Document gbyb4EKLmDrKdVOnb94ZQa5VN
TNO Quality of Life
TNO Report
Final I V7054
Migration study of.111.11111M
toowait-nattiurwQtonschappolijk ondecekf Natherlands Organisation Car Applied Scientific Research
Analytical Research Utrechtseweg 48 P.O.Box 360 3700 AJ Zeist The Netherlands
www.tno.nl P +31 30 694 41 44 F +31 30 694 48 94
@tno.n1
Date
6 October, 2006
Authors
Sponsor
TNO project number TNO study code Sponsor's study code
Status Previous versions
Number of pages Number of tables Number of figures Number of annexes Number of appendices
Solvay Solexis 031,10279/01 V7054
Final
26 4 10 1
All rights reserved. No part of this publication may be reproduced and/or published by print, photoprint, microfilm or any other means without the previous written consent of TNO.
En case this report was drafted on instructions, the rights and obligations of contracting parties are subject to either the Standard Conditions for Research Instructions given to TNO, or the relevant agreement concluded between the contracting parties. Submitting the report for inspection to parties who have a direct interest is permitted.
e 2006 TNO
TNO Report I V7054 I Final
2126
6 October, 2006
Summary
At the request of Solvay Solexis a study was performed to determine the residual
content of
in a f!uoro olymer sample.
is
a chlorofluoropolyether acid
used as an emulsifier/dispersing agent
during the polymerisation process of fluoropolymers.
ical method for the determination of the residual content of - in a fluoropolymer consisted ofa hot extraction with methanol/water (80/20;
v/v) and analyses of the extract with the use of liquid chromatography in combination
with mass spectrometry.
In the blank (extraction solvent without the use of sample material) a background signal of approximately <l 0% of the lowest calibration standard was measured. This low background signanfluence on the final results because the detected concentrations o were below the LOD.
Recoveries measured were adequate viz. between 93 and 103% at the concentration level of42.7 ng/rnl extract which corresponds with 79 g per kg fluoropolymer. d was suitable for the determination of the residual content of ...-i in fluoropolymer at the concentu extract which corresponds with approximately 20-370 g -- per kg fluoropolymer. The repeatability and linearity were satisfactory,
The overall migration of the fluoropolymer in 95% ethanol and iso-octane under migration conditions of respectively 6 hours at 60C and 4 hours at 60C was < lg/ 6 dm2, Further characterization of the migration substances with NMR did not show any significant reaction product.
TNO Report I V7054 I Final 6 October, 2006
3126
Contents
Summary-2
1
Introduction-4
2
Procedure-S
2.1
Sample materials- 5
2.2
Determination of the residual content- 5
2,3
Calibration curve - 6
2.4
Recovery experiment by standard addition to the test sample -6
2.5
Overall migration -7
2.5.1 95% ethanol -7
2.5.2 !so-octane-7
2.6
Characterization of the migrating substances by NMR- 7
3
Results-8
3.1
Actual content of
in the test sample-8
3.2
Detection limit -8
3.3
Recovery-8
3.4
Repeatability and linearity- 9
3.5
Overall migration -9
3.6
Characterization ofmigrating substances with NMR-9
4
Conclusions -10
5
6
Tables-12
7
Figures- 15
8
Appendix- 26
TNO Report I V7054 I Final
4 /26
6 October, 2006
1 Introduction
Solexis has re uested to detennine the residual content of CAS no. 329238-24-6) in a fluoropolymer,
is used as an emulsifier/dispersing agent during the polymerisation process of fluoropolymers. These fluoropolymers are processed to produce a range of articles for repeat use like parts for food processiug equipment, gs on cooking utensils. After the manufacture, can migrate into foodstuffs coming into contact with that product. With the described analytical method the residual content of rcehsliodruoafllucoornotpeonltyectahnerbaeciudssedintothecaflicnuallatfelutohreopwoolyrsmtecrapsreodmuicgtraitsiodnetoenfn ined. The - from fluoropolyrners into foodstuffs. Additional the overall migration from the fluoropolymer sample into 95% ethanol and iso-octane was detennined. The migration substances were characterized by NMR.
TNO Report I V7054 I Final 6 October, 2006
5 /26
2 Procedure
The study consists of a hot extraction with 0/20; v/v) of a fluoropolymer sample produced with the use of--- The extraction
rmed for 8 hours. The extraction solvent is analysed for containing ... ..... by the use ofliquid chromatography in combination with mass spectrometry. The extraction procedure was repeated with a fresh amount of methanol/water. This second extract was also tested for containing residues o.
The maximum amount of
used in the polymerization recipe is
A recovery study is performed by adding
to the sample material.
Repeatability ofthe analysis is tested by performing the analysis in triplicate.
The overall migration of fluoropolymer was determined by the incubation of the fluoropolymer into 95% ethanol and iso-octane. After incubation de solvent was evaporated and the amount ofresidue was determined gravimetrically. The residue was characterized by NMR.
The analysis ofthe residual content was performed in May 2006. TI1e overall migration and characterization ofthe migrating substances was performed in August-September 2006.
2.1
Sample materials
Solvay Solexis, Bollate (Mi) Italy, provided sample material for the testing. The samples were provided with a unique TNO sample code. The samples were received in 6 and stored at room temperature. The reference substance - was received in april 2006.
TNO san1 le ID 0939 -02-0202 0939-02-0951
remark Used for reference Sheets approximately 13.5xl3.5x0.04cm
propane, I,I,1,2, 2,3,3-heptafluoro-3-[(trifluoroethenyl)oxy]-, polymer with tetrafluoroethene and trifluoro(trifluoromethoxy)ethene.
2,2
Determination of the residual content
The sheets of fluoi'opolymer were cut into pieces ofea. l x3 cm. A test-sample of approximately 27 g i s transferred to a conical flask of 100 ml. To the sample 50 ml ofthe extraction solvent methanol/water (80/20; v/v) was added. The hot extraction
was performed for 8 hours. After the extraction an aliquot of the extract was transferred to an HPLC vial. The remaining extraction solvent was decanted and the extraction was repeated with a fresh amount of 50 ml methanol/water (80/20;v/v).
