副教授
唐旺旺,男,湖南邵阳人。澳大利亚新南威尔士大学环境工程专业博士及博士后,湖南大学2017年海外引进人才,副教授,硕士生及博士生导师。2021-2022年连续入选科睿唯安“全球高被引科学家”,2020-2025年连续入选全球前2%顶尖科学家榜单,入选湖南省科技创新领军人才、湖南省海外高层次人才“青年百人计划”、湖南省“芙蓉学者”、湖湘高层次人才聚集工程-创新人才和湖南大学“岳麓学者晨星A岗”。在Science、Angewandte Chemie International Edition、Water Research、Environmental Science & Technology、Applied Catalysis B: Environmental等top期刊上发表多篇论文,同时任多个国际知名SCI期刊审稿人。
2007.09-2011.06 湖南大学环境科学与工程学院,学士(专业第一保研),导师:梁婕;
2011.09-2013.12 湖南大学环境科学与工程学院,硕士,导师:曾光明;
2014.02-2017.03 澳大利亚新南威尔士大学(2024年QS世界大学排名第19名)环境工程专业,博士,导师:T. David Waite(美国国家工程院院士)、何頔;
2017.03-2017.08 澳大利亚新南威尔士大学博士后,合作导师:T. David Waite、何頔;
2017.09-今湖南大学环境科学与工程学院副教授
[1]企业委托-技术开发项目;
[2]国家自然科学基金面上项目;
[3]国家自然科学基金青年基金项目;
[4]湖南省科技创新领军人才;
[5]湖南省重点研发计划;
[6]湖湘高层次人才聚集工程-创新人才;
[7]湖南省自然科学基金面上项目;
[8]重庆市自然科学基金面上项目;
[9]湖南省自然科学基金青年基金项目;
[10]湖南省教育厅科学研究项目;
[11]中央高校基本科研业务费项目;
[12]湖南大学优秀青年人才培育计划;
[13]湖南大学研究生优质核心课程项目;
代表性论文
[1]Wangwang Tang*, Xiangxi Wang, Ming Yan, Guangming Zeng, Jie Liang. China's dams threaten green peafowl. Science, 2019, 364(6444), 943.
[2]Yu Liu, Kunyue Luo, Wenle Xing, Wenjun Yin, Jing Feng, Shuaishuai Pi, Zixiao Kang, Jie Liang, Lin Tang, Wangwang Tang*. Synergy from the stepped hollow FeHCFe nanocubes and the dimorphic polypyrrole for high-performance electrochemical water desalination. Angewandte Chemie International Edition, 2025, 64, e202501797.
[3]Binxin Tang, Kanxin Jiang, Wenjun Yin, Wenle Xing, Jing Zhang, Shuaishuai Pi, Jie Liang, Lin Tang, Wangwang Tang*. Coupling of nitrate electroreduction to ammonia with sulfide electrooxidation to sulfur for high-efficiency wastewater treatment and resource recovery. Small, 2025, 21, e08173.
[4]Yuling Liang, Aochen Feng, Naif Abdullah Al-Dhabi, Jing Zhang, Wenle Xing, Tao Chen, Yuxuan Han, Guangming Zeng, Lin Tang, Wangwang Tang*. Efficient antibiotic tetracycline degradation and toxicity abatement via the perovskite-type CaFexNi1-xO3 assisted heterogeneous electro-Fenton system. Water Research, 2025, 279, 123432.
[5]Ting Yu, Hong Chen, Tong Hu, Jing Feng, Wenle Xing, Lin Tang, Wangwang Tang*. Recent advances in the applications of encapsulated transition-metal nanoparticles in advanced oxidation processes for degradation of organic pollutants: A critical review. Applied Catalysis B: Environmental, 2024, 342, 123401.
[6]Jiaxin Du, Wenle Xing, Jiaqi Yu, Jing Feng, Lin Tang, Wangwang Tang*. Synergistic effect of intercalation and EDLC electrosorption of 2D/3D interconnected architectures to boost capacitive deionization for water desalination via MoSe2/mesoporous carbon hollow spheres. Water Research, 2023, 235, 119831.
[7]Jingjing Zhang, Dongbo Wang, Feiping Zhao, Jing Feng, Haopeng Feng, Jun Luo, Wangwang Tang*. Ferrate modified carbon felt as excellent heterogeneous electro-Fenton cathode for chloramphenicol degradation. Water Research, 2022, 227, 119324.
[8]Mengbiao Duan, Longbo Jiang, Binbin Shao, Chengyang Feng, Hanbo Yu, Hai Guo, Haoyun Chen, Wangwang Tang*. Enhanced visible-light photocatalytic degradation activity of Ti3C2/PDIsm viaπ-πinteraction and interfacial charge separation: Experimental and theoretical investigations. Applied Catalysis B: Environmental, 2021, 297, 120439.
