottdaeptpelricmaibnleed. "Statistics may be missing because the covariance matrix could not be fully
caaplpcruolxaitmead,teTlhyis1"may be because the higher-order model fd is lose o an SFO fi: @_Parentis
Since a and B are no rate constants, est results were not roported.
[Page 90123
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SR [o EE L om e[[aEr Twee ToeF|a T] degradation of "C-trifluoromethoxybenzoic acid in soil LUFA 2.4
sacepiatie
ka: 0.0135.
nd
(overall)
hs
ka 1.72
20.1
R SShcEieI ahSNr nlTt m m 3Ea a n -r r5a amiE amds nT Sind `over SFO and FOtM he C *er; ror is higher than for SFOandFOMC; the parametegr is estimated
i
i
--
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ASFDoc020232027022 Il. CONCLUSION The model compound 4riflvoromethoxy)benzoic acid degraded quickly under aerobic `incoDnedigtTizonosvaanlduewsaosfl1a.s2t o0b3s.e1rvdeadyasfattt6ehre- 1t4emdpaeyrsaotfuirnecuabta2t0ionC..TNhoerkmianelliizceedvatlou1a2tioCn bryesuuslitendg the Quo temperature correction factor of 2.58, the DegTso values increased to 2.1 - 5.7 days. "The only transformation reactions observed were the formation of carbon dioxide (up to 61.8. a~7m2o.u7n%tsToAfRC)Oa;nfdoorfmendonf-reoxmtrtahcetaObCleF rgersoiduupesd(e2m2o.n9si- r3a1t.e1t%haTtAaRloantg swtiutdhytehnedd).egTrhadeathiiognh of the molecule, the OCF:-group is rapidly and largely mineralized, with the process of `rmeisniedruaelsi.zaTtihoen ccaornbtoinnumiinngereavlieznatiaofntefrrothmethreadOioCaFcst=ivgirtoyupwaiss anparitndiorfectthperonoofnt-heaxttraalcstoabthlee. organically bound fluorine atoms are fully mineralized in soil, ending up as inorganic fluoride. Overall, the experimental data show that the presence of an OCFx-group does not automatically leave a molecule persistent in the environment or lead to persistent degradation products. IV. REFERENCES [Ref.1] FDeOgCraUdSatio(n200K6in)eti"cGsuifdraonmceEnviDroocnummeenntatl oFanteESsttuidmiaetsinogn PPeersstiisctideenscein aEnUd
RDeogciustmreantitonR"efReerpeonrcteoSfatnhceo/F1O0C05U8S/2W0o0r5kveGrrsoiuonp 1o.n1 D(eDgercaedmabteiron20K1i4n)et,i4cs4,0pEpC.
Pogo 230123
,
CropLife
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Experimental work on degradation of CFs-containing
molecules
Key messages, First results of an ongoing degradation study of triluoromethoxy benzoic acid in soil
tushshiiosnwgsspaenccoiaoplmemrposoiiusentteydn,crecal,deidaoer-lslypaibstehellocewadrtr(h*ya`iCtn)gtdhaierCemFcotyllreycoauutlpte.heis CdFe-ggrraoduedp tvoerfyolflasotw itnhesofialteanodf + The results also show that the C-F bondofthis single CFs-group is not as stable as t
ipsoloyfftleunorpionsattueldaatlekdylinsudbosctuamnecnests(PdFeAsSc)riibnitnhgetehnevicroonncmeernnts. around the behaviour of + Further resus will be presented as soon as they are available.
Scopeofthe study
Within the upcoming "ire-ightng foam" and "univarsal" REACH restcon processes for PFAS, a chanical ogTrofosiuppiaiconingvecwoiPnlFceAbpoStudiessfetidon,ibiueonnud,seAercdcwoiinrocdrihdnegcrototmotphroeeustncradilcstfoawllhopcvohldyefcnlaucrceryiaJnanutdedcauanrlekeynlCtFlsy-ubGasrvtaoatunapcbelasee(rPadFelAf,Si)netfdhael3lOinEgPCuFnDAdSePrFaAtnShd.e Consequently wil al wihinth rosiricion scope.
`CTlhoeremvaejrorchaemnidcaclosn"s)i,stae5ntprcoovnecnerinn socfiePntFiAfiSc pausblaicgartoiuonpsifso thleoirngcalanidmemdednoinu-mdecghraadnabPiFliAtSy imnoltheecuelnevsi(roen.meCnAt
and higher).
Single CFgroups are often used to improve the efficiency of active ingredients (6g. in plant protection
products or human or veterinary pharmaceuticals). Environmental as well as animal and plant metabolism `studies performed within the regulatory EU approvalprocessesclearly indicate that these single CFgroups. `are notthe chemical moieties which decide ontheoverall persistenocfy a molecule. There are CF-carrying
pDleasnptitperootfehcteiowniadcet-isveprienagdreddoiecnttisnowhfitchhhvaevreyvsearbylsehaorntdhuanlfb-rleiaveksabinlesoCil-.F bond, scenic Reraure describes cbcoohtnehdmiitlchoanelsra,mnaOdlnbeaionslduogcyihcdarsloudbleslftlcauaonlrciyenaudtneisotnnatbrleeead.ctAfirsoonpsm,atrhsoofmseacieolnfatriwgfheiriccmehrocalatenucrtueaksiesupiclhfaucaoermuoonimdeeettryheafsnnvecixlrpo(encHmtOee-ndtCaF1l:l)byowrheulinecavhbalniets 10 8c35 termina metabolite,or `arrowhead substance'. ShiengtlaerCgeFt-ghruosupasllaorweinvgertyheuserfeudluccthieomnicoaflimhoejdeoisees Wrhailcehs hfeorlpactioievnesusrubeshtaantctehse.aTcheeeIxnpgerreidmieennttarleascthuedsy. pfrionsaelnfioerdmihnagrCiOnfoanndsloucinivdesLtei.galtey miinngolraeizGeF. Tgwrooumpsodceolucdomppootuenndtslywibthe ddfeegrreandtedbobnydidnogloofrinhaetConF, Group othe rest molecule (O-CFsnlC-CFs bonds) were chosen.
=A
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4Carfuoromethoxy benzoic acid
A
.