TNO Report I V7054 I Final 6 October, 2006
6 /26
From the collected first and second extracts 50 I was injected into the HPLC and
analysed for containing
as described in Appendix 1.
The extraction was repeated by using methanol/water (80
ammonia. By addition of ammonia the less volatile
ammonium salt was formed and so the possibility ofevaporation of the ....
during the extraction procedure was reduced.
Blank values were obtained by treatment of50 ml ofextraction solvent in the same way as described above (without adding fluoropolymer).
All experiments were carried out in triplicate.
Typical chromatograms obtained for the determination of
in
methanol/water (blank), in methanol/water containing 0.1 % anunonia and in the first
extract ofa fluoropolymer samples are presented in Figures I and 2.
2.3
Calibration curve
A stock solution of
, containing 0.534 g/ml, was prepared by
dissolving 26.70 mg
into 50 ml methanol/water (80/20;v/v).
The stock solution was diluted by transferring I ml to a volumetric flaks of20 ml and
addition of methanol/water (80/e of 20 ml. The diluted stock solution contained 26.7 ng/ml of--
From the diluted stock solution 0, 10, 20, 40, 80, 120, 160 and 200 I were transferred
to a set ofvolumetric flask of25 ml. The volumetric flasks were filled up to the mark
with methanol/water (80/20;v/v) and mixed thoroughly. The solutions thus obtained
contain approximately 0, 10.68, 21.36, 42.76, 85.44, 128.16, 170.88, 213.60 ng of
per ml.
The calibration standards were analysed by LC-MS as described in Appendix I ofthis report. A typical LC-MS chromatogram obtained for the calibration standard of I 0.68 ng/ml in methanol/water (80/20;v/v) is presented in Figure 3.
1s obtained, the peak heights of the specific MRM ions of -- were measured. From these data, the calibration curve was constructed and the correlation coefficient was calculated.
A graphical plot ofthe calibration curve and the raw data and statistical parameters are presented in Figures 5 and 6.
2.4
Recovery experiment by standard addition to the test sample
The sheets of fluoropolymer were cut into pieces of ea. lx3 cm. A test sample of
approximately 27 g was transferred to a conical flask of I 00 ml. To the test sample 50
ml of the extraction solvent methanol/water (80/20;v/v) and 80 l of diluted stock
solution of
were added. In he sample extract contains
(0.08(ml)*26.70(ng/ml)*1000/50(ml)=) 42.72 ng --- per ml. This corresponds
with 42.72(ng/ml)*50(ml)/27(g oftest-sample) = 79 ng per g fluoropolymer (=g/kg).
The sample was treated as described in item 2.2.
TNO Report I V7054 I Final 6 October, 2006
7126
The recovery experiment was repeated by using methanol/water (80/20) containing 0.1% ammonia.
Typical chromatograms obtained for a standard addition of
to the
test sample is presented in Figure 4a without the addition of ammonia, and Figure 4b
with the addition of ammonia to the extraction solvent.
2.5
Overall migration
2,5.1 95% ethanol
A test sample o
fluoropolymer (2 sheets with the dimension 13x13.4
cm one-sided, corresponding with contact area of 3.484 dm2) was immersed in 100 ml
95% ethanol. After incubation period 6 hours at 60C the samples were removed and
after evaporating of the solvents under controlled conditions, the residues were
estimated gravimetrically, The test was performed in duplicate. From the results the overall migration in mg/6 dm2 was determined.
2.5.2 !so-octane
A test sample of
fluoropolymer (2 sheets with the dimension 13x13.4
cm one-sided, corresponding with contact area of 3.484 dm2) was immersed in 100 ml
iso-octane. After incubation period of 4 hours at 60C the samples were removed and
after evaporating offthe solvents under controlled conditions, the residues are estimated
gravimetrically. The test was performed in duplicate. From the results the overall migration in mg/6 dm2 was determined.
2.6
Characterization of the migrating substances by NMR
The residue obtained under item 2.5 was characterized by NMR. Prior to NMR spectroscopy, the residue was dissolved in I ml deuterated chloroform (CDC13) containing 0.05 % tetramethylsilane (TMS). An aliquot of 600 1 of the solution was transferred to 5 mm NMR tubes. ID NMR spectra were recorded on a Bruker AVANCE 600 MHz spectrometer operating at a resonance frequency of 600.13 MHz a probe temperature of 27C. ID 1H-NMR experiments were acquired using the pulse sequence 'zg'. Free induction decays (F!Ds) were collected into 64K data points using a spectral width of 12376 Hz. 45 Degree pulses were used with an acquisition time of 2.65 s and a relaxation delay of 5.0 s. The spectra were acquired by accumulation of 256 F!Ds. Spectra were recorded using a spectral width of 8000 Hz. Chemical shifts of all spectra are expressed in ppm by reference to TMS (0,00 ppm). Resolution enhancement and noise reduction of the spectra was performed using an exponential window function with a line broadening of 0.3 Hz and a manual baseline correction was applied,
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6 October, 2006
3 Results
3.1
Actual content of
in the test sample
The results obtained for the actual content of offlented in Table l.
The .-i consists ofdifferent oligomers there own s ecific MRM (Multiple-Reaction-Monitorin )ions.
in the test sample
From the results it was concluded that although traces of
were
detected in the first extracts ofthe fluoropolymer sample, all concentrations were lower
than the LOD. The responses monitored in the second extracts of the sample did not
significant differ from the blank (extract without fluoropolymer). In the blank a
background signal of approximately < 10% of the lowest calibration standard was
measured. This low background signal has no significant influence on the final results
because the detected concentrations o
were below the LOD.
Furthermore there was no significant difference between the samples extracted with and without the addition of ammonia. Therefore it was concluded that no was evaporated by using methanol/water as the extraction solvent.
