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Open Access Article

Advances in Resources and Environmental Science. 2025; 4: (3) ; 1-9 ; DOI: 10.12208/j.aes.20250021.

Research progress on sampling of organic pollutants by diffusive gradients in thin-films technique
薄膜扩散梯度技术采集有机污染物的研究进展

作者: 尹晨熙, 蔡晓阳, 范洪涛 *, 尤楠

辽宁石油化工大学 辽宁抚顺

*通讯作者: 范洪涛,单位:辽宁石油化工大学 辽宁抚顺;

发布时间: 2025-12-20 总浏览量: 24

摘要

薄膜扩散梯度技术(DGT)是一种原位被动采样技术,能够准确采集水体、土壤和沉积物中污染物的生物有效态浓度,尤其是近年来在有机污染物监测领域取得了显著的进展。本文重点综述了DGT技术在水环境中对内分泌干扰物、药品与个人护理品和农药的原位监测效果。结果表明,DGT技术能够提供可靠、具有环境相关性的有机污染物浓度数据,对于评估有机污染物的生态风险和人类健康风险具有重要意义。

关键词: 薄膜扩散梯度技术;内分泌干扰物;药品与个人护理品;农药

Abstract

Diffusive Gradients in Thin-films (DGT) Technique is an in-situ passive sampling technique that can accurately sample the bioavailable concentrations of pollutants in water, soil and sediment, especially in recent years, which has made significant progress monitoring organic pollutant. This work reviews the effects of DGT technique for in-situ monitoring of endorcrine disrupting chemicals, pharmaceutical and personal care products, and pesticides in an aqueous environment. The results show that DGT technique can provide reliable and environmentally relevant organic pollutant concentration data, which is of great significance for assessing the ecological risk and human health risk of organic pollutants.

Key words: DGT; Endorcrine disrupting chemicals; Pharmaceutical and personal care products; Pesticides

参考文献 References

[1] Davison W, Zhang H. Nature, 1994, 367(6463): 546~548.

[2] Zhang C, Ding S, Xu D, et al. Environ. Monit. Assess, 2014, 186(11): 7367~7378.

[3] Salim F, Górecki T. Environ Processes, 2019, 21(10): 1618~1641.

[4] 李希媛, 滕辉, 赵玉杰,等. 农业环境科学学报, 2020(8): 1649~1660.

[5] Stuer-Lauridsen F. Environ Pollut. 2005, 136(3): 503~524.

[6] Cattani I, Spalla S, Beone G M, et al. Talanta, 2008, 74(5): 1520~1526.

[7] Ruello M L, Sileno M, Sani D, et al. Chemosphere, 2008, 70(6): 1135~1140.

[8] Zhang H, Davison W. Anal Chem, 1995, 67(19): 3391~3400 

[9] Tusseau-Vuillemin M H, Gourlay C, Lorgeoux C, et al. Sci. Total Environ., 2007, 375(1-3): 244~256. 

[10] Osterlund H, Chlot S, Faarinen M, et al. Anal. Chim Acta, 2010, 682(1-2): 59~65.

[11] Feng Z, Guo T, Jiang Z, et al. Microchim. Acta, 2015, 182: 2419~2425.

[12] Chen C E, Zhang H, Jones K C. J. Environ. Monit., 2012, 14(6): 1523~1530.

[13] Xie H, Chen Q, Chen J, et al. Chemosphere, 2018, 200: 351~357.

[14] Chen W, Li Y, Chen C E, et al. Environ. Sci. Technol., 2017, 51(22): 13274~13281.

[15] Guibal R, Buzier R, Charriau A, et al. Anal. Chim. Acta, 2017, 966: 1~10.

[16] Guo C, Zhang T, Hou S, et al. Environ. Sci. Technol., 2017, 51(16): 9101~9108.

[17] 徐魁伟. 当代化工研究, 2017, 20(6): 157~158.

[18] 李金荣, 郭瑞昕, 刘艳华, 等. 环境化学, 2020, 39(10): 1~18.

[19] Al-Saleh I, Elkhatib R, Al-Rajoudi T, et al. Sci. Total Environ., 2017, 578: 440~451.

[20] Zhu X, Jiang L, Tu Y, et al. Sci. Total Environ., 2022, 808: 151892.

[21] Zheng J L, Guan D X, Luo J, et al. Anal. Chem, 2015, 87(1): 801~807.

[22] Li H, Qi S, Li X, et al. Chemosphere, 2021, 280: 130774.

[23] Chen W, Pan S, Cheng H, et al. Water Res, 2018, 137: 211~219.

[24] Chen C E, Liu Y S, Dunn R, et al. Environ Int, 2020, 143: 105936.

[25] Wacheski T, Hara E L Y, Soares B G S, et al. J Bra Chem Soc, 2021, 32(1): 72~82.

