中文
Announcement
More
Progress in Chemistry 2010, Vol. 22 Issue (04): 734-739 Previous Articles   Next Articles

• Invited Article •

Degradation Methods of NDMA in Surface and Drinking Water

Kong Lulu1; Guo Xiaoyan1**; Zhou Qixing1; Li Qilin2; Hu Wanli1; Lu Jinfeng1   

  1. (1.College of Environmental Science and Engineering, Tianjin Key Laboratory of Environmental Remediation and Pollution Control, Key Laboratory of Pollution Processes and Environmental Criteria, Ministry of Education, Nankai University, Tianjin 300071, China; 2.Department of Civil and Environmental Engineering, Rice University, Houston, TX 77005, U.S.A.)
  • Received: Revised: Online: Published:
  • Contact: Guo Xiaoyan E-mail:guoxyan@nankai.edu.cn
PDF ( 1650 ) Cited
Export

EndNote

Ris

BibTeX

NDMA(N-nitrosodimethylamine) is an extremely potent carcinogen detected recently in surface water and drinking water disinfected by chlorine and chloramines, and its removal research would exert important impact on protecting the public health and promoting the safety of water industry. The progress of the removal technologies of NDMA, which included volatilization, air stripping, adsorption, reverse osmosis, biodegradation, metal-catalyzed reduction, UV treatment, photolysis, TiO2-mediated photocatalytic degradation, was summarized in this paper. It concluded current bottleneck in the research fields and showed a bright prospect of these techniques, thus providing new ideas for further development of highly-efficient and practical approaches to resolve the contamination problems caused by N-nitrosamines in surface and drinking water.

Contents
1 Introduction
2 The present situation of degradation methods of NDMA
2.1 Volatilization and air stripping
2.2 Adsorption
2.3 Reverse osmosis
2.4 Biodegradation
2.5 Metal-catalyzed reduction
2.6 UV treatment
2.7 Photolysis
2.8 TiO2-mediated photocatalytic degradation
3 Conclusion and outlook

CLC Number: 