3.2
Detection limit
The concentration of the lowest calibration solution, 10,68 ng/ml, was set as the detection limit. A detection limit ofI0.68 ng/ml corresponds to a residual content of20 ng per kg fluoropolymer. The sum of peak heights ofall detected MRM ions were used for the construction ofthe calibration curve.
3.3
Recovery
The results obtained for the detennination of the recovery of from fluoropolymer is presented in Table 2.
TNO Report I V7054 I Final 6.October, 2006
9 126
T
for the responses observed in the samples without the addition
0
The results obtained for the recovery samples extracted with and without ammonia did not show significant differences. Recoveries measured were adequate viz. between 93 and 103% at the concentration
level of 42.7 ng/ml extract which corresponds with (42.7*50/27) 79 ng/g (=79 flg/kg) of fluoropolymer sample.
3.4
Repeatability and linearity
Repeatability of the method was demonshe standard deviation of the recovery of the standard addition of to the test sample. The measured standard deviation was 7% for the extraction with methanol/water (80/20;v/v) and 8% for the extraction with methanol/water (80/Z0;v/v) containing 0.1% of ammonia.
The calibration curve appeared to be linear in the range of 10.68 to 213,6 ng/ml for the sum of peak heights plotted against the concentration (Fig 6). The correlation coefficient was 0.9995.
3.5
Overall migration
Results obtained for the overall migration are presented in Table 3. From the results it is
concluded that although the duplicate analyses differ significant - due to the low amount measured - the total amount of migration substances in 95% ethanol and iso octane are < l mg/6 dm2.
3.6
Characterization of migrating substances with NMR
1H -NMR spectra of the 95% ethanol migration residue obtained from (fluoropolymer) sample and a blank sample are shown in Figures 7 and 8, respectively.
The spectra of the iso-octane migration residue obtained for the sample of
fluoropolymer and a blank sample are shown in Figures 9 and 10, respectively. Tentative 1H chemical shifts were assigned by means of ACD/HNMR prediction software (ACDlabs, Toronto) and are listed in Table 4. Signals present in both, the fluoropolymer extracts and in their blanks originate from compound introduced during the extraction procedure and the NMR sample preparation; i.e. residual solvent (7.26
ppm), acetic acid (2.10 ppm_water (1.56 ppm), TMS (0.00 ppm). Due to the absence of protons in the fluoropolymer and monomers there off are not visible for 1H-NMR. The
signals present in the extract samples and absent in their blanks are assigned as proton containing migrants. Due to the low intensities en pure resolution of the signals further
assignment was not possible.
Final conclusions is that no significant peaks are detected due to reaction products of the fluoropolymer.
TNO Report I V7054 I Final 6 October, 2006
10 /26
4 Conclusions
The detection limit for the determination of
in samples of
0 ,g/kg. From this result the worst case migration (M) of
....._ to foodstuff can be calculated. Therefore the following formula
has to be applied: M=(Q*A*Ld*D)/1000
Assuming that: Q= cone in mg/kg in fluoropolymer= 0.020 mg/kg, A= area of the food contact material in dm2, conventionally set at 600 cm2, Ld= thickness of food contact
material = 0.04 cm and D=fluoropolymer density is 2 g/cm3
The worst case migration into foodstuff is M=(0.020*600*0.04*2)/1000=0.001 mg/kg.
It was found that the residual content of
in the fluoropolymer was
<20 ,g/kg corresponding with a worst case migration of < 1 ,g per kg foodstuff.
The results obtained from the recovery experiments of demonstrate that the method is accurate and repeatable for the determination of chlorofluoropolyether acids. The mean recoveries at the concentration level of 42.7 ng/ml extract were 997% for the extraction with methanol/water and 1018% for the extraction with methanol/water containing 0.1 % ammonia.
The overall migration of the fluoropolymer in 95% ethanol and iso-octane under migration conditions of respectively 6 hours at 60C and 4 hours at 60C was < l,g/ 6 dm2 Further characterization of the migration substances with NMR did not show any significant reaction product.
TNO Report I V7054 I Final
6 October, 2006
5 Signatures
1 1 /26
, . Analytical Research Department
TNO Report I V7054 I Final
6 October, 2006
12 /26
6 Tables
Table 1 Residual content of
TNO ID of test Cone, in first
sample'
MeOH/H,O extrad
(ng/ml)
0939-02-0951 A < 1 0 0939-02-0951 B < 1 0 0939-02-0951 C < 1 0
in the fluoro ol er test sample
Cone in second Cone. in g per
MeOHIH20 kg of
(ng/ml)
fluoropolymer test sam le2
< 10
< 20
<10
< 20
<10
< 20
0939-02-0951 D < 1 0
< 10
< 20
0939-02-0951 E < 1 0
< 10
< 20
0939-02-0951 F < 1 0
< 10
< 20
1 LOD = 1 0 ng/ml; concentrations in second extracts were <LOD.
2 Residual content is calculated by using the following formula: Concentration of
- in extract (ng/ml)*50(ml)/27(gram of test sample) ng/g (=g/kg) 3 Samples A,B,C are extracted with methanol/water (80/20;v/v) and the samples D,E,F
are extracted with methanol/water (80/20;v/v) containing 0.1% ammonia.
Table 2 Recove TNO ID sample'
of Cone. added (ng/ml)
0939-02-095I A 42.7 0939-02-0951 B 42.7 0939-02-095I C 42.7
93
45.6
1 07
41.3
97
Avera e 99 SD 7
0939-02-0951 D 42.7 0939-02-0951 E 42.7 0939-02-0951 F 42.7
39.2
92
45.8
1 07
44.2
104
Avera e 1 01 SD 8
1 Recoveries are corrected for the 'blank sample'=sample without addition of --; LOD = 1 0 ng/ml; results of second extractions: <l O ng/ml
- Samples A,B,C are extracted with methanol/water (80/20;v/v) and the samples D,E,F are extracted with methanol/water (80/20;v/v) containing 0.1 % ammonia.