5
4Carfvoromethylphonct
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Brz2L08s7S
October 2022
First Results aFinsdtLrUeFsAus22fruopmt0he14stduadyyswaiftherthreeaOm-eCnFt3(DmAoTd)e.l compound are meanwhile avalable fromth sols Li 10 Teshpeecdiisatliyb.utAoln voafluaedsiaarceieixpyreisnstehdeatsw%oosfotlshatnodtalthaepplmiaeiderialdiobaacltainvcee(i%s dTiAsRp)lafyendotinsaTtaebdleosth1erwainsde.2, fA(ol<rt2e5r%7aT-nA5iR6noc%fubTpaAatRri.oennpeercioovdeorfe1d4indaaxyt,ratchte).paForentbtchomspoo,untdhewamasjaokrndoesgtracdoamtpiloeneplryodduecgtrawdaesdCiOnthaecwcoounoilnsg aInnyodoeerropcoloennftia (tshilal tuhreinraadtieoda)cvtilyaidn tthreanNsafOoFrmHartaiponpipnrgodsuocl,utwioonsdciofnesriesnttedmeitnhdoedesd woferCeOuzseadn.d(n1o)tAonf 8a3liCqOuo,twoifcihhetNhaenOcHantrbaepppirnegcsipoaioend bwyacsrtirfautgeadtwni,h lBeaaCvikn.g AnnoyorCiOnsiginniftihcoanNtarOacHeswiolfbaodoraacnisvfiolrymiondthteo sroalputpieodn.C(2)OAissreecloenadseadlaqnudoocfatnhboeNeaxOpaHlerdapfpoinmgtshleisiaonlits,relaelaevidnwgialghacionncn.ooHC,ollyeaidnisniggnliofitchaentafrfaecctetshoaft radactvty in the souon. wWais fborhmemdetdhuroidnsg,sthol riandciuobaacttiiovni,tyImndeiacsatuirnagmtohnaisthof rthaeckNlaaObeHletrdapcpairnbgonscalttoomnsinctlheaerlpyarsehnotwmeodletchautle"CwaOs:. completely delornated. Nalowaoytshe< l0.a0t5%i, degradate couk! be detected The radoaciiy nthe ethylene glycole tapping soon was Bmeasxiidmesummilnoovreaslzofat4o5n.5to% CTOA;R (foLrm1at0i6on DoAfTn)ona-nxdtr5a0c.i6a%blTArResi(dLuUeFsA(2N.E2R/)3waDsATo)bsbeefrovreedtwhheiycdhecrreeaacsheedd again olevels of 32% TAR and 35.6% TAR at 14 DAT, respectively. ToCfhOirasrlioonmvdaeitcsiac)teacslastrohbasohnpoayrwlt ohafctaihdhesiapsasdrebonestnzenosoittc tsatceoipd.twhaTshfebuotpuhrenordcedfeeodgtirhanedgahdtueimfoilncuoomfranFlaitilicuorninoamsneoldi,hmowixinyec-rhgarliioszuaapt,kionbnoutw(niJunscrtreeasaclstoiiwnogns it down 0a certain extn. HcoPmLpCouannadly"sCi-s po-fTtEhMeBAso(lsceoxtFriagcutrser1e)v,eLaol.edexrtahcatatbhlee emxetlraabctaeldtersawdeioraecinvoityfocromnesidsitnedapopnrloycioabtehaempoaurnetnst (posing peak 20.2% TAR in any sample). Conclusion Tcahrryfirnsgt areCsuFlgtrs ooufpt,hethsoeilendtergeramdoalteicounlestiusdvyerwyitqhuitclkuloyrdoemgerlahdoerdy-inbesnazloiacnadcindotcaetaratlystsahbolwe sasthpaotsdtelsaptielde fo1or'aalcoPmAplSetemoldeecfullueosr.naFtuornihoefrtmhoer,Cocamn awlistohbfoisnahofwornmahtiaontohfeCCO-:F.bNoondocthaenrbceibarloke(nigrhlaypp.ersliesatdeinntg) teacton products were detected. Outlook cFuarnthbeerarcohisosvewd,ihsithmesO-oxCpFarmmoedneilscwoimpbooupnedrwoirmbeeeswuimhmaariCz-eCdFasmosdoeolncaosmtphoeuynadr. avallabe. Ifsyntesis
as
Table 1: Distroifbraudiotacitiovinty and material balance in Li 10 soil treated with *`C-pTFMBA
FECT ET [750 [206 |46| 14[02| 00[1027[04[00[ Tos] a [a TaleTaTel aTaae] |e70 |203 | s7 |13 |o6 [ 02[e62|ss[02|28 [ 1036| ESTEE EEE [sos[wea| 46|21 |o7|02|747[tea|03[toa tors|
[sas[24|36 |21 | 04|02|52[264|04[175 tote|
EAA IAEARAEACIEIRIE [a1 16 | os |12|02|01 |78[ass|os|a67|1007|
[28 [11 | 04 | 08[ 02| 01| 54[411]03[513 eas|
sRBeTE E cE ursors [orTos T 02 | 06 | 01 |00|16 |320 o1[se] 018|
eizzL0nsaTs
october2022
Tablo2: PDTFiMBsA tofrradiioabctivuitytanidmaoterinal balance nLUFA22 solltreatweitdh C-
CC
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Som [ome|
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rr [aas[tewss||665s | asToors[02[70m0o|[f1a5sa [oa[at[ous]
Er [Ciwsr7 |[rze T|2a6 | 12 02[o0o0 [|26m74|[amso[05[22200| oeusso|
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osTasTos[os 6010 || oooo [ 14[00[0s[ss|oa|
ACN =[acTotoonairlTe 02 T01T02[ 00 [00 | 1[36]04[er2]sao] NEDART ==ndoany-osxatrfarciraebaletmreenstidues CC0O:==CCOO;;mwheiacshurveodlviedthedvuonlgtthae rraipnpigngsimokoifotnhseextractedsol residuebeforecombustion
on RE rr =
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aa Figur1e: RraedaitomoHnPtLC chromatoofAgGrNHaZOm (01) extrac 13of soil Lit0, 6 days aftr
ss
BRIZ2L0735973
Appendices
Appendi1x: Test tem information
Structure
i
0
wo { ) {
7N\ "
on
Av1bUrPoAvCatNaemde:Name: 4p+--T{F(MTBorAometnorybenzoic acid,
`LSapbecificradioaciity: {3i0f8u9o4r5odmeptmhoxy-C1d)
Radochemical purty: Applied amount.
90.96.79%mks (250 gna) cry sol
cober 2022
Appendi2x: Test sotup wash tower!
airinlt bottes
12
soil est vessel
`Sequenceofvolaie trapping solutions: flfaassk4k3 t0 nyNloNn5 aeOgHale fask5: 2NN0 aOH
pump 34 5 absorptiontraps
on
aznonsers
ovetnrzz
Appendix 3: Soil properties
EGCoT yr4
ww 55
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it cottocnount Appendix 4: Analytical methods
rJ oss-- Gor 2910TR (Pain Er LioScincs,Garmary)
Cs For combustion:
Uhre Soeiy.PeSnonSthhrer Tri<Carb 4910TR (Perkin Elmer Life Sciences, Germany)
Biological Oxidizer OX-501 (R.J. Harvey Instrument Corporation)
Combusiod samo: Gaye Ch Zeer bic
L$i 3S0C(aallmsaamplaesn)d:adzaton method wi a bulin Bradaton rcs was used for ha determination of 0 CGomobumstioon stoottssamwperle:absobos soeC00blanca oreorohe cm_--s--, E nme e a re ova oc a eae
PEL RadioHPLC: [Tdoovranrog Reson"
Mobile phase:
m mene aE BR nSs 2GT5ookousmean
A: HzO + HCOOH 10+02.05 (viv) B: Acetonitrile + HCOOH 1000 + 2.5 (viv)
BRIZ20/35973
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October2022
sis
~
CroplLife
LET
[Ere]
Additional information on the Scope of the proposed restriction of Per- and polyfluoroalkyl substances (PFASS) in firefighting foams.
