■ 以第一作者或通讯作者发表的20篇代表性SCI论文 [1] Degradation of spiramycin via a UV–enhanced, hydroxylamine hydrochloride–assisted calcium peroxide Fenton–like system: Overcoming pH constraints and iron precipitation [J]. Chemical Engineering Journal, 2026, 542: 177215.(中科院SCI一区TOP) [2] Efficient tetracycline degradation via a graphite felt–supported Cu–Ce heterojunction in heterogeneous electro–Fenton process: Synergistic redox cycling and oxygen vacancy modulation [J]. Applied Surface Science, 2026, 733, 166607(中科院SCI二区) [3] Per– and polyfluoroalkyl substances (PFAS) in wastewater treatment plants: an overview of their occurrence, fate, effects, and ecological risks [J]. Journal of Environmental Management, 2026, 399: 128630(中科院SCI二区TOP) [4] Activation of peroxymonosulfate by magnesium−modified biochar for the degradation of imidacloprid: Effectiveness and mechanisms [J]. Chemical Engineering Journal, 2025, 254: 169498(中科院SCI一区TOP) [5] Recent research progress of photoelectrocatalysis technology in the removal of organic pollutants from water [J]. Journal of Water Process Engineering, 2025, 75: 107911(中科院SCI二区) [6] Degradation efficiencies of selected organic pesticides in aqueous solution using various advanced oxidation techniques [J]. Process Safety and Environmental Protection, 2025, 197: 107048(中科院SCI二区TOP) [7] Kanamycin promoted the enrichment of comammox Nitrospira from aerobic−activated sludge [J]. Journal of Environmental Chemical Engineering, 2025, 13(2): 115900.(中科院SCI二区TOP) [8] Effect of silver nanoparticles on biological nitrogen removal in sequential batch wastewater treatment process: Microbial communities, functional genes, and interactions [J]. Journal of Water Process Engineering, 2025, 70, 107114.(中科院SCI二区) [9] Strong suppression of silver nanoparticles on antibiotic resistome in anammox process [J]. Journal of Hazardous Materials, 2024, 470: 134128.(中科院SCI一区TOP) [10] Efficiency and mechanism of adsorption for imidacloprid removal from water by Fe–Mg co–modified water hyacinth–based biochar: Batch adsorption, fixed–bed adsorption, and DFT calculation [J]. Separation and Purification Technology, 2024, 330: 125235.(中科院SCI一区TOP) [11] Adsorption characteristics and removal mechanism of malathion in water by high and low temperature calcium–modified water hyacinth–based biochar [J]. Journal of Cleaner Production, 2023, 411: 137258.(中科院SCI一区TOP) [12] Deciphering the antibiotic resistome and microbial community in municipal wastewater treatment plants at different elevations in eastern and western China [J]. Water Research, 2023, 229: 119461.(中科院SCI一区TOP) [13] Effect of free nitrous acid on nitritation process: Microbial community, inhibitory kinetics, and functional biomarker [J]. Bioresource Technology, 2023, 371: 128595.