TNO Report I V7054 I Final 6 October, 2006
1 3 /26
Table 3 Overall migration
Sample
Simulant
Sample 0939/02/0951
95% ethanol
Sample 0939/02/095 1
!so-octane
Time/temp 6 hours at 60C
mean 4 hours at 60C
mean
Overall migration in ml!I 6 dm2 0.27 0.68 0.48 0.45 0.95 0.7
TNO Report I V7054 I Final 6 October, 2006
1 4 126
Table 4 1H NMR chemical shift. of compounds present in A) 95% ethanol extract of the fluoropolymer, B) 95% ethanol extract of a blank , C) iso-octane extract of fluoropolymer and D) iso-octane extract of a blank samples, recorded in CDC], at
27 C.
Chemical Shift (ppm)
Compound
8.1 I 7.43 7.26 7.09 7.3 -6.9 6.6 -6.4 5.3 - 5.2 4.69 4.4 - 4.2 4.2 - 4. 1 4.1 - 4.0 3.96 3.8 - 3.3 3.67 3.49 2.86 2.58 2.5 - 2.2 2.10 2.0 - 1 .5 1 .5 - 1 .3 1.3 - 1 .2 0.9 0.8 0. 10 0.00 -0. IO
n.d.** satellite of chloroform
chloroform satellite of chloroform
miITTant mio-rant mie:rant miITTant mierant miITTant mim-ant + contaminant
n.d. n.d. n.d n.d contaminant in iso-octanol
contaminant in iso-octanol
miITTand + other comnound acetic acid water
n.d. n.d. n.d. satellite ofTMS internal reference TMS
satellite ofTMS
Functional
Group
n.d. CH CH CH n.d. n.d. n.d. n.d. n.d. n.d. n.d. n.d. n.d. n.d. n.d. n.d. n.d. n.d.
CH- ,
Alkvl RCH,CH1 Alkvl RCH,CH,
Albl, CH, CH3 CH3 CH,
Presence in samolc
A
B
C
D
X
-
X
X
X
X
X
X
X
X
X
X
X
X
X
X
- - X
X
- X
X
-
- - X
X
- - X
X
- - X
X
- X
-
X
- X
X
X
X X
X -
-X
-X
X
X
X
X
X
X
X
X
- -
X
X
--X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
X
In ppm relative to the signal of internal TMS at 0.00 ppm n.d., not determined. Functional groups are not detemrined due to multiple possibilities
TNO Report I V7054 I Final
6 October, 2006
7 Figures
Figure l a
Representative LC-MS chromate (methanol/water=80/20; v/v
1 5 /26
bl opw A
bfa61ll6$9 Sm (Mn. 2x3) 100
;.{
0
-
0.00
2.00
4.00
Ofo6\8689 Sm (ln, 2x3)
, ' 0.00
2.00
4.00
Ofa5 186!19 Sm (Mn. 2x3)
'.'J"' ;
o,l...,:;
0.00
2.0o
4.00
bfaS 18689 Sm (.In. 2,:;3)
'i0.00
2.00
4.00
b!a618689 Sm (Mn. 2x3)
".t100-',
0.00
200
4,00
6.21 75
6.00
8.00
VG62B
10.00 10.70 150
12.00
14.00
-- 16.00
08-Jun-2006 22:27:07 MRM of 6 CnaMels ES 958.9 > 201 1 . 69,;13
Are;1
18.00 '"20'.oo
MRM ol 6 Ctiannels ES792.9 > 201 2.QJpJ
' A<eo -,../4,.
6.00
8.00
10.00
1 2 .00
14.00
16.00
T.- -r--.......-
18.00
20.00
MRM of 6 Channels ES-
9.28 434
,49
626.9 > 201 4.34e3
f73
Ama
-
6.00
8.00
10.00
-
12.00
14,00
16.00
18.00 20.00
MRI.I of 6 CMnnels F.S
937
532 9 ,. 201
129
2, 18e3
Area
6.00
8.00
6.35 1041
10.00
...' ,,..,..,...
12.00
14.00
16.00
1 -,,......._,.., 18.00 20.00
I\IRM of 6 Channels ES-
460 9 > 20 1
6.37e3 Areo
6.00
8.00
10.00
12.00
14.00
16.00
18.00
2,0,.00
TNO Report I 1/7054 I Final
6 October, 2006
1 6 /26
Figure lb Representative LC-MS chromato am ofblank extraction solven1
bi opw 8 NH4
VG628
09-Jun-2006 07:15:20
bfa618714 Sm (Mn. 2x3)
t,IRM of 6 Chanricls ES-
1 '.:']
9SB.9 ,. ;m _._,'-"-A------JV,,.,..,,,AA,J..,. .._-,.,..._,...__J 82S:
"'L "' 0.00 .2. :oo-,T.r oo--,T.oo---,.o-o --,,r.oro--r,,,.,Torr14'.oo'T-,T.r .O- O - 18.00 20:00
bla.618714 Sm {Mn, 2x3)
MRM ofG Channels (S.