Key Messages:
+ AcedrdtiatiinonaPlFAiSnfosrumbastitoannciess,prtohvuisdedimtpoacRtiAnCg otnhethdeeflianictkioonf sPecrospiesteofncethe(hapzraorpd)osfeodr + rTehsetrOicEtiCoDnodfePfeinri-tiaonndispoalylfiltueroarloacloknyvlesrusbisotnaonfce"spe(rP-FaAnSd) pinolfyifrleufoigrhotailnkgylfosaumbss.tances"
iancttoiosntrtuhcetursaclocpheemsihsoturlydtebremsf.urTthheerOnEaCrDroawuetdhotros aclesaurblysesttamteattchhaitnfgortrheeguclraittiocrayl properties under consideration e.g. Persistence. It is thus a misuse of the OECD + Tdehfeinrietvioinewinofittshuensacbireintdigfeidc lfiotremraitfutrehipsrpersiennctipeldeIinstnhoetAanpnpleixedX.Vdossier is inadequate farnodmmtihsessecsiaentsiifgincilfiitcearnattubreodayndofrekgnuolawtnorcyhesmuibsmtirsys.iCohnesmsihcaolw ptrhoatpecretrytadiantsainagvlaeilCabFl,e fu-nNcCtFiso.nInalogurrovuipesw chisajusbntiefpineesrsaoimstotedntidfuiectaootcfihteohmneicdaelfirneiatcitoinvistcyowpieth(wgartoueprien.gg). fOoCr Fth,e + Trehsetrircetsitornicptiroonpopsraolp.osal should be amended to: Per- and polyfluoroalkyl substances
(PFASs) defined as: any substance that contains at feast one fully fluorinated methyl
`(eCxFc)ludoirngm-e0tChFy,le-nNeCF()CF) carbon atom (without any H/CUBr attached to it, and + Certain additional single -GF or -CF; functional groups cannot also be assumed to be
imnehcehraenntilsymsp,erwsihsitcehntindouuer tvoiecwhjeumsiticfailesraeafcutritvihteyr "wsiatfhetwyatneetr" odrertoogaottihoenr,fdoergcraadsaet-iboyn+ cPlaasceinugstehwehaebroeveevsiudbesntcaenicseasvaoilaobu fles.cotpe, or potentially subtoajdeerogcatiton, does
not in any way lower protection of human healthor the environment, because it remains
irenscpuemcbteivnet RoEnAaCnHy rRegEiAstCrHatiroengsi,strants to demonstrate the lack of persistence in the
1. introduction
CropLife Europe wishes to provide additional information to the Dossier Submitter on the
dleafcikniotfioPneurssiesdteinnctehe(hAanznaredx) XfVor RceesrttraiicntiPonFARSeposrutbsftoarnacePsr,optohsuaslifmopraactRiensgtrtihcetisocnoopne Paenrd-
and polyfluoroalkyl substances (PFASS) in firefighting foams (Version 2.0, dated 23 March 2022). While the definitions discussed here do not appear to be highly applicable to the chemistries used in firefighting foams, never-the-less the general claims being presented by the Dossier Submitter about PFAS substances are of more widespread applicability, including several specific references in the Restriction Report Annex to active substances,
necessitating detailed comments from CropLife Europe.
FraCnrcoophponEeurSaovpieoaniotfteRBuuesiGneusiTsmeGator3d|k31o0420BBr7ruu1s2s5set56l0s| 6A|FoBa3pexkfge4uo3m2u2t| 6Bp6Ea3G01r45o76p06H1e8e8u7r1oRsse| wgnoifTLeoogrpePoerusosnpsae
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As has been noted on page 13 of the Restriction Report, the OECD definition isa literal conversion of "per- and polyfluoroalkyl substances into structural chemistry terms, not tclaekairnlgy sitnattoeatchcatoufonrtrheaguzlaartdoroyususperotpheerdteifeisnitoironrisshkosu.lTdhbeeafuutrhtohrers onfartrhoewOedECtoDmdaetfcinhittihoen jpursotpiefiretdi.es under consideration, and it is thus a misuse in its unabridged formif this is not
If the unabridged OECD structural definition is used to define PFAS, the result is that the Restriction Report (page 1) incorrectly states "All PFASs are very persistent in the `environment. This is the key hazardous property common to all PASS". For this statement 10 remain correct, the OECD structural definition would need to be further refined for use in hthuismarenstrhiecatlitohn,oirnctlhuedienngvisruocnhmetnhtat" tahree rmeeqtu,irWeemenrtesquoefsAtrtsiculceh68s(i1m)pl"iusntaiccceapntdabilnecorirsrkectto statements are removed from the Restriction Report.
The Dossier Submitter confirms this on page 54 of the Annexes to the Restriction Report:
If there are specific PFASs for which sufficient evidence is provided that the
`rpeesruflltuionrginaatedsbuobnstdainsceb/rsoukbesntaantcaesratwehwihcihchiis/nadriecatneostthaem
to be not persistent, PFAS, then those
saruebsktnaoncwens/togrtohuepdsossshioeurlsdubbmeitetxerc.luded from the scope. Currently, no such PFASs
Chemical property data and degradation information from the scientific literature are psruebssetnatnecdeshaerreenotto cdheemmoincsaltlryatsetabtlhea,t,anadsfaurtmhienrimmoruem,cancenrottaibne O"aErCroDwhesatrdu"ctsuurablstPanFcAeSs for these moieties found in larger molecules. Examples are presented for CFa/CFa containing substances which clearly demonstrate that carbon fluorine bonds in certain substances can be, and in practice are, broken under environmentally relevant conditions.
2. Definitions and Scope
The recently published OECD structural definition for the universe" of PFAS chemistry is (OECD 2021):
"PFASs are defined as fluorinated substances that contain at least one fully fluorinated methyl or methylene carbon atom (without any H/CUBH/I atom attached to it), ie. with a few noted exceptions, any chemical with at least a PpeArfSl.uo"rinated methyl group (~CF:) or a perfluorinated methylene group (~CF=) is a
The OECD definition goes on to clearly state (page 18) that perfluorinated methylidene cstaartbeosnosf(t=hCeFd2e)fisnihtoiuonl:d not be considered to be PFAS. Of particular note, the OECD report
"This report does not make any recommendation on how working scopes should be set up, in terms of which factors to be considered (which depends highlyon specific local context), nor on PFAS grouping. However, when a working scope of PAS is used, this report highly recommends that users clearly provide the context and aravtoiiodnacloenffoursseilonecbtyinogthtehresi.r"PFAS working scope in order to provide transparency and
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The Annex XV restriction proposal (page 6, and Section 1.1.1.1) aligns with the full OECD structural definition without further refinement to align with the grouping justification (page 16, Section 1.1.2), thus constituting a misuse of the OECD structural definition:
"To summarise, the grouping is based onstructuralsimilarity (common perfluorinatod moieties) that triggers equivalent hazards and risks among the substances covered, primarily related to the verypersistent property of the substances."
