175
Trifuoroacetic Acid from CFC Replacements
Tian, Y., Yao, Y.M., Chang, S., Zhao, Z., Zhao, Y.Y., Yuan, X.J., Wu, F.C., and Sun, H.W.
(2018). Occurrence and phase distribution of neutral and ionizable per- and
polyfuoroalkyl substances (PFASs) in the atmosphere and plant leaves around
landflls: A case study in Tianjin, China. Environ. Sci. Technol. 52(3), 1301–1310.
Doi: 10.1021/acs.est.7b05385.
Tromp, T.K., Ko, M.K.W., Rodriguez, J.M., and Sze, N.D. (1995). Potential accumulation
of a CFC-replacement degradation product in seasonal wetlands. Nature 376
(6538), 327–330. Doi: 10.1038/376327a0.
Visscher, P.T., Culbertson, C.W., and Oremland, R.S. (1994). Degradation of trifuoroacetate in oxic and anoxic sediments. Nature 369(6483), 729–731. Doi:
10.1038/369729a0.
Vollmer, M.K., Rhee, T.S., Rigby, M., Hofstetter, D., Hill, M., Schoenenberger, F., and
Reimann, S. (2015). Modern inhalation anesthetics: Potent greenhouse gases
in the global atmosphere. Geophys. Res. Lett. 42(5), 1606–1611. Doi: 10.1002/
2014gl062785.
Von Sydow, L.M., Grimvall, A.B., Boren, H.B., Laniewski, K., and Nielsen, A.T. (2000).
Natural background levels of trifuoroacetate in rain and snow. Environ. Sci.
Technol. 34(15), 3115–3118. Doi: 10.1021/es9913683.
Wallington, T.J., Hurley, M.D., Fedotov, V., Morrell, C., and Hancock, G. (2002).
Atmospheric chemistry of CF3CH2OCHF2 and CF3CHClOCHF2: Kinetics and
mechanisms of reaction with Cl atoms and OH radicals and atmospheric fate
of CF3C(O•)HOCHF2 and CF3C(O•)ClOCHF2 radicals. J. Phys. Chem. A 106(36),
8391–8398. Doi: 10.1021/jp020017z.
Wallington, T.J., Schneider, W.F., Worsnop, D.R., Nielsen, O.J., Sehested, J., Debruyn, W.J.,
and Shorter, J.A. (1994). The environmental-impact of CFC replacements – HFCs
and HCFCs. Environ. Sci. Technol. 28(7), A320–A326. Doi: 10.1021/es00056a002.
Wang, Q.Y., Wang, X.M., and Ding, X. (2014). Rainwater trifuoroacetic acid (TFA) in
Guangzhou, South China: Levels, wet deposition fuxes and source implication.
Sci. Total Environ. 468, 272–279. Doi: 10.1016/j.scitotenv.2013.08.055.
Wang, Z.Y., Wang, Y.H., Li, J.F., Henne, S., Zhang, B.Y., Hu, J.X., and Zhang, J.B. (2018).
Impacts of the degradation of 2,3,3,3-tetrafuoropropene into trifuoroacetic acid
from its application in automobile air conditioners in China, the United States,
and Europe. Environ. Sci. Technol. 52(5), 2819–2826. Doi: 10.1021/acs.est.7b05960.
Waskell, L. (1978). Study of mutagenicity of anesthetics and their metabolites.
Mutation Res. 57(2), 141–153. Doi: 10.1016/0027-5107(78)90261-0.
Wu, J., Martin, J.W., Zhai, Z.H., Lu, K.D., Li, L., Fang, X.K., Jin, H.B., Hu, J.X., and
Zhang, J.B. (2014). Airborne trifuoroacetic acid and its fraction from the degradation of HFC-134a in Beijing, China. Environ. Sci. Technol. 48(7), 3675–3681. Doi:
10.1021/es4050264.
Wujcik, C.E., Cahill, T.M., and Seiber, J.N. (1999). Determination of trifuoroacetic
acid in 1996–1997 precipitation and surface waters in California and Nevada.
Environ. Sci. Technol. 33(10), 1747–1751. Doi: 10.1021/es980697c.
Wujcik, C.E., Zehavi, D., and Seiber, J.N. (1998). Trifuoroacetic acid levels in 1994–1996
fog, rain, snow and surface waters from California and Nevada. Chemosphere
36(6), 1233–1245. Doi: 10.1016/s0045-6535(97)10044-3.
Xie, G.Y., Cui, J.N., Zhai, Z.H., and Zhang, J.B. (2020). Distribution characteristics of trifuoroacetic acid in the environments surrounding fuorochemical production
plants in Jinan, China. Environ. Sci. Pollut. Res. 27(1), 983–991. Doi: 10.1007/s11356019-06689-4.