100
1067 121
792.9 > 20? 1 . 59e:1
* ,-...,..___J,...__,.,L._______,._AJ-..Jv.\...-...N,.,.,,,_,. Arca
,1..._T, -T,--,------~----T
0.00
2.00
4.00
6.00
8.00
- 10.00
--------
12.00
14,00
------- ,
16.00
18.00
20.00
bfa6187l4 Sm (Mrl. 2x3)
MRM of 6 Channels ES-
626.9 > 201
6.3&3
Arca
20.00 MRI.I of 6 Cbanm!1$ ES
313
3.17c3
9 Acea
'i .;;:::;;:;;:;:;;:::;;;:;;;:;::'::;:;:'.:::;:;::::;;::::;:';"".:,:::;;::::::::;:::::;:;:;:::;:;:'.:;:;::::;::::;:::::;=;;:;:;:::;:;;1:5:3;;2.:.;_: -.,. 201
,?00-.. o.oo
2.00
4.oo
s.oo
a.oo
10.00
12.ooOO
1a'.oo
-20\X>
bfa618714 Sm (Mn. 2x3)
MRM ol 6 Channels ES
1001
8 30
460,9 > 201 9 56e3
_1 :.\i-'>'T=,r"'-="l"="r'=i==r"""i=s;,.,..,C'-'=="r~===,p=-f- ="r="r'='i'"""'"'-1 Area
0.00
2.00
4.00
6.00
8.00
10.00
12.00 14.00
16.00
18.00
20.00
bf.361871,i Sm {Mn, 2)(3)
MRI.I of 6 Channels ES-
,oo-
29-1.9 201
:l -::: 0.00
2.00
4.00
6.00
8.00
10.00
12.00
14.00
16.00
16.00
20.00
TNO Report I V7054 I Final
6 October, 2006
17 /26
Figure 2a Representative LC-MS chromatogram of a first extract of a fluoropolymer
-----------_,__,____J.L-._. _______ 0939,02/0951 J
bfa618593 Sm (Mn. ::I) 100]
VG628
08.Jun-2006 23:51:27 tlRM or$ Cnanne1$ ES958.9 > 201
a
--'1 :;
o+.-..,.,T-----------;---- t -~T ------
0.QQ
2.0o
4.oo
s.oo
a.oo
10.00
12.00
14.oo
1s.oo
1a.oo
20.00
ol.i6!8693 Sm (Mn, 2.3)
MRM of 6 Channels ES
10 68
792.\1 > 20:
':JlL=====, ~==========='"L ==="-'===========l;\;:; "" 0.00
2.00
4.00
6.00
8.00
10.00
12.00
14.00
16.00
18.00
20.00
ofa.51B693 Sm (Mn. 2x3)
MRM of 6 Char111els ES-
1n9
626.9 > 201
':L.-===-======","-.=====,====~-.==---= '- 0.00
2.00
4.00
6.00
8.00
10.00
bfa518693 Sm (Mn. 2x31
910.3505
:L========= ""================"' 0.00
2.00
4.00
6.00
bfa518693 Sm (Mn. 2x3)
;L ,_,, ~""=-. - 0
======_,.....,...<i'+-r
0.00
2.00
4.00
6.00
tlla61 663 Sm \Mn. 2x3)
==
6.00
10.00
169 4 1
8.00
10.00
12.00
14.00
16.00
12.00
14.00
16.00
'!' ===== 11.53 12.00
14.00
16.00
18.00
20.00
MRM of 6 Channels ES
532.9 > 201
6,86e3
Arc.1
18.00
20.00
MRM oi 6 Channels ES 460,9 >- 201
1 . 1A0rec.lJ
a 16.00
20.00
MRM of 6 Channels ES
TNO Report I V7054 I Final
6 October, 2006
1 8 /26
Figure 26 Representative LC-MS chromatogram ofa first extract of a fluoropolymer sample.
l 0939/02/0951 D
VG628
09.Jun-2006 02:19:01
llfa618700 Sm (Mn. 2x3)
l\1RM o! 6 Cti.:innels E;S-
1
9.84 59
958.!:I 201 1.50e3
--L Areo
r--r~,..,,-.--------- "r-- . ... ,
0.00
2.00
4.00
6.00
8.00
10.00
12.00
14.00
llt.i<ilt:1700 Sm (Mn. 7x'.l)
16.00 18-. 00 .2..0.-,.00
2.00
4.00
b1.:i518700 Sm {Mn. 2)(3}
""l _9.30
8.00
10,00
12.00
"'L 9.29
6.00
8.00
10.00
12.00
8.29 1507-
14.00
16.00
18.00
20.00
MRM of 6 CMnnels ES
626.9 ,. 201
1 04e-l
Acea
16.00
1 8.00
20.00
MRM of 6 Channels ES-
460,9 > ?.01
9 39e3
Area
bf;'l618700 Sm (Mn, 2x3)
MRM of 6 Channels ES 29J.9 > 201 I 03e3
'l: :::: T::'
0,00
2.00
4.00
6.00
8.00
10.00
12.00
14.00
16.00
18.00
20.00
TNO Report I V7054 I Final 6 October, 2006
Figure 3 Representative LC-MS chromato (LOD).
1 9 /26
VG628
08-Jun-2006 19:17:23
, ___,,__'-------_,___,,.,.__ t /, , Mf{Mof6Channels ES,
9589 >201
01e,
,....
.,,.i Are;i
10.71
MAM of 6 ChaMeis ES 792.9 > 201
'i====-=========='''''.n'-, _ --======,......' %::: 0.00
2.00
4,00
ofa618600 Sm (Mn. 2x:3)
100 4
- - o4
0,00
2.00
4.00
bfi'!618680 Sm (Mn, 23}
'i . - , ,& , ofa6186e0 Sm (Mn. 2x3l
6.00
8.00
10.00
9,31 4795
6,00
8.00
10,00
9.31 3039
1
a 30
12.00 12.00
14.00 14.00
16.00
18.00
20.00
t,lR/\1 of 6 Cn<mn;.:1$ ES
626.9 ,. 201 3 14!,7<
16.00
16.00 MRM or 6 Chant1el1 ES
532_9 "' 201 2.24e<l Area
1
1
-
MR.M of 6 Channel$ ES-
460.9 > 201
':1 . ''"l ,r .';: : o.oo 2.00 4.o s.Oo s.bo m'.oo 12'.oo 14'.oo 16'.oo ,a'.oo 20.00
bl.1618680 Sm /Mn, 2d)
MRM of fi Channels ES
100
294.9 > 201
l--- u_,_;,': 0.00
2.00
4.00
6.00
8.00
10.00
12.00
14.00
16,00
18.00
20,00
TNO Report I V70M I Final 6 October, 2006
20 /26
Figure 4a Represenative LC-MS chromatogram of the first extract after standard addition of 42.7 ng/ml to
0939/02/0951 A bfa618500 Sm (Mn, 2x3)
VG62B
':1] ""l r-
' 0.00
2.00
4.0o
Ofa61 8690 Sr:i {Mn. 2;,:3)
100]
-l
' ' ' ' ' oo.loo 2.0o 4.00
bfafilf:!600 Sm (Mn, 2x3)
':oi]J.------'-=--=-' -".,'l,,,:,,,--' --------,,,'._.,-,- 0,00
2.00
4.00
, ,..l bfo0"\8690Srn{Mn. 2x3)
10.00 10.68
s.bo
a.00 '1"07.00
8992898
1
6.00
8.00
10.00
9.30
e.Oo
8,00
8-29
10,00
12.00
..1..4....0-0+- . 16.00
20,00 MRM or fi Cnannels ES-
79;:'..9 > 20 l :.13e4 Area
12.00
14.00
16.00
1 8.00
20.00
MRM of n Channels ES
626 IP 201
5 94-l
. Aien
12.00
14.00
16.00
1a'.oo
20'.oo
MRhl oi 6 Ct1anneIs ES-
532.9 > 201
3.4De4
Area
12.00
14'.oo
16:oo
20.00 MRM nf G Ch:mncls. ES
.