(中科院SCI一区TOP) [14] Activation of peroxymonosulfate by CoFe2O4 layered catalyst derived from steel pickling sludge for the decolorization of tartrazine solution [J]. Journal of Water Process Engineering, 2023, 56: 104462.(中科院SCI二区) [15] A stable Fe–Zn modified sludge–derived biochar for diuron removal: Kinetics, isotherms, mechanism, and practical research [J]. Molecules, 2023, 28: 2868.(中科院SCI二区) [16] Efficient adsorption of tebuconazole in aqueous solution by calcium modified water hyacinth–based biochar: Adsorption kinetics, mechanism, and feasibility [J]. Molecules 2023, 28: 3478.(中科院SCI二区) [17] Response of substrate kinetics and biological mechanisms to various pH constrains for cultured Nitrobacter and Nitrospira in nitrifying bioreactor [J]. Journal of Environmental Management, 2022, 307: 114499.(中科院SCI一区TOP) [18] 气相色谱–串联质谱法同时测定水中13种挥发性消毒副产物的方法研究 [J]. 分析化学, 2022, 50(01): 145–158.(中科院SCI四区,卓越期刊) [19] Photooxidation of atrazine and its influence on disinfection byproducts formation during post–chlorination: effect of solution pH and mechanism [J]. Scientific Reports, 2020, 10(1): 20355.(中科院SCI三区) [20] 溶液制备过程引入的甲醇对阿特拉津UV光氧化速率和降解机理的影响 [J]. 化学学报, 2019, 77(1): 72–83.(中科院SCI三区,卓越期刊) ■ 以第一作者或通讯作者发表的10篇代表性EI、核心期刊论文: [1] 炭黑/PTFE复合改性石墨毡阴极优化制备及高效电化学产H2O2机理研究 [J]. 化工学报, 2026, 77(01): 504–517. [2] 钙改性水葫芦基生物炭吸附水中敌草隆的效能与机理 [J]. 化工进展, 2024, 43(8): 4630–4641. [3] 水中药物和个人护理品分析方法研究 [J]. 化学通报, 2022, 85(02): 228–234. [4] 化学混凝法去除水中砷的研究进展 [J]. 应用化工, 2022, 51(01): 155–163. [5] UV工艺降解阿特拉津机理及对DBPFP的影响规律 [J]. 中国环境科学, 2021, 41(10): 4606–4615. [6] 水中农药的控制与去除研究进展 [J]. 中国给水排水, 2020, 36(24): 45–53. [7] 水中有机农药检测分析方法研究进展 [J].分析测试学报, 2020, 39(5): 688–696. [8] 不同UV工艺中阿特拉津的降解效果与机理研究 [J]. 中国给水排水, 2019, 35(5): 60–66. [9] UV和UV/H2O2工艺对水中二嗪磷的降解规律及机理 [J].中国环境科学, 2019, 39(04): 1602–1610. [10] 阿特拉津在不同UV光氧化工艺中的降解动力学研究 [J]. 水处理技术, 2019, 45(12): 57–64. ■ 以第一作者和通讯作者发表的主要教改论文: [1] 校企协同实践教学育人机制研究 [J]. 文教资料, 2021(03): 184–187. [2] 常态化网络教学和后疫情时期双线混融教学机制探析 [J]. 文教资料, 2020(24): 189–191. [3] 特殊时期在线本科毕业设计(论文)指导问题及对策 [J].文教资料, 2020(32): 147–149. [4] 基于“给水排水管网系统”课程的创新式教学研究 [J]. 科教文汇(中旬刊), 2020(11): 94–95. [5] 疫情防控期间我国高校工科类专业线上教学启示 [J]. 科教文汇(下旬刊), 2020(11): 75–76. [6] 新冠肺炎疫情期间给排水科学与工程专业网络教学思考 [J]. 山西建筑, 2020, 46(13): 187–188. [7] 疫情期间土木建筑类专业网络教学效果提高策略 [J]. 山西建筑, 2020, 46(20): 190–192. [8] 《水工艺设备基础》的教学改革与探索 [J]. 教育现代化, 2019, 35(15): 43–45+48. ■ 以第一发明人授权的专利 [1] 一种高催化活性生物炭和制备方法及其在去除饮用水中农药的应用[P]. ZL 202411835396.1, 2025–07–15, 发明专利. [2] 一种用于处理饮用水中残留抗生素或农药的固体催化剂及制备方法和应用[P]. 202411988323.6, 2025–09–09, 发明专利. [3] 一种光电催化净化水处理装置[P]. ZL 202021646363.X, 2021–04–16, 实用新型专利. ■ 参编书籍和标准如下: [1] 2019全国勘察设计注册公用设备工程师职业资格考试用书,《给水排水专业历年真题与解析》,ISBN: 9787112234462,参编,中国建筑工业出版社,2019年5月; [2]《室外排水设计标准》GB 50014–2021解读,ISBN: 9787112274284,副主编,中国建筑工业出版社,2022年5月; [3] 中国建筑节能协会团体标准,《住宅小区建筑节水运行技术规程》,T/CABEE–JH2021038 ,主要起草人,2024年7月1日开始实施。 |