In light of these considerations, it is consistent with the OECD definition to "deselect" individual PFAS moieties which do not demonstrate Persistent properties, and that should not fall within scope of the proposed restriction. The following amendment to the restriction definition in Column 1 (page 6) is proposed on the basis of extensive chemical property and degradation information presented is subsequent sections:
Por-andpolyfluoroalkyl substances (PFASs) defined as: any substance that contains at least one fully fluorinated methyl (CF3) or methylene (CF2) carbon atom (without any H/CUBr/ attachedto it, and excluding -OCFs, -NCFs)
3. Single CFs moieties which are unstable towards hydrolysis The -CFa moiety is the shortest alkyl group within scope of the proposed PFAS restriction definition. Data from the scientific literature are presented here for 5 trfluoromethoxy (CF20-) containing molecules, and thus shows that should the corresponding alcohol be formed as an "amowhead" substance, it will be rapidly hydrolysed. Similarly, data is presented 13 molecules which show simple trifluoromethylamino (CFaN<) groups wil directly hydrolyse. These molecules meet the proposed PFAS definition, and yet they are demonstrably not persistent (Table 1). Any persistence which precursor (parent) molecules may demonstrate cannot be linked to the presence of these moeties in those molecules. As a result, these functional groups should be placed outof scoofpthee PFAS restriction. Further details on these compounds substantiating the lack of persistent properties despite `meeting the PFAS definition are provided in the subsequent sections. It must be emphasized this is a cursory inspection of the literature, and there are very likely many CFa/CFs `compounds with similar properties which are not identified here.
Tablet. Ldiesmtoonfst1r8astuebspterasnicsotsenwthipcrhopmeorteitestheatOtrEibCuDtasblteructtourtahledepfrionisteinocnewhoifc-hOdCoF3NOoTr >NCF3.
[Substance_
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[Moety
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34. Trifluoromethoxy groups
Chemical stability of trfluoromethanol towards hydrolysis
TofhethteripfrlsooproosmeedthoPxFyAmSoiertesytrfiecattiuonresdetfihneitsihoonr.teWshtettehremrinatlhealkiynlclgursioounp o(f-ClFasr)gewrithpirnecsucrospoer `dmeopleencudlsesonfetahteuruilntgitmhaitsegsrtoaubipltoynotfhtehbeaasirsroowfhienahedrsenutbsptearnsicsetteincleuoorfommeettahbaonloilt.es s justified
xXFo
"0%
A9
a t F
Figure 1. Model compounds: 1) trifluoromethanol (CF;OH), and 2) carbonyl difluoride (CF:0).
Tbreihfalvsioorromiesthtahneolm(oFsitgurreel1e)vahnatscboenteenxtg.roHuopweedvewri,th stihnece"F-tgraisfelsu"o,romiemtphlaynionlg aistmnoostphietrsielcf commercially manufactured and ts thermal and hydrolytic stabilty precludes plausible future iussenso,t pitesrspirsitmeanrt,y arneldevaasnacen ainrrthoiwshdeiasdc,usfsoiromneids vaisa ahnyderoxlaymspisleanodfabiPoFdeAgSrasduabtsitoannrceeacwthiiocnhs ionfstolrlif(linucolruodmientghsaonilolpoarnedwaptrere)cuarnsdorinmaoqlueecouulsesmedisiam.oWree sauppgrgoepsrtiatthealtythpeladciesdcuisnsitohne general chemistry section, rather than with "F-gases'.
Trifluoromethanol (CAS No. 1493-114) is an unstable substance which is a gas at room tseymnptehreastiusreed. iInt w1a97s7inuitnidalelry scpoemcpulleatteeldy tahnahtyidt rwoauss tcooondrietaicoinisveatto-e1x2is0t,Can(dRewdawsooodnly19f6i5rs;t eSleipmpienlatti1o9n7o7f).hyWdirtohgeanmefllutoirnigdepotiongti-v8e2caCr,biotnwylasdifdleusocrirdiebe(dEqans 1b)e,iwnigthutnhsetramballe dteogwraarddastitohne uesntdiemrataendhbyodirlionugspociontn)d.itIinoansmoarlereraedcyensttpaurtbilnigcatsiloonw,lCyhraitst2ie0ofCa/ ((c2o0r0r7e)sspiomnildairnlgy swtiatthe tthhaet aHlFcoehloilmsinpaotsiosne,ssainndg paefrlfuoorrimneedatthoemsoynntthheesias-cofartbroinflautoroommeatrheanuonlstuanbdleerasntdricutnlydearnghoydfracoiulse icnovnednittoiroiness.: TritfliusonrootmeathcanoomlmeirscnioatllRyEAreClHevarnetgisstuebrsetda,nncoer, aapnpdeargisvoenn atnhye galobboavlechtehmeircmaall instabilty, it cannot plausibly be considered a `regrettable substitution" candidate.
Odsetceormsptorosme woifthala (f2ir0s1t9-)ordreerproartteedcoeaffisciimeinltarofskub=st(a1n.c6e8,xg1a0s9e)ou5s, dciofrlrueosrpoomnetdhianngolt,o afno atmospheric halflife of 6.9 minutes at room temperature.
CVaFc1uOuHm ias nsdtrroinggolryouascliydiacnahnyddrsouosmecosnadlitti(oKn,s,Rbh,owCesv)erf,ortmhsesheavaelsobeiemnmesdyinattheelsyisheyddruonldyesre
a
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o1n97c9o)ntact with water or moist air to give purely inorganic products (Redwood 1965; Kidter
CF30H -- CF20 + HF
(ean1)
Redwood et al (1965) noted "The trifluoromethoxides are reactive compounds and are immediately hydrolyzed on contact with water", confirming this analytically for the K, Rb, and Cs salts with the stoichiometric presence of fluoride ions in hydrolyzed aqueous solution. Inspection of the synthetic method reported by Kidter et al (1979) reveals other inorganic. compounds featuring the CF1O moiety with high likelinood of being unstable towards hydrolysis, and thus potentially invalidating the current PFAS definition proposed e.g. trifluoromethyl hypochlorite (CFsOCI). We request these above examples are taken ahycdcrooulnytticoaf,llaynudnsatafbulretheexrasmepalrecsh. of the academic literature is likely to reveal more
Schneider et al (1996) investigated the energetics of unimolecular and water-mediated decomposition of CFsOH into CF20 and HF. They concluded that the energy barrier to the unimolecular decomposition was large and that at room temperature the rate of the reaction is negligible; however, the presenceof water significantly lowers the energy pathway making dfiengdriandgastitohnatmohraevefavionudriacbaltee.d Tthheesenefeidndifnogrs aanrheydfurlolyuscocmomnednitsiuornastein wiotrhdeerxpteorimiseonltaatle trifluoromethanol. Given the potential occurrence of tifluoromethanol in the environment will not be under anhydrous conditions, decomposition into CF2O and HF is considered inevitable and rapid.