' ' , iJ-- ~--4 .00~--6. 00 -'- 8.0 "0"'-1- 0.0- 0 -12 .00-- 14'.0- 0 1- 6,0- 0 ---r'_'_ 9B\
TNO Report I V7054 I Final 6_October, 2006
21 /26
Figure 4b Represenative LC-MS chromatogram of the first extract after standard
addition of 42.7 ng/ml to the sample of fluoropolymer. Exlr'action solvent methanol/water=80/20 v/v containin 0.1 % of ammonia.
0939/02/0951 D spiked
VG628
09-Jun-2006 03:22:36
ta518703 Sm (Mn, 2x3}
MRM of 6 Ch.:lni1els ES
100
951;! 9 " 201 .
.J v...-,._.,.__._.,..,_ A:;
o+----- r-----""--
0.00
2.00
4.00
6.00
8.00
10.00
12.00
14.00
16,00
ofa61 tr/03 Sm (Mn, 2x3)
1066
1s:oo
20.00
MRM ol 6 Channels c;s.
792.9 >201
Area
,L""'-.,.------,.--...--,--".,'._,l,a;,-.--,_,. ,.____ ' , o.oo
2,00
4.oo
a.o
a.00
10.00
12.00
14.00
16.00
_,'_..,........,227e4
18.00
20.00
bfa518703 Sm {Mn. 2x:Jj
MRM of 6 Channels ES-
" :0
930
626.9 :, 201
6.19,;4
" 1
Are,;1
l ' "oo----,.o-o --,.o-,---,-.o-o---,-.o- o '=,,.:,o.-o,...,._1_2r:o- o -14.- 00 --16-.00--- 18.0-0 -20'.00
Ofa6187D Sm {Mn, 2x3)
MRM of 6 Channels ES
532.9 :> 201
ioi 3.42e4 Area
, l g+_O= Q =-,.-0---..00--,.0-0--,-.0-IJ -,-e,o"'.oO=-,,-.o--14.00 16.-001- 8.00-20.00
bfai31!l703 Sm (Mn, 23)
MRM of O Channels ES
8.30
460.9 ::- 201
:1 1141'1 ',':
7.45c-1 Arca
j ( 1 , - ,_
bfc1618703 Sm (Mn, 2:',)
MRM of 6 Chnnnels ES
1
2 4.9 > 201
:I! \..A,_,-,Vo,N<'w\JJ.ivJv,J,v,"h..wW 9 A;
0.00
2.00
4.00
6.00
8.00
TNO Report I V7054 I Final 6 October, 2006
22 /26
tilii.1e raw data and statistical parameters of the calibration curve of-
(ng/ml)
(area)
analvte
0,00
1 783,00
1 ,783E+03
10,68
9079,00
9,079E+03
21 ,36
1 7965,00
1 ,797E+04
42,76
30303
3,030E+04
85,44
57995
5,800E+04
1 28,16
86417
8,642E+04
1 70,88
1 09608
1 ,096E+05
213,6
1 42900
1 ,429E+05
0,00
4600
4,600E+03
10,68
8535
8,535E+03
21 ,36
1 5325
1 ,533E+04
42,76
29834
2,983E+04
85,44
58566
5,857E+04
128,16
86496
8,650E+04
1 70,88
1 1 3441
1 , 1 34E+05
213,6
1 45209
1 .452E+05
Statistical evaluation
Calculated statistical carameters
Intercept of uocer confidence bound (Yu""'
Intercept of lower confidence bound CY1ow1
Standard error of estimate Y Est IS.,\ Standard error ofthe crocedure S,o
Slope a
Standard errror ofslope a
Intercept ofXi (Y, = 0)
Intercept b (Xi = 0l
Standard error of interceot b
Correlation coefficient r
Response lowest calibration value
Resoonse hiahest calibration value
Decrees of freedom (di = n-2\
tvalue 99%, one-tailed: 0.01-,n
Within laboratorv detection limit rwou
Linear Regression fix) = a * x + b
7202, 1 2 8 8 -2487,2 1 1 9 1 727,1798
2,6403 654,1558
5,7991 3,6038 2357,4585 651 ,4300 0,9995 1 783,00000 145209,00000
14 2,62449
7,406
TNO Report I V7054 I Final
6 October, 2006
Figure 6 Typical calibration curve of
23 /26
! " \i)OEc..,;
! o,o,:rn..;,.,.
l.ll!IEc(M
u.OOEi ,_ - - - - -- - - - - - ------- - - - --- ---
50
100
- ,
200
Concentraton of
{nghn!)
---1
TNO Report I V7054 I Final
6 October, 2006
24 126
Figure 7 600 MHz 1H-NMR spectrum of the migrating substances of the fluoropolymer into 95% ethanol, desolved in CDC], containing 0.05% TMS.
I
9
8
6
5
4
3
2
0
ppm
Figure 8 600 MHz 1H-NMR spectrum of the blank 95% ethanol after migration, desolved in CDC13 containing 0.05% TMS.
9
8
.I I
l .J
6
5
4
3
2
a
ppm
TNO Report I V7054 I Final 6 October, 2006
25 /26
Figure 9
600 MHz 1H-NMR spectrum of the mib,rating substances from the fluoropolymer into Isa-octane, desolved in CDC13 containing 0.05% TMS.