[1 ] Plumlee M H,Reinhard M. Environ. Sci. Technol. ,2007,41:6170 - 6176
[2 ] Lee C,Choi W,Kim Y G,Yoon G. Environ. Sci. Technol. ,2005,39: 2101—2106
[3 ] Mitch W A,Sharp J O,Trussell R R,et al. Environ. Eng.Sci. ,2003,20: 389—404
[4 ] Plumlee M H,López-Mesas M,Heidlberger A,et al. Water Res. ,2008,42: 347—355
[5 ] Landsman N A,Swancutt K L,Bradford C N,et al. Environ.Sci. Technol. ,2007,41: 5818—5823
[6 ] Schreiber I M,Mitch W A. Environ. Sci. Technol. ,2006,40:3203—3210
[7 ] Zhao Y Y,Boyd J,Hrudey S,Li X F. Environ. Sci. Technol. ,2006,40: 7636—7641
[8 ] Klein R G. Toxicology,1982,23: 135—147
[9 ] Mircish S S. Toxicol. Appl. Pharmacol. ,1975,31: 325—351
[10] Fleming E C,Pennington J C,Wachob B G,et al. J. Hazard.Mater. ,1996,51: 151—164
[11] Kawata K,Ibaraki T,Tanabe A,et al. Chromatogr. ,2001,91(1) : 75—83
[12] Rodriguez G, Buonora S, Knoell T, et al. Rejection of pharmaceuticals by reverse osmosis membranes: quantitativestructure activity relationship ( QSAR) analysis. Final Project Report Submitted to the National Water Research Institute,NWRI Project No. 01-EC-002. 2004
[13] Sedlak D L,Kavanaugh M. Removal and Destruction of NDMA and NDMA Precursors during Wastewater Treatment. Final Project Report submitted to the Wate Reuse Foundation,WaterReuse Foundation Project No. WRF-01-002. 2006
[14] Steinle-Darling E,Zedda M,Plumlee M H,et al. Water Res. ,2007,41(17) : 3959—3967
[15] Yang W C,Gan J,Liu W P. J. Environ. Qual. ,2005,34:336—341
[16] Tate R L,Alexander M. J. Environ. Qual. ,1976,5: 131—133
[17] Mallik M A B,Tesfai K. Environ. Contam. Toxicol. ,1981,27: 115—121
[18] Sharp J O,Wood T K,Alvarez-Cohen L. Biotechnol. Bioeng. ,2005,89(5) : 608—618
[19] Chung J,Ahn C,Chen Z,Pittmann B E. Chemosphere,2008,70: 516—520
[20] Nean-Raymond D,Alexander M. Nature,1976,262: 394—396
[21] Gui L, Gillham R W, Odziemkowski M S. Environ. Sci.Technol. ,2000,34: 3489—3494
[22] Odziemkowski M S, Gui L, Gillham R W. Environ. Sci.Technol. ,2000,34: 3495—3500
[23] Liu Y, Majetich S A, Tilton R D, et al. Environ. Sci.Technol. ,2005,39(5) : 1338—1345
[24] Pintar A,Batista J,Levec J. Water Sci. Technol. ,1997,37(8) : 177—185
[25] Pintar A,Bercic G, Levec J. AIChE J. ,1998,44 ( 10 ) :2280—2292
[26] Pintar A, Batista J, Musevic I. Applied Catalysis B:Environmental,2004,52(1) : 49—60
[27] Chaplin B P, Roundy E, Guy K A, et al. Environ. Sci.Technol. ,2006,40(9) : 3075—3081
[28] Davie M G,Reinhard M,Shapley J R. Environ. Sci. Technol. ,2006,40(23) : 7329—7335
[29] Lowry G V,Reinhard M. Environ. Sci. Technol. ,2000,34(15) : 3217—3223
[30] McNab W W,Ruiz R,Reinhard M. Environ. Sci. Technol. ,2000,34(1) : 149—153
[31] Munakata N,Reinhard M. Applied Catalysis B: Environmental,2007,75: 1—10
[32] Schüth C, Kummer N A, Weidenthaler C, et al. Applied Catalysis B: Environmental,2004,52(3) : 197—203
[33] Chaplin B P,Shapley J R,Werth C J. Environ. Sci. Technol. ,2007,41(15) : 5491—5497
[34] Davie M G, Shih K, Pacheco F A, et al. Environ. Sci.Technol. ,2008,42: 3040—3046
[35] Frierdich A J,Shapley J R,Strathmann T J. Environ. Sci.Technol. ,2008,42: 262—269
[36] Polo J,Chow Y L. J. Natl. Cancer Inst. ,1976,56(5) : 997—1001
[37] Stefen M I,Boloton J R. Helvetica Chimica Acta,2002,85:1416—1426
[38] Sharpless C M,Linden K G. Environ. Sci. Technol. ,2003,37: 1933—1940
[39] 徐冰冰(Xu B B) ,陈忠林( Chen Z L) ,齐飞(Qi F) 等. 环境科学( Environmental Science) ,2008,29(12) : 3421—3427
[40] Plumlee M H,Reinhard M. Environ. Sci. Technol. ,2007,41:6170—6176
[41] Gross B,Montgomery-Brown J,Naumann A,et al. Environ.Toxicol. Chem. ,2004,23: 2074—2083
[42] Barbeni M, Pramauro E, Pelizzetti E, et al. Chemosphere,1985,14: 195—208
[43] Lee J,Choi W,Yoon J. Environ. Sci. Technol. ,2005,39:6800—6807
[44] Vohra M S,Lee J,Choi W. J. Appl. Electrochem. ,2005,35:757—763
[45] Noguchi H,Nakajima A,Watanabe T,et al. Environ. Sci.Technol. ,2003,37: 153—157

[1] Li Zhou, Abdelkrim Yasmine, Zhiguo Jiang, Zhongzhen Yu, Jin Qu. Microplastics: A Review on Biological Effects, Analysis and Degradation Methods [J]. Progress in Chemistry, 2022, 34(9): 1935-1946.
[2] Jing Zhang, Dingxiang Wang, Honglong Zhang. Oxidative Degradation of Emerging Organic Contaminants in Aqueous Solution by High Valent Manganese and Iron [J]. Progress in Chemistry, 2021, 33(7): 1201-1211.