The restriction report Annex (p107) incorrectly attributes a millon-year half-life below 40km for trifluoromethanol to Buszek and Francisco (2009). In fact, thiswas a theoretical estimate calculated by Schneider etal (1995), and is purely considering photolysis, and not the overall catamuossephdeergriacdahatliloinfew.aTshceal4c0ulkamteadrtiosebsebiencsuafufsiceieUntVinlitghhte wliolwhersuaftfmicoisepnhteernee.rgSychtnoeididreerctelty al (1995) although concluding photolysis was not an important mechanism, never-the-less stated in their conclusion "Once in the loweratmosphere, CF:OH will be rapidly removed by incorporation into rainwater-seawater-cloudwater where hydrolysis will give COz and HF"
The work of Buzek and Francisco in fact showed that the atmospheric behavior is more cmoomlpelceuxl,esacnadn cparteasleynzteeddecaomnpoeswitmieonchianntihesmatmwohseprheebrye.thteispirmepseonrcteantootf rweactoegrniazendthOesHe are not experimental studies, and there can be additional unrecognized processes in play. We request that this paragraph (bottom p107) in the Restriction Report Annex is corrected 50 as not to suggest that the true atmospheric half-life of trfluoromethanol is in the order of millions of years. Its also claimed by several of the above authors that rofifllounogreormecthhaainnolpeirnfltuhoeruocphpeemricaatlms.ospItheisreimipsoartpaontetnttioalresicnokgnfoirzethtehaotxitdahteivheypdeogtrhaedsaitzieond source of these CFs radicals are the longer perfluorinated molecules otherwise within scope of this restriction, and applying the restriction to CFsOH itself or potential OCF; precursor molecules, would be misdirected and have no effect.
Carbonyl difluoride (eqn 1) does not meet the formal OECD PFAS definition because the cdoaurbbto,ntihsenOeiEtCheDr mdeeftihnyiltionnorexmpeiitihlyllyeneex,clbuudtesratthhiesramsebtehiynlgidteenreme(danad PfoArSt)h.e aAvlotihdoaugnhcenootf formally meeting the PFAS structural definition, once formed, carbonyl difluoridealso does
sir
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wnaotterd.emonstrate persistent properties. It is known to rapidly hydrolyse in the presence of
CF:0 + HO --~ CFi(OH)2 = 2HF +CO; (ean 2)
Although a gaseous substance, Uchimaru et al (2004) noted that carbonyl difluoride can rleeaacdttwoitpahrctiotnidoneinnsgetdo alitqmuoidspwhateerri.c Twahteerf,irsatnodrdtehre Hhyednrroyl'yssilsawrecaocntsitoannctosefafnidciheyndtrfoolrysciasrbroatneysl. difluoride has been experimentally determined in liquid water 10 be kno = 4.3 5, cdeosrcrreisbpeodndaisnga t1r0anasiehnatlFiinfteermoefdi1a.t6e sinectohendrsapi(dDereaBcrtuioynn of19c9a5r)b.onDyilfdliufolruoormiedtehawniethdiwoalteirs which ultimately releases HF and CO; as depicted in eqn 2. (Science of Synthesis, page 325). Figure B.41 (page 107) implies carbonyl difluoride is a PFAS, and provides an unattributed half-ife of 5 years. We request this is corrected c.f. De Bruyn 1995, with the relevant hydrolysis half-life, and the atmospheric half-life attributed or removed.
Examples of trifluoromethoxy degradation from larger precursor molecules
The following examples are larger molecules containing the trifluoromethoxy groups, which have been shown to undergo degradation in biotic systems. During this process trifluoromethanol is eliminated, and once formed undergoes hydrolysis as described above.
Dinel et al (2009) describe the in vivo metabolism of a development pharmaceutical pwirtohcetehdeirnegsuvlitainCgYPfo-rmmeadtiioanteodf oCxFi>dOatHi,vewdhiiscphlraacpeimdelyntdeofgrthaedetsritfolufoorrommectahrobxoyngyrloduipfl(u-oOriCdFea)a,t room temperature (Eqn2). This demonstrates that in in-vivo biological systems the carbon fluorine bonds can be broken,
Consistent with this, a survey conducted by Pfizer scientists published in 2015, found no consistent improvement in metabolic stabilty for trifluoroanisoles (Ar-OCFs) compared to anisoles (Ar-OCHs) acrossa seroife43s9 mixed matched pairs (Xing 2015; Johnson 2020)
Complete biomineralization has been described for a model substance featuring a
rifluoromethoxy group, 10-triluoromethoxy~decane-1-sulfonate (Peschka 2008; Fromel
2010). Analysis of fluoride ions over the course of the degradation process indicated a
rapidly increasing concentration between 3 and 17 days, which slowed and then reached a
plateau between 63 and 87 days. The favoured biotransformation pathway (90%) started
with desulfonation and oxidation to a carboxylic acid. The alkyl carbon chain was then
shortened by successive B-oxidation to finally yield trifluoromethanol, which was stated to
be unstable in water, was also described
and to which
dpergorcaedeedeadbiotiincalcloym. paArisseocnondvelreyssslfoawvloyure(dunprealtahtwead y
t(o10t%h)e
trifluoromethoxy group), but stil ultimately led to trifluoromethanol, which once formed,
underwent rapid mineralisation. As a resull virtually complete mineralization was claimed.
While Peschka (2008) appears in the Restriction Report reference list, the results of
this study do not appear to have been taken into account in the discussion. We
request the mineralization of 10-trifluoromethoxy-decane-1-sulfonate be
acknowledged in the Restriction Report.
6117
--
32. Trifluoromethylamino groups
Chemical stability of trifluoromethylamine towards hydrolysis
--
The trifluoromethylamino moiety (Figure 2) features the shortest terminal alkyl group (-CFs)
within scope of the proposed PFAS restriction definition. Whether the inclusion of larger
precursor molecules featuring this group on the basis of inherent persistence of metabolites is justified, depends on the stability of the arrowhead substance trifluoromethylamine. Kidter
et al (1977) synthesised the trifluoromethylamine using similar approaches to
trifluoromethanol, under strictly anhydrous conditions, with spontaneous thermal
E i" X\ C T a A. decomposition increasing above 21C to form a mixture of compounds (Kldter, 1979).
