| [1] |
Zhang DK. 2025. On Energy and Environment Nexus: balancing economic development, social well-being, and ecological sustainability with science. |
| [2] |
Bai Q, Wu QY, Ye B, Wu YP, Lee JW, et al. 2024. Assessing excimer far-UVC (222 nm) irradiation for advanced oxidation processes: oxidants photochemistry and micropollutants degradation. |
| [3] |
Su R, Zhu Y, Gao B, Li Q. 2024. Progress on mechanism and efficacy of heterogeneous photocatalysis coupled oxidant activation as an advanced oxidation process for water decontamination. |
| [4] |
Yang W, Chen P, Huang J, Zu D, Yang K, et al. 2026. Emerging polymer-based adsorbents for short-chain PFAS: mechanisms, performance, and research outlook. |
| [5] |
Schneider I, Abbas A, Bollmann A, Dombrowski A, Knopp G, et al. 2020. Post-treatment of ozonated wastewater with activated carbon and biofiltration compared to membrane bioreactors: toxicity removal in vitro and in Potamopyrgus antipodarum. |
| [6] |
Sun P, Meng T, Wang Z, Zhang R, Yao H, et al. 2019. Degradation of organic micropollutants in UV/NH2Cl advanced oxidation process. |
| [7] |
Li X, Gao X, Li A, Xu S, Zhou Q, et al. 2023. Comparative cytotoxicity, endocrine-disrupting effects, oxidative stress of halophenolic disinfection byproducts and the underlying molecular mechanisms revealed by transcriptome analysis. |
| [8] |
Itzel F, Baetz N, Hohrenk LL, Gehrmann L, Antakyali D, et al. 2020. Evaluation of a biological post-treatment after full-scale ozonation at a municipal wastewater treatment plant. |
| [9] |
Itzel F, Jewell KS, Leonhardt J, Gehrmann L, Nielsen U, et al. 2018. Comprehensive analysis of antagonistic endocrine activity during ozone treatment of hospital wastewater. |
| [10] |
Angula ST, Okedi J, Harding T, Bellandi G, Ikumi DS. 2024. Hybrid modelling framework for ozonation and biological activated carbon in tertiary wastewater treatment. |
| [11] |
Li J, Zhang Z, Xiang Y, Jiang J, Yin R. 2023. Role of UV-based advanced oxidation processes on NOM alteration and DBP formation in drinking water treatment: a state-of-the-art review. |
| [12] |
Chu W, Gao N, Yin D, Krasner SW, Mitch WA. 2014. Impact of UV/H2O2 pre-oxidation on the formation of haloacetamides and other nitrogenous disinfection byproducts during chlorination. |
| [13] |
Kim DH, Park CG, Kim YJ. 2020. Characterizing the potential estrogenic and androgenic activities of two disinfection byproducts, mono-haloacetic acids and haloacetamides, using in vitro bioassays. |
| [14] |
Gao J, Song J, Ye J, Duan X, Dionysiou DD, et al. 2021. Comparative toxicity reduction potential of UV/sodium percarbonate and UV/hydrogen peroxide treatments for bisphenol A in water: an integrated analysis using chemical, computational, biological, and metabolomic approaches. |
| [15] |
Azizi D, Arif A, Blair D, Dionne J, Filion Y, et al. 2022. A comprehensive review on current technologies for removal of endocrine disrupting chemicals from wastewaters. |
| [16] |
Lee J, Eom S, Sohn S, Kim T, Zoh KD. 2023. Degradation of bisphenol A, bisphenol S, and bisphenol AF in the UV-LED/chlorine reaction: effect of pH on the kinetics, transformation products, and degradation pathway. |
| [17] |
Holmer ML, Holmberg RD, Despicht C, Bouftas N, Axelstad M, et al. 2025. Assessment of endocrine disruptors in the European Union: current regulatory framework, use of new approach methodologies (NAMs) and recommendations for improvements. |
| [18] |
Han Y, Li N, Oda Y, Ma M, Rao K, et al. 2016. Evaluation of genotoxic effects of surface waters using a battery of bioassays indicating different mode of action. |
| [19] |
Li N, Wang D, Zhou Y, Ma M, Li J, et al. 2010. Dibutyl phthalate contributes to the thyroid receptor antagonistic activity in drinking water processes. |
| [20] |