Trifuoroacetic Acid from CFC Replacements
Tian, Y., Yao, Y.M., Chang, S., Zhao, Z., Zhao, Y.Y., Yuan, X.J., Wu, F.C., and Sun, H.W.
(2018). Occurrence and phase distribution of neutral and ionizable per- and
polyfuoroalkyl substances (PFASs) in the atmosphere and plant leaves around
landflls: A case study in Tianjin, China. Environ. Sci. Technol. 52(3), 1301–1310.
Doi: 10.1021/acs.est.7b05385.
Tromp, T.K., Ko, M.K.W., Rodriguez, J.M., and Sze, N.D. (1995). Potential accumulation
of a CFC-replacement degradation product in seasonal wetlands. Nature 376
(6538), 327–330. Doi: 10.1038/376327a0.
Visscher, P.T., Culbertson, C.W., and Oremland, R.S. (1994). Degradation of trifuoroacetate in oxic and anoxic sediments. Nature 369(6483), 729–731. Doi:
10.1038/369729a0.
Vollmer, M.K., Rhee, T.S., Rigby, M., Hofstetter, D., Hill, M., Schoenenberger, F., and
Reimann, S. (2015). Modern inhalation anesthetics: Potent greenhouse gases
in the global atmosphere. Geophys. Res. Lett. 42(5), 1606–1611. Doi: 10.1002/
2014gl062785.
Von Sydow, L.M., Grimvall, A.B., Boren, H.B., Laniewski, K., and Nielsen, A.T. (2000).
Natural background levels of trifuoroacetate in rain and snow. Environ. Sci.
Technol. 34(15), 3115–3118. Doi: 10.1021/es9913683.
Wallington, T.J., Hurley, M.D., Fedotov, V., Morrell, C., and Hancock, G. (2002).
Atmospheric chemistry of CF3CH2OCHF2 and CF3CHClOCHF2: Kinetics and
mechanisms of reaction with Cl atoms and OH radicals and atmospheric fate
of CF3C(O•)HOCHF2 and CF3C(O•)ClOCHF2 radicals. J. Phys. Chem. A 106(36),
8391–8398. Doi: 10.1021/jp020017z.
Wallington, T.J., Schneider, W.F., Worsnop, D.R., Nielsen, O.J., Sehested, J., Debruyn, W.J.,
and Shorter, J.A. (1994). The environmental-impact of CFC replacements – HFCs
and HCFCs. Environ. Sci. Technol. 28(7), A320–A326. Doi: 10.1021/es00056a002.
Wang, Q.Y., Wang, X.M., and Ding, X. (2014). Rainwater trifuoroacetic acid (TFA) in
Guangzhou, South China: Levels, wet deposition fuxes and source implication.
Sci. Total Environ. 468, 272–279. Doi: 10.1016/j.scitotenv.2013.08.055.
Wang, Z.Y., Wang, Y.H., Li, J.F., Henne, S., Zhang, B.Y., Hu, J.X., and Zhang, J.B. (2018).
Impacts of the degradation of 2,3,3,3-tetrafuoropropene into trifuoroacetic acid
from its application in automobile air conditioners in China, the United States,
and Europe. Environ. Sci. Technol. 52(5), 2819–2826. Doi: 10.1021/acs.est.7b05960.
Waskell, L. (1978). Study of mutagenicity of anesthetics and their metabolites.
Mutation Res. 57(2), 141–153. Doi: 10.1016/0027-5107(78)90261-0.
Wu, J., Martin, J.W., Zhai, Z.H., Lu, K.D., Li, L., Fang, X.K., Jin, H.B., Hu, J.X., and
Zhang, J.B. (2014). Airborne trifuoroacetic acid and its fraction from the degradation of HFC-134a in Beijing, China. Environ. Sci. Technol. 48(7), 3675–3681. Doi:
10.1021/es4050264.
Wujcik, C.E., Cahill, T.M., and Seiber, J.N. (1999). Determination of trifuoroacetic
acid in 1996–1997 precipitation and surface waters in California and Nevada.
Environ. Sci. Technol. 33(10), 1747–1751. Doi: 10.1021/es980697c.
Wujcik, C.E., Zehavi, D., and Seiber, J.N. (1998). Trifuoroacetic acid levels in 1994–1996
fog, rain, snow and surface waters from California and Nevada. Chemosphere
36(6), 1233–1245. Doi: 10.1016/s0045-6535(97)10044-3.
Xie, G.Y., Cui, J.N., Zhai, Z.H., and Zhang, J.B. (2020). Distribution characteristics of trifuoroacetic acid in the environments surrounding fuorochemical production
plants in Jinan, China. Environ. Sci. Pollut. Res. 27(1), 983–991. Doi: 10.1007/s11356019-06689-4.