[26] Zhu X, Jiang L, Wang Y, et al. Environ. Res, 2022, 212: 113391.

[27] Xie H, Dong Y, Chen J, et al. Environ. Int, 2021, 156: 106653.

[28] Wang P, Li J, Xie M Y, et al. Sci. Total Environ., 2024, 931: 172978.

[29] Zou Y T, Fang Z, Li Y, et al. Anal. Chem, 2018, 90(16): 10016~10023.

[30] Feng Z, Wang Y, Yang L, et al. Sci Total Environ., 2019, 685: 442~450.

[31] 刘莹, 管运涛, 水野忠雄, 等. 清华大学学报, 2009, 49(3): 368~372.

[32] 胡洪营,王超,郭美婷. 生态环境, 2005, 14(16): 947~952.

[33] Li Y, Wu M, Fu M, et al. Water-Sui, 2024, 16(11): 1478.

[34] Fang Z, Li K, Li Y, et al. Environ. Sci. Technol., 2019, 53(19): 11223~11231.

[35] Yuan S, Jiang X, Xia X, et al. Chemosphere, 2013, 90(10): 2520~2525. 

[36] Zhang Y, Zhang T, Guo C, et al. Sci. Total Environ., 2018, 618: 284~290.

[37] Liu X, Zhang R, Cheng H, et al. Sci. Total Environ, 2021, 773: 145480.

[38] Chen W, Li Y, Chen C E, et al. Environ. Sci Technol, 2017, 51(22): 13274~13281.  

[39] Guibal R, Buzier R, Lissalde S, et al. Sci. Total Environ., 2019, 693: 133537.

[40] Chen C E, Zhang H, Ying G G, et al. Environ. Sci. Technol., 2013, 47(23): 13587~13593.

[41] Ren S, Tao J, Tan F, et al. Sci. Total Environ., 2018, 645: 482~490.

[42] Xie H, Dong Y, Chen J, et al Environ Int, 2021, 156: 106653.

[43] Li X, Meng G, Chang Z, et al. Ecotox Environ Safe, 2022, 234: 113359.

[44] You N, Yao H, Wang Y, et al. Sci. Total Environ., 2019, 651: 1653~1660.

[45] You N, Chen S, Wang Y, et al. Environ. Res, 2020, 191: 110089.

[46] Li Y, Chen H, Zhu Y, et al. J. Sep. Sci., 2018, 41(20): 3946~3952.

[47] Cui Y, Tan F, Wang Y, et al. Front. Environ. Sci. Eng., 2020, 14: 1~12.

[48] Liu S S, Li J L, Ge L K, et al. Sci. Total Environ., 2021, 790: 148194.

[49] Chen W , Li Y , Chen C ,et al. Environ. Sci. Technol., 2017: 13274~13281. 

[50] Wei M , Yang X , Watson P ,et al. Sci. Total Environ., 2019, 648: 109~115.

[51] Ren S, Tan F, Wang Y, et al. Water Res, 2020, 185: 116239.

[52] Ren S, Dong F, Liu J, et al. Water Res, 2022, 222: 118944.

[53] Ren S, Jin X, Bekele T G, et al. Environ. Sci .Pollut. Res, 2023, 30(40): 92651~92661.

[54] Peck A M, Hornbuckle K C. Environ. Sci. Technol., 2004, 38(2): 367~372.

[55] Duan Q, Duan L, Liu Y, et al. Environ. Technol. Innovation, 2020, 20: 101073.

[56] Fauvelle V, Nhu-Trang T T, Feret T, et al. Anal. Chem, 2015, 87(12): 6004~6009.

[57] Guibal R, Buzier R, Charriau A, et al. Anal. Chim. Acta, 2017, 966: 1~10.

[58] Chen Y, Wen J, Wu M, et al. Environ. Sci. Pollut. Res, 2022, 29(15): 21480~21490.

[59] Yu X, Wang Y, Watson P, et al. Sci. Total Environ., 2024, 908: 168393.

[60] De Barros R M, Rougerie J, Ballion T, et al. Talanta Open, 2022, 6: 100123.

[61] Lu Y, Li C, Wang Y, et al. ACS Sens, 2023, 8(10): 3762~3771.

[62] Lu Y, Li C, Wang Y, et al. Water Res, 2024, 253: 121307.

[63] Guo W, Van Langenhove K, Denison M S, et al. Anal. Chem, 2017, 89(24): 13357~13364.

[64] Iuele H, Bucciarelli A, Ling N. Water Res, 2022, 219: 11856


引用本文

尹晨熙, 蔡晓阳, 范洪涛, 尤楠, 薄膜扩散梯度技术采集有机污染物的研究进展[J]. 资源与环境科学进展, 2025; 4: (3) : 1-9.