Figure 2.
Model compounds: 1) trifluoromethylamine (CFiNH:), 2) carbamoyl fluoride (AA'NCOF).
Inspection of the synthetic method reported by Kidter et al (1979) reveals several other inorganic compounds featuring the CFsN moiety with high likelihood of being unstable towards hydrolysis, and thus potentially invalidating the current PFAS definition proposed
e.g. trifluoromethyliminosulfur difluoride (CF3N=SF2), trifluoromethylamine dichloride
(CF3NCE), trifluoromethylamine hydrochloride (CFsNHz.HCI). We request these above `examples are taken account of, and a further searchofthe academic literatureis likely to reveal more hydrolytically unstable examples.
Examples of trifluoromethylamine degradation from larger molecules
a a urls AG, Schiesser et al (2020) synthesised 12 model trifluoromethylamine derivatives (Figure 3)
which very rapidly hydrolysed (within 72 hours) to give a carbamoyl fluoride, A,A-NCOF,
precursor trifluoromethylamines for the purpose of the proposed restriction. We request that these examples demonstrating rapid hydrolysis of the trifluoromethylamine group are taken account ofthe Restriction Report.
Unlike simpler amines, N-pyrazole and N-imidazole on the other hand, were more stable towards hydrolysis on the timescale of the experiment (72 hours). Never-the-less, further investigations in regulatory hydrolysis studies or studies on biodegradation in environmental media could also demonstrate consistent hydrolysis or degradation for these functional groups. See also H-pyrazole and H-imidazole in section 4.5 below.
Poszanonsist :
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OT
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L
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on k
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5LhA.
I
F men FF I
F
"en
.
OL-
EeF F
F- I F
"5
drso Le
-
Figure 3. 12 model tiluoromethylamine compounds demonstrating hydrolysis within 72
`hours (Schiesser et al (2020).
4. Single CF; / CF; moieties which demonstrate variable degradation in biotic systems
Data from the scientific literature are presented here which shows that at least the functional
groups difluorodioxo (O-CF2-0), trifluoromethylphenyl (Ar-CFs), difluoroethoxy (-OCF2CHs), and difluoromethylene (C-CF2-C) groups degrade, or have the potential to degrade,
depending on the details of the chemistry, without forming persistent PFAS metabolites. This should not be seen as an exhaustive list, but rather support the need for a "safety net"
derogation for those molecules which have been, or could potentially be, demonstrated to be not persistent, nor form persistent metabolites.
41. Difluoromethanediol
Diluoromethanedol meets the OECD structural defnion of a PFAS and features the sWphehorersttihessettrenatclhekeyolifngclrmuoesulipaobn(ooOlf-laCerFsg2e-trsO)pJuawsriietinhetidnm,osldceeocppueelneodsfsfteohanetufptirhneogp(soitsseadbglrPyouFpoAfSonthrteehsetmrboiacdtseiilosnosdfueifbinsnhlieatrineocnne.t dSiufblsutoarnocmee.thanediol (Figure 4, CAS No. 491379-14-5), and whether it forms an "arowhead"
wn
:,
WX
There is very little scientific literature for this compound, with only 6 references reported by `Chemical Abstracts, all of which are theoretical studies performing ab initio calculations. It `appears to have never been synthesized nor isolated, nor to be commercially available -
Difluoromethanediol is the gem-diol form of carbonyl difluoride, and reversible equilibrium between gem-diols and ketones is very well established. Given that carbonyl difluoride is known to rapidly hydrolyse in water, and it has been stated that difluoromethanediol is a transient intermediate in the hydrolysis of carbonyl difluoride (eqn 2), it is equally expected
that difluoromethanediol behaves similarly in condensed environmental media with `decomposition to HF and CO; (Science of Synthesis, page 325).
Despite meeting the OECD structural PFAS definition as a CF containing molecule,
account of in the Restriction Report.
Examplesofdifluorodioxo degradation from larger molecules
`metabolism of difluorodioxo groups. However, there are some examples of environmental `and mammalian metabolism leading to defluorination via carbonyl difluoride.
Minor biotransformation in humans of fluorinated benzodioxoles has been reported for the
pharmaceutical Lumacaftor (FDA 2014). The biotransformation was not elaborated on in the:
regulatory document, but potential degradation pathways were recently proposed, both
relying on arene oxidation followed by extrusion of carbonyl difluoride (Johnson 2020, see scheme 39). In juxtaposition, the same group appears to be conserved in the available
parent molecule is dependent on far more than the simplistic presence or absence of a single functional group. This is further exemplified by Alexandrino et al (2020), who
demonstrated that environmental microbial communities enriched from estuarine and
agriculture ecosystems were capable of completely removing and deflucrinating Fludioxonil at concentrations up to 10 mg LTM', in a period of 21 days, under the experimental conditions
of the study.
Although difluoromethanediol is clearly unlikely to be stable, the available data indicates that
generalizations about the O-CF-O moiety depend on the details of the chemical
posaanomsiet
awosznzz
42. Trifluoromethylpghreonuypls
Chemical stability of trifluoromethylphenyl groups.
No data on the chemical sabiolftthye model compound (iifluoromethylbenzene has been
e.r v fr identified in the literature (Figure 5).
8
.
2P
Figure 5. Model compound: 1) (trifluoromethyl)benzene, 2) (trifluoromethyl)pyrimidine
In related aromatic heterocyclic rings, it has been reported by Fischer (1993) that ortho substituted trifluoromethylpyrimidines undergo hydrolysis of the trifluoromethyl group under alkaline conditions. The hydrolyzability of the trifluoromethyl group was indicated to be
influenced by additional substituents, and location on the aromatic ring.
cEaxrabmopnlse,saa3roeppproesseednt1e0dablkeyllocwaorfboobnscehraviensd.biotic degradation of -CF3 groups bonded to aryl
Examplesoftrifluoromethyl degradation from larger molecules
`Sakai & Santi (1971, 1973) describe the mechanism of elimination of single fluoride ions
influenced by a conjugated Ti-system (Figure 6). This reaction was demonstrated among.
others for o- and p-trifluoromethylphenol, finally ending up ino- or p-hydroxybenzoic acid.
Ara thmSoargin
Y=F ~-Y2%
11 Prt oman ea rarn re te rs:
ToIho dTye, I ane TR 1
tel dopa a ihn ton font he Rsesgenton Le Ao xX =X.
ReN S co gue
Figure 6.
Schematic reaction mechanism as described by Sakai & Santi (1973). Especially
dervates. wor reaction c) is described for enzymatic degradation in trifluoromethyl uracil
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Avdidniytlioognaolulsy,haitlohfaorsm-bteypeen rreeapcotritoend tthhaatt lteraidfslutooroemleinmaidniaotnieon(FoifguCrFes 7)(Lacnafnranucnhdier2g0o12,a Johnson 2020).