' '
I,
'I
9
7
6
5
4
2
0
ppm
Figure 10 600 MHz 1H-NMR spectrum of the blank sample iso-ocatane desolved in CDC13 containing 0.05% TMS.
'
9
'
I"
I
' .. I
6
5
3
2
0
ppm
TNO Report I V7054 I Final
6 October, 2006
26 126
8 Appendix
BO I
Detem1ination of chlorofluoropolyether acids in fluoropolymer
TNO Report I V7054 BO! I Final
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6 October, 2006
Determination of chlorofluoropolyether acids in f1uoropoIymer
1
Introduction
is a chlorofluoropolyether acid
used as an
emulsifier/dispersing agent during the polymerisation process of fluoropolymers. These
fluoropolymers are processed to produce a range of articles for repeat use like parts for
food processing equipment, tubes, tapes, coatings on cooking utensils.
After the manufacture, chlorofluoropolyether acids can migrate into foodstuffs coming
into contact with that product.
The analytical method described the determination of the residual content of
chlorofluoropolyether acids in the final fluoropolymer product.
2
Scope
This method describes the determination of chlorofluoropolyether acids in methanol/water extracts obter samples produced by the use of chlorofluoropolyether acids. The method is appropriate for the quantitative determination of chlorofluoropolyether acids in approximate analyte concentration range of IO to 200 ng/ml methanol/water.
3
Principle
The fluoropolymer sample is extracted with methanol/water (80/20;v/v) containing 0.1% ammonia. The extract is analysed for the content of chlorofluoropolyether acids by LC-MS. Quantification is done by means of an external standard calibration.
4
Reagents
Reagents and solvents shall be of analytical quality unless otherwise stated.
4.1
Ana/ytes
4. 1. 1
Chemical description: chloro-fluoropolyethers acid ~90%
CAS Name: 1-Propene, l,1 ,2,3,3,3-hexafluoro-, telomers with
chlorotrifluoroethene oxidized reduced, hydrolized
Trade Name:
Molecular Weight:
CAS No.:329238-24-6
70Structural Formula:
4.2
Chemicals
4. 2 . 1
Water deionized, purified with Bamstead NanoPure Infinity Purifier),
HPLC quality water
4.2.2
Ammonium acetate (Merck art 11 16)
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6 October, 2006
4.2.3 4.2.4 4.2.5 4.2.6 4.3 4.3. 1
4.3.2 4.3.3 4.3.4 4.3,5
Methanol, HPLC grade (Rathburn art RH1 0 1 9)
Ammonia 25% (Merck art 31.05.04)
Ethanol, for spectroscopy (Merck art 1.000980)
Acetic acid (glacial) 1 00% (Merck art 1 .00063)
Solutions
Standard stock solution of (80/20; v/v) (approximate 0.6 mg/ml),
m methanol/water
the nearest 0. 1 mg, approximately9mg of - (4. 1 . 1 ) in a 50 ml volumetric flask and dissolve in methanol/water (80/20; v/v). Fill the volumetric flask up to the mark with methanol/water. Close and mix thoroughly. Calculate the actual concentration in mg
Repeat the procedure lo obtain a second standard stock solution.
NOTE: The two primary standard solutions of analyte shall be checked against one another. The response factor, i.e. detector response divided by concentration of analyte solution, of the two primary standard solutions shall not differ more than 5%. If there is agreement within 5 %, subsequent diluted standard solutions are made from only one of the primary standard solutions. If the levels of the two independently prepared stock solutions do not correspond to within 5% then both stock solutions shall be discarded, and new solutions shall be prepared,
Diluted stock solution
Transfer to a volumetric flaks of 20 ml, 1 ml of the stock solution of 0.6 mg/ml (4,3.1 ) and add methanol/water (80/20) to a final volume of 20 ml. The diluted stock solution contains 30 ng/ml of
0.1% Ammonia in methanol
Mix 4 ml ammonia 25% (4.2.4) with 996 ml methanol (4.2.3).
Extraction solvent (0.1% ammonia in methanol:water ; 8:2)
Mix 800 ml 0.1 % ammonia in methanol (4.3.3) with 200 ml water (4.2.1). Extraction solvent is used with and without the addition of ammonia.
Ammonium acetate solution (! mol/1)
Dissolve 77,08 g ammonium acetate (4.2.3) in water (4.2.2) and adjust to a volume of 1000 ml with water.
TNO Report I V7054 BOI I Final
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6 Oclober, 2006
4.3.6
Eluent A:
5mM Ammonium acetate solution
Mix 5 ml of 1 M ammonium acetate solution (4.3.3) with 995
ml water (4.2.2).
4.3.7
Eluent B:
l0mM Ammonium acetate in methanol
Mix 1 0 ml of l M ammonium acetate solution (4.3.4) with 990 ml methanol (4.2.3).
5
Apparatus
NOTE:An instrument or item of apparatus is listed only where it is special
or made to a particular specification, usual laboratory glassware and
equipment being assumed to be available.
LC-MS system whose main components include a High Performance Liquid Chromatograph preferably with an automatic injector or 100 l
injection loop, and a mass spectrometer (MS) detector operated in negative
electrospray ionisation mode (ES!-).
HPLC column, capable of producak of - and capable to separate from interfering peaks originating from sample matrix or extracting solvent.
The following chromatographic conditions have been found to be suitable:
NOTE: Depending on the type of equipment used for the determination, the appropriate operating conditions are to be established.
Liquid Chromatography
The LC-equipment operates under control of the MS data system using LC method files. HPLC chromatograph: Waters Alliance 2690 separations module.
Use eluent A (4.3.6) and B (4.3.7).