[9]Wangwang Tang*, Xiangxi Wang, Guangming Zeng, Jie Liang, Xiaodong Li, Wenle Xing, Di He, Lin Tang, Zhifeng Liu. Electro-assisted adsorption of Zn(II) on activated carbon cloth in batch-flow mode: Experimental and theoretical investigations. Environmental Science & Technology, 2019, 53, 2670-2678.
[10]Wangwang Tang*, Jie Liang, Di He, Jilai Gong, Lin Tang, Zhifeng Liu, Dongbo Wang, Guangming Zeng, Various cell architectures of capacitive deionization: Recent advances and future trends. Water Research, 2019, 150, 225-251.
[11]Cheng Tan#, Calvin He#, Wangwang Tang# (共同一作), Peter Kovalsky, John Fletcher, T. David Waite*. Integration of photovoltaic energy supply with membrane capacitive deionization (MCDI) for salt removal from brackish waters. Water Research, 2018, 147, 276-286.
[12]Wangwang Tang, Di He*, Changyong Zhang, T. David Waite*. Optimization of sulfate removal from brackish water by membrane capacitive deionization (MCDI). Water Research, 2017, 121, 302-310.
[13]Wangwang Tang, Di He*, Changyong Zhang, Peter Kovalsky, T. David Waite*. Comparison of Faradaic reactions in capacitive deionization (CDI) and membrane capacitive deionization (MCDI) water treatment processes. Water Research, 2017, 120, 229-237.
[14]Wangwang Tang, Peter Kovalsky, Baichuan Cao, Di He, T. David Waite*. Fluoride removal from brackish groundwaters by constant current capacitive deionization (CDI). Environmental Science & Technology, 2016, 50, 10570-10579.
[15]Wangwang Tang, Peter Kovalsky, Baichuan Cao, T. David Waite*. Investigation of fluoride removal from low-salinity groundwater by single-pass constant-voltage capacitive deionization. Water Research, 2016, 99, 112-121.
[16]Wangwang Tang, Peter Kovalsky, Di He, T. David Waite*. Fluoride and nitrate removal from brackish groundwaters by batch-mode capacitive deionization. Water Research, 2015, 84, 342-349.
[17]Jinxing Ma, Di He, Wangwang Tang, Peter Kovalsky, Calvin He, Changyong Zhang, T. David Waite, Development of redox-active flow-electrodes for high-performance capacitive deionization. Environmental Science & Technology, 2016, 50, 13495-13501.
[18]Di He, Chi Eng Wong, Wangwang Tang, Peter Kovalsky, T. David Waite, Faradaic reactions in water desalination by batch-mode capacitive deionization. Environmental Science & Technology Letters, 2016, 3, 222-226.
[19]Changyong Zhang, Di He, Jinxing Ma, Wangwang Tang, T. David Waite, Faradaic reactions in capacitive deionization (CDI) - problems and possibilities: A review. Water Research, 2018, 128, 314-330.
[20]Haopeng Feng, Jiangfang Yu, Lin Tang, Guangming Zeng, Wangwang Tang, Jiajia Wang, Ting Luo, Bo Peng, Biao Song, Longlu Wang, Chao Liang. Tuning electron density endows Fe1-xCoxP with exceptional capability of electrooxidation of organic pollutants. Environmental Science & Technology, 2019, 53, 13878-13887.
[21]Fubing Yao, Wanchao Li, Zhigong Liu, Xing Wu, Tianyu Gao, Yi Cheng, Wangwang Tang, Xiaobo Min, Chong-Jian Tang. Electrochemically selective ammonium recovery from wastewater via coupling hydrogen bonding and charge storage. Water Research, 2024, 251, 121114.
[22]Tong Hu, Wenjun Zhou, Wangwang Tang*. Recent advances and challenges of double-atom catalysts in diverse environmental applications: A state-of-the-art review. Coordination Chemistry Reviews, 2025, 532, 216545. (SCI 2021 IF=24.833)
[23]Tong Hu, Wenjun Zhou, Wangwang Tang*. Metal-organic framework-derived diatomic catalysts for environmental remediation: Synthesis, applications and improvement strategies. Coordination Chemistry Reviews, 2025, 526, 216357. (SCI 2021 IF=24.833)
[24]Xiaoting Li, Wenle Xing, Tong Hu, Kunyue Luo, Juan Wang, Wangwang Tang*. Recent advances in transition-metal phosphide electrocatalysts: Synthetic approach, improvement strategies and environmental applications. Coordination Chemistry Reviews, 2022, 473, 214811. (SCI 2021 IF=24.833)
[25]Tong Hu, Lin Tang, Haopeng Feng, Jingjing Zhang, Xiaoting Li, Yuqi Zuo, Zeren Lu, Wangwang Tang*. Metal-organic frameworks (MOFs) and their derivatives as emerging catalysts for electro-Fenton process in water purification. Coordination Chemistry Reviews, 2022, 451, 214277. (SCI 2021 IF=24.833)
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