Document g2wLJnzjN99NZmreoYGobYXRe
AR226-3370
The Role of Photolysis in the Atmosp Fate of Perfluorinated Aldehydes:
Phase UV and IR Absorption Spec
Hashikawa, Y.1, Kawasaki, M.1, Sulbaek Andersen, M.2, N O.2, Hurley, M.3, Wallington, T.3, Waterland, R.4,
1 Kyoto University/ Kyoto, Japan 2 University of Copenhagen, Copenhagen, Denmark
3 Ford Motor Company, Dearborn, MI, USA 4 E. I. du Pont de Nemours & Co., Inc., Wilmington, DE, USA
Abstract
Long-chain perfluoroalkyi carboxylic acids (PFC
been observed in remote locations and are presumed t atmospheric degradation products of precursor chemica Atmospheric oxidation of fluorotelomer alcohols (FTOH
O^x+i0^1'^01'^ has been suggested as a possible so
PFCAs. It is well established that perfluorinated aldeh
(PFALs) are atmospheric oxidation products of FTOHs, subsequent fate of these aldehydes is unclear at this ti
Since UV photolysis is likely to be an important process for PFALs, we have examined the UV and IR sp
^^x+i^0 (x=l-4) using computational and experime
techniques,
ntroduction
Very recently, derivatives of perfluorooctanoi
(PFOA, CyF^COOH) and of other perfluoroalkyi
carboxylic acids (C^x+iCOOH, where x = 6 -12
been observed in trace quantities in fish [2,3] an
mammals [4] in remote locations.
Fluorotelomer alcohols, (FTOHs, CJ^+iCHzCH
are chemical intermediates commonly used in th manufacture of fluorotelomer-based products an been suggested that atmospheric oxidation of FT may be a source of PFCAs in the environment [5
FTOHs:
in the environm
not be in water. Will not be in biota. Strongly sorbed to soil.
s Observed in air,
Atmospheric Fate of FTO
FTOH
Expect FTOH to travel 1000s
(PFAL)
A. It depends on what else is around: NOx and H A'. It depends on where you are: urban/suburban
A. What else is around; NO.X.' A'. Where you are: urban/suburban.
No perfluorinated acids form A. What else is around: HO^.
A\ Where you are: remote regions.
Some perfluorinated acids form
Competition from photolys
Do the fluoroaldehydes photolyze?
If so, how does photolysis compete with ch
pathways?
C^n+iCHO + hv ----^ CnF^+i + - CHO
----^ C,F^iH+CO
What is known: The normal aldehydes CnH^n+iCHO photodissociate (hours/days) by the corresponding pathways
Experimental Materials & Meth
C^x+iCHO (x=l-4) samples were synthesize
Research and purified by vacuum distillation.
UV spectra measured using a commercial dua UV spectrometer (Lambda 18, Perkin Elmer) ope spectral resolution of 1.0 nm.
IR spectra were derived from 32 superposed
interferograms measured using a Mattson Instru Sirius 100 FTIR spectrometer operated at a spec resolution of 0.50 cm-1, interfaced to a 140 liter, evacuable Pyrex chamber.
Spectra were recorded at 296 K in the presen Torr of air diluent.
Theoretical Methods
All calculations were performed using the Ga
03 [6] suite of programs using the B3LYP fun
UV Spectra
Optimized geometries and frequencies were obtained using derived DZVP basis set.
Vertical excitation energies and oscillator strengths were c with TD-DFT using the DZVP basis set augmented with Ry
functions on all heavy atom centers.
Energies were rescaled using E^ =
IR Spectra
1.144Ecaic -
0.553 eV
Geometries, frequencies and intensities obtained using B3L
Frequencies were scaled by 0.961.
Cross-section (10'20 cm2 molecule'1)
NM-0-yiO -l M W 0 IM ft 0)
Results: IR Spectra
Lu^l_k
A: C^PgCHO B: C3F,,CHO
750 1000 1250 1500 1750 2000 2250 2500 2750 3000
Wavenumber (cm'1)
Figure 2
Discussion
The PFALs C^F^+iCHO (x=l - 4), absorb strongl
critical UV region above 290 nm.
absorption is concentrated in a broad single band. for the higher aldehydes, the peak absorption is at
anticipate that the higher homologues (x>4), will a
very similar wavelength.
absorption maximum increases monotonically and r increasing length of the perfluorinated tail. Peak ab C4FgCHOis about 3.5 times greater than that of CF3
The higher perfluoroalkyi aldehydes absorb more st the corresponding non-halogenated counterparts.
PFALs will
UV much
th
non-halogenated
Discussion
However, in the absence of quantum yield data unclear whether the rate of photolysisof long c perfluoroaldehydes is greater than, comparable than that of the corresponding normal aldehyde
Studies of the photolysis quantum yields for C^
(x > 1) under atmospheric conditions are neede quantify the degree to which photolysis compet
and perhaps eliminates, formation of perfluoroc
acids by chemical pathways.
References
1. J. W. Martin, M. M. Smithwick, B. M. Braune, P. F. Hoekstra,
G.Muir, S. A. Mabury, Environ. Sci. Tech. 38, 373 (2004).
2. C. A. Moody, J. W. Martin, W. C. Kwan, D. C. G. Muir, S. A. M
Environ. Sci. Tech., 36, 545 (2002).
3. C. A. Moody, W. C. Kwan, J. W. Martin, D. C. G. Muir, S. A. M
Analytical Chemistry 73, 2200 (2001).
4. J. W. Martin, M. M. Smithwick, B. M. Braune, P. F. Hoekstra,
Muir, S. A. Mabury, Environ. Sci. Tech. 38, 373 (2004). 5. D. A. Ellis, J. W. Martin, A. 0. De Silva, S. A. Mabury, M. D. H
P. Sulbaek Andersen, T. J. WaUington, Environ. Sci. Tech. 38
(2004).
6. Gaussian 03, Revision B.05, M. J. Frisch et al., Gaussian, Inc. Pittsburgh PA, (2003).
Acknowledgements
Ole John Nielsen thanks the Danish Natural Science Research C for financial support. In addition, we thank Robert C. Buck, Pau Krusic and Mary A. Kaiser for their assistance in this work.