F
o
CU -- C0) on
1
2
Figure 7. 1) trifluoromenadione, 2) lawsone.
`The mechanisms described above can explain why some triluoromethylphenyl- containing substances (U-"*C-labeled in the phenyl ring)did not show the high stability often assumed for classical PFAS and, in addition, do not always show formation of the metabolite trifluoroacetic acid (Figure 8).
eos d -- Shim
Figure. SCoyifllumdeetgorfaednat(idoanta obfase2d-{tornifpluubolriocmevtehryls)iboennzooficCyfalcuimdeto(fmeentabroelnietwealBd-o1s)sieorf 2021). Range of metabolite B-1 soil DT50s = 6.3 - 36.3 days (n=).
From soil metabolism data with specifically "C-labelled substances (Figure 9) it can be shown that rather than the formation of trifluoroacetic acid, the "C-labelled C-atom next to the CFs group was mineralized to "CO2. This is only possibleif the stepwise loss of fluoride took place or if the CFs group was lost by forming trfluoromethanol. As described above, rifluoromethanol would then be mineralized (Peschka et al 2008).
/ oN \ cron Coy Figure 9. SFoliolnidceagmriaddarteinoenwaolf dionssseicetirc2i0d2e0)F.loRnaincgameidof(Fdlaotnaicbaamsieddsooinl DpuTbSl0isc =ve0r.s3io--n1o.9f
days (n=4).
wir
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2unszoz
These findings show that (1) it is not the single CFs-group which defines the potential
tpreirfsliusortoeancceeticofacaid.parent compound and (2) not every -CF3 group results in formation of
Trifluoromethylphenyl substituents have also been shown to undergo photochemical
degradation to acyl fluorides and carboxylic acids. As an example, the pharmaceutical
fluoxetine was found reactive in sunlight surface waters and proved to degrade to the corresponding carboxylic acid with a half-ife of 55.2 h under simulated conditions. (Lam
2005)
While some precursor molecules are known to degrade to form stable. metabolites ceoxnatmapilniensgcltehaertycosnhsoewrvtehdat etrxicfelputoiroomnesthoyclcurm,oiaentdy t(hee.gs.e sthroifulludornooactebtiec inaccildu)d,edthweithaibnotvhee
scope of the proposed REACH restriction. The conclusions in the Restriction Report Annex regarding the degradation of precursors (page 105) appear to rely heavily on justifications.
previously made and accepted for PFOA. However, we wish to point out that the
chemistry and environmental fate of single CF2/CF; groups is quite different from
perfluorinated alkyl Cs chains, and requires more detailed discussion than reference to previous reports.
43. Difluoroethoxy groups
Rodil et al (2019) describe the metabolism of a difluoromethoxy ether, proceeding via
hydrolysisof -OCF2CHj with the resulting formationof an acetoxy-phenol as main metabolite
at 28C by c. elegans (Figure 10).
YK come
"
Win
om ro Cp
SOY
" ptr me
3
" Grr es
Figure 10. Metabolismof a difluoromethoxy ether (Rodil et al (2019).
Degradationof asimilar ethoxy functional group but with ahigher degree of fluorination, has:
been observed in Tetraconazole (Figure 11). The soil metabolism under natural sunlight conditions of Tetraconazole showed a stepwise attack at the tetrafluoroethoxy- group (see
the proposed degradation pathway of tetraconazole in soil in the public version of
dTeettercatceodnamzeotlaeborleinteewsalM1do4s3s6i0er-D2F01A9)a.ndThMe1m4o3s6t0 pallacuoshioblleisresahctoiwonn pinatFhiwguaryele12a.diTnghetofitnhael adceigdradation product of the tetrafluoroethoxy-group after having lost all fluoride ions is oxalic
C
Lo
a
+H `
CO fr Figure 11. Structureof Tetraconazole
wa
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Figure 12. Reaction. mechanisms. at the _toiralluroetionygroup leading fo. the TPehtortaocloynaezcoolnedimteitoanbsolites M14360-DFA and M14360 alcohol in soil under
The fluoride-free metabolite M14360 alcohol is oxidized to the M14360 acid (not shown here), which then undergoes further transformation. This shows that also fluoride containing
moieties like tetrafluoroethoxy-groups are in principle degradable and do not qualify for
being classified as a "forever chemical".
44. Difluoromethylene groups
Wangetal (2015) descar metiabboleic displacemoefnat difluoro-methylene group adjacent
to methylene groups by cytochrome peroxidases. The fluorine atoms are eliminated and replaced to yield non fluorinated metabolites.
ro ILd i 5 a fora
-
rn yam
oe
J at
ym nSgr y" ge lum
CFYe ome oOYr CS
ly Birt Ko Xn ge ipa eles
Figure 13. Metabolic displacemoefnat difluoromethylene group (Wang et al (2015))
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45. (Trifluoromethyl)imidgarzoouplse
aunsaozz
Hayakawa et al (1998) describe the synthesis and subsequent hydrolysis of (trifluoromethyl)pyrazoles (Figure 14).
[
a
2 1. Ow
" 2 F
3. 27
Figure 14. Model structures 1) 2-{trifluoromethyl)-1H-imidazole, 2) 4-{trifluoromethyl)-1H-
imidazole, 3) 5-(trifluoromethyl)-1H-pyrazole
Tflhueor2id-eanudnd4e-rsumbsitdituatlekdaliimnieda(zpoHles=ar8e.9r)eploarbtoerdattooruyndceorngdoilroanpsid (eFliigmuirneati1o5n).ofAhdycdirioogneanl
electronegative substituents can influence therateofelimination of fluoride ion. We request
. - v ek on . o that this information is accounted for in the Restriction Report. Jo on
Cm pre NZ NH
N N_+H20 NZ NH__HF
Ome NZ NH. +H
NZ
NH
.F
Fe
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o
0
N[ 1 ANa ENN L i oL o A a Hwe N NA NNa NaTezENTN ;
Figure 15. iHumynidddreaorzloyalsleiksahloiafnse2 ahlnabdao4rl-attorioirffyfl8u0Ceohor,nodamienttdihoy4nl-sii.mfilAdulazoorploHem-eaDtchc(yo3lr0diimCni)gda2Hz4aofyllaeukoharawlotamefettehayollf()21-09T09Hh8..) oHbydsreorlvyesdisbyofEm(ovilfelnikoroomotetahly)(-20H1-2p)y,raaznodlewsaswitshubseeliqmuiennattlioyn opotfimhiyzderdogfoernyifelludorbiydeuswiansg much more aggressive laboratory condiions.
uNnodedrataenovnirtohnemcehnetamlicaclonstdaibilloitny oofrthseusFicgeuprbei1i4yiwmiadrazdosle obriopdyergarzaodlaetimoondehlascoymeptoubnedesn
identified in the literature.