Gaido KW, Leonard LS, Lovell S, Gould JC, Babaї D, et al. 1997. Evaluation of chemicals with endocrine modulating activity in a yeast-based steroid hormone receptor gene transcription assay. |
| [21] |
Jia A, Escher BI, Leusch FDL, Tang JYM, Prochazka E, et al. 2015. In vitro bioassays to evaluate complex chemical mixtures in recycled water. |
| [22] |
Zhang S, Zhu K, Rao K, Han Y, Han JL, et al. 2025. Toxic risk assessment of multi-endpoint toxicity and toxicity transformation mechanisms during UV-combined advanced treatments in wastewater treatment plants: development of effect-based trigger values, in vitro bioassays, and FT-ICR MS analysis. |
| [23] |
Zhou J, He X, Zhang Z, Wu G, Liu P, et al. 2024. Chemical-toxicological insights and process comparison for estrogenic activity mitigation in municipal wastewater treatment plants. |
| [24] |
Ma M, Li J, Wang Z. 2005. Assessing the detoxication efficiencies of wastewater treatment processes using a battery of bioassays/biomarkers. |
| [25] |
Simon E, Riegraf C, Schifferli A, Olbrich D, Bucher T, et al. 2022. Evaluation of three ISO estrogen receptor transactivation assays applied to 52 domestic effluent samples. |
| [26] |
Wolf Y, Oster S, Shuliakevich A, Brückner I, Dolny R, et al. 2022. Improvement of wastewater and water quality via a full-scale ozonation plant? –A comprehensive analysis of the endocrine potential using effect-based methods. |
| [27] |
Wang J, Huang Y, Wang S, Yang Y, He J, et al. 2021. Identification of active and inactive agonists/antagonists of estrogen receptor based on Tox21 10K compound library: binomial analysis and structure alert. |
| [28] |
Xiang T, Liu Y, Guo Y, Zhang J, Liu J, et al. 2024. Occurrence and prioritization of human androgen receptor disruptors in sewage sludges across China. |
| [29] |
Ma D, Chen L, Liu R. 2017. Removal of novel antiandrogens identified in biological effluents of domestic wastewater by activated carbon. |
| [30] |
Wang WL, Wu QY, Huang N, Xu ZB, Lee MY, et al. 2018. Potential risks from UV/H2O2 oxidation and UV photocatalysis: a review of toxic, assimilable, and sensory-unpleasant transformation products. |
| [31] |
Ji C, Song Q, Chen Y, Zhou Z, Wang P, et al. 2020. The potential endocrine disruption of pesticide transformation products (TPs): the blind spot of pesticide risk assessment. |
| [32] |
Hopanna M, He K, Blaney L. 2025. Photochemical fate of triphenyltin pesticides in engineered UV and UV-H2O2 treatment systems: reaction kinetics, transformation products, and residual toxicity. |
| [33] |
Ali Shah N, Chen X, Javed A, Qu J, Zhang YN. 2025. A comparative study on degradation kinetics and toxicity changes of BPA and BPS in UV-based advanced oxidation processes. |
| [34] |
Sun W, Ao X, Lu D, Zhang Y, Xue Y, et al. 2024. Ultraviolet technology application in urban water supply and wastewater treatment in China: issues, challenges and future directions. |
| [35] |
van der Oost R, Sileno G, Suárez-Muñoz M, Nguyen MT, Besselink H, et al. 2017. SIMONI (Smart Intergrated monitoring) as a novel bioanalytical strategy for water quality assessment: part I–model design and effect-based trigger values. |
| [36] |
Escher BI, Aїt-Aїssa S, Behnisch PA, Brack W, Brion F, et al. 2018. Effect-based trigger values for in vitro and in vivo bioassays performed on surface water extracts supporting the environmental quality standards (EQS) of the European Water Framework Directive. |
| [37] |
Qian J, Riede P, Abbt-Braun G, Parniske J, Metzger S, et al. 2022. Removal of organic micropollutants from municipal wastewater by powdered activated carbon - activated sludge treatment. |
| [38] |
Ma XY, Zhang GM, Zhang C, Wang Z, Yu J, et al. 2009. Characteristics of BPA removal from water by PACl-Al13 in coagulation process. |