Column: Aqua 5 Cl8 125A column; dimensions 150 x 3 mm
Linear gradient: Time (min)
0 2 2.10 1 3.00 1 3.10 14.00
Eluent A (%) 40 40 10 10 40 40
Eluent B (%) 60 60 90 90 60 60
Flow rate: 0,3 ml/min Injection volume: 50 l Autosampler temperature: 20C
TNO Report I V7054 BO I I Final
4/7
6 October, 2006
Column temperature: 30C Runtime: 20 min
Mass Spectrometry
The mass spectrometer is controlled using the MassLynx 4.0 software MS: Waters Ultima triple quadrupole MS in the negative electrospray ionisation mode.
MS conditions Ionisation: Interface: Scanmode: m/z values detected:
Start time: End time: Collision energy (eV)
0.5 min 20 20-42
6
Sample preparation
6. 1
Test samplepreparation
Cut the sample into pieces of approximately lx3 cm. Weight into a conical
flask approximately 27 g of sample material. Add 50 ml of the extraction solvent methanol/water (80/20;v/v). Reflux the sample for 8 hours and
transfer an aliquoate of the extract to an HPLC vial. Discard the remaining
extraction solvent and repeat the extraction with a fresh amount of 50 ml methanol/water (80/20;v/v). Inject 50 ,1 ofthe first and second extract into the HPLC and analyse the extracts for containing Fluorolink 7800:7850.
6.2
Blank sample preparation
Treat extraction solvent in the same way as described in 6.1.
6.3
Recove1y experiments
TNO Report I V7054 BO I I Final
5/7
6 October, 2006.
Add to t g of the sample material 80 I of standard
solution (30 g/ml see item 6.4). This corresponds
with an addition of 85 g per kg sample material. Treat the spiked sample
as described in section 6.1. The final extract thus obtained contains
approximately 48 ng of
per ml extract.
6.4
Calibration sample preparation
Transfer, into a series ofeight 25 ml volumetric flasks 0, 10, 20, 40, 80,
120, 160 and 200 I ofthe diluted standard stock solution (4,3.2). Fill the
Transfer to a volumetric flaks of 20 ml, I ml of the stock solution of 0.6
mg/ml (4.3.1) and add methanol/water (80/20) to a final volume of20 ml.
The diluted stock solution contains 30 g/ml of
up to the mark with methanol/water (80/20;v/v) and mix thoroughly. The
solutions thus obtained contain approximately 0, 12, 24, 48, 96, 144, 192
and 240 ng of
per ml.
7
Procedure
7.1
LC-MS analysis
NOTE: When starting measurements, baseline stability and response linearity of the detector should be examined, together with verification of the detection limit. The same operating conditions of the LC-MS system shall be maintained through out the analysis of all test samples and solutions set out in section 6. Each test sample shall be analysed at least in triplicate.
7.2
Sample treatment
Extracts of the samples, recovery samples, blanks, as well as calibration
samples prepared in section 6 are analysed by LC-MS.
Identify the
peak on the basis of the retention time
and the specific MRM ions measure the peak height.
7.2. l
Calibration solutions
Inject each of the calibration samples (6.4) into the HPLC column.
Measure the peak height of the six MRM ions of
in
the chromatogram obum of these peak heights against
the concentration of__. in the calibration samples in ng
per ml methanol/water as calculated in section 6.4.
NOTES: The calibration curve should be linear. The correlation coefficient should be 0,996 or better, If correlation requirement is not met, new standard solutions shall be prepared from the original stock solutions, Analysis of the standard solutions and construction of the calibration graph shall be repeated. The two sets of calibrant solutions made from independently prepared stock solutions should be cross-checked and should agree to 5 % of one another on the basis of peak ratio measurement.
TNO Report I V7054 BO I I Final
6/7
6 October, 2006
7.2.2
Test samples and blank solutions
Inject SO l of the solutions obtained according to section 6.1 and 6.2 into the LC-MS system, using the conditions given in 5.16.
7.3
Quantification
7.3,1
Calculating of
concentration in the test samples
Graphical determination:
Using the peakd from the test samples according to 7.2.2, read the---, concentration of the methanol/water (80/20;v/v) extract from the calibration graph (7.2.1) in ng/ml.
Calculation from the regression parameters:
NOTE: An EXCEL computer programme was developed which preferably should used to construct a calibration curve, and to calculate the correlation coefficient and other statistical data (according DIN 32645).
Use the measured peak area as obtained in 7.2.2 in the following formula.
If the regression line equation is y [log (peak area)] = a x [g/ml] + b,
then the
CFLU,extr is CFLU,tr = (y-b)/a
concentration m the methanol/water
Both procedures yield directly the the methanol/water solution in ng/ml.
concentration in
NOTE: The method applying calculation from the regression parameters should be the preffered one.
7.3.2
Calculation of the specific
Calculate the residual content of
fluoropolymer sample as follows:
RC (ng/g) = C,w,oxo(ng/ml) * V / G
in which: CrLU.extr = concentration of solution as obtained in 7.3.1
V = volume ofisopropanol solution (ml)
G = gram oftest sample
in methanol/water
TNO Report I V7054 BOI I Final
717
6 October, 2006
8
Validation
8. 1
Recovery and repeatability
Recovery and repeatability (SD of the recovery; n=3) of the method were for the standard addition to the sample material at the concentration level of 42.7 ng/ml: 997% for the extraction with methanol/water (80/20;v/v) and 1018% for the extraction with methanol/water containing 0.1% of ammonia.
8.2
Detection limit
The detection limit, based on the calibration curve was the lowest calibration point i.e. 1 0.68 ng/ml.
9
Test report
The test report shall contain, as a minimum, the following:
an identification
name ofthe laboratory
name ofthe person responsible for the analysis
date ofthe report
date ofthe analysis
chemical name of the analyte
a reference to the method of analysis
the performance characteristics of the method
sample details, such as:
type of food/food simulant/material/article
date ofreceipt of the sample, its origin and its
denotation
*
date of preparation of the laboratory sample
conditions of storage of sample and laboratorium
sample
results expressed in /lg/kg fluoropolymer.
results should be reported as the average value from two or more
determinations satisfying the repeatability criterion in section 8.3.
reasons for modification ofthe method of analysis, if applied.