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5. Conclusion The Dossier Submitter states on page 54 of the Annexes to the Restriction Report
If there are specific PFASs for which sufficient evidence is provided that the preersfulluionrginaatedsbuobnstdainsceb/rsoukbesntaantcaesratwehwihcihchiis/nadriecatneostthear tPoFAbSe,notthpeenrsisttheonst,e substances/groups should be excluded from the scope. Currently, no such PFASs are known to the dossier submitter. We believe we have provided adequate evidence for specific functional groups that are not persistent, and cannot be "arrowhead" substances, despite meeting the OECD structural definition of PFAS. We request that these substances be removed from the scope of the restriction by amending the grouping definition. We believe we have also adequately shown that there are also functional groups meeting tthhee OmoElCecDulset,rumctauyralordemfianyitinoontoffoPrFmApSewrshiiscthen,td"eaprernodwihneagdo"n(tmheetasbpoelciitfei)c scuhbesmtiacnacledse.taBielsinogf unatobprlediect the full chemical behaviofotuhirs chemical space,we suggest introduction of a conditional derogation for those substances as a "safety net'. Placing the above substances out of scope, or potentially subject to a derogation, does not in any way lower protection of human health or the environment, because it rseumbasitnasnceisnciunmtbheenrtespoenctaivneyRREEAACCHHregriesgtirsattriaonntsdostsoieardse.quately risk assess the
6. References Alexandrino, DAM et al. (2020) Microbial degradation of two highly persistent fluorinated fungicides epoxiconazole and fludioxonil. J. Haz. Mat.; 394: 122545. hitos/doi.orq/10,1016/,jhazmat,2020,122545 Buszek, R. J. & Francisco, J. S. (2009): The Gas-Phase Decomposition of CF30H with Water: A Radical-Catalyzed Mechanism. Jounal of Physical Chemistry A, 113, 5333-5337. Christe, K.O. et al. (2007) Convenient Access to Trifluoromethanol. Angewandte Chemie; 46(32): 6155-6158. https /lonlinelibrary.wiley.com/doiffull10.1002/anie.200701823 De Bruyn, W.J. et al. (1995) Uptake of haloacetyl and carbonyl halides by water surfaces. Environ. Sci. Technol.; 29: 1179-1185.hoitrpas/:/duobsi,/apcsd.f/10,1021/e5000052007 Dinel, L. et a. (2009) Oxidative metabolism of the tifluoromethoxy moiety of OSI-930. Drug
Metab. Drug Interact. 24, 95-121. hitps://oubmed.ncbi,nim.nih.qov/20408495/
DS (2021) Information Document accompanying the 2nd Stakeholder Consultation on a Restriction for PFAS, July 2021. hitos/www.reach-clp-biozid-heipdesk.delmedia/Helpdesk/download/SupplementaryDocument-to-GIpEd.f US Environmental Protection Agency, October 2021; National PFAS Testing Strategy: Identification of candidate Per-and Poly-fluoroalkyl Substances (PFAS) for Testing
18117
poszzOmsist
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tErrimfolluoernokmoe,thyMl.SN.H,-pGyurilalzooul,esS..,TeJtanrianh,edYr.oLn.; (629:01225)7-P2y6r3a.zole-3/5-carboxylic acids from 3/5-
hFiDtAps(:2/0i1w4w)w.CalicnciecsalsdPahtaar,mfadcao.gloovgiydrLuumgascaalfitdoar_/divoaccsa/fntdoar/,2p0a15g/e0210176.03A8c0creisas1se0d0o0nCllinien:Pharm
Rpdf
Fischer, GW. (1993) Tetrazole compounds. 8[1]. Synthesis of tetrazolylpyrimidines from tetrazolyl substituted enamino ketones. J. Heterocyclic Chem; 30: 1517-1519.
Fromel T. & Knepper T.P. (2010) Biodegradation of Fluorinated Alkyl Substances. In: De VRoeovgitewPs. o(fedsE)nvRiervoinmeewnstaolf ECnovnitraomnimneanttiaoln CaonntdamTionxaitcioolnogaynd(CToonxtiicnoulatoigoynVooflumReesi2d0u8e. Reviews), vol 208. Springer, New York, NY. hitps:/idoi.ora/10,1007/978-1-4419-68803-7
(Hiafylaukoarowmae,thylY).imidKaizmoolteos, witHh.addiCtoihoneanl elLeAct,roneKgiartki,ve KsLu.bstit(u1en9t9s8.) AnSyanptphersoiasch otof receptor-acivated affinity labels. J. Org. Chern.; 63; 9448-9454.
`IOnomueeg,a;M5.(1(9)2:02100)6C3o3n-t1r0i6bu4t0i.onhiotfosOJr/gwasnowfnlcuboir.inniem.Cnoimhp.doouvnidosmeltoarPthcalremsa/cPeMuCtTi2c4a0l8s3.3ACS
aJgersocchhkeem,icPa.ls(.2010) ThPeeusntique role oMfanhaagl.ogen substiStcuie;nts in the 6d6e:sign of m1o0d2e7r. hitps:Jlonlinelbrary.wilev,com/doi'10,1002/ps,1820
CJoomhpnosuonndsB.M, et al. J (2020) MMeetdab.olic andChPhearmm;aceutical63A:spects of 6F3l1u5o-ri6n3a8t6e.d haictoss./pourbas./doi/pdfi10.1021/acs.imed9c0h01e8m7.7
hKiidttpesr:,JlGo.nleitneall.br(a1r9y7.7i)llTervi.lcuoomr/dmoeitphdyfl/a1m0i,n,10C02F/3aNnHge2,.1A9n7g7e0w8.91C0h2em7.; 89(10): 754.
Kidter, G. et a. (1979) Trfluoromethanol (CF30H) and Trfluoromethylamine (CF3NH2). J. Am. Chem. Soc, 101:347. hitps:/oubs.acs.ora/doilodf/10.1021/12004962012
fLlaumox,etMi.neW..Enevtiralo.n.(2S0ci0.5)TeAcqhuneoolu.s39p,ho5t1o3c-h5e2n2i.cha0ilrprsaea/ci1tdio0oln,1ki0ne2ti1c/s eansd0t4r9an4s7fo5rm7ations of
aLnatnifmraalnacrhiia,lDe.dAo.x-eatcatli.v(e20a1g2e)ntEsxpilnotreirnagcttihneg wtirtfhugolruotmaethniaodnieorneeduccotraesae,s aOrtge.mBpiloamtoelt.oCdheesmi.g,n 10, 4795-4806. hitps://doi.ora/10,1039/C20B25229E
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asbtseernscteroamndetprale.s(e2n0c1e9)ofMCecHhanoirsCt2iHcBs:tuddeycoomfptohseitrieoanctoifonCoHfFC2H02HFa2nwditfhateClofatthoemsCHinF2th0e radical. Phys.Chem.Chem.Phys.; 21: 9376-9383. hitps:/idoi.ora/10.1039/CBCP0B425C
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