河南省重点研发与推广专项 (科技攻关), 新型Fe2O3基纳米材料同时催化消除工业烟气中NOx和CVOCs技术的开发与应用, 232102230069, 2023.01-2024.12, 主持 Betway官方客服博士科研启动项目, 空心多孔Fe2O3基催化剂的构建及其催化CO还原NO的性能和机理研究, 20220020, 2023.01-2024.12, 主持 国家自然科学基金, 锰基尖晶石/生物酶偶合仿生催化体系的构建及其酶促光催化还原NOx性能的研究, 22076018, 2021.01-2024.12, 参与 国家自然科学基金, 铁酸盐/生物酶偶合仿生催化体系的构建及其酶促光催化还原CO2性能的研究, 21577012, 2016.01-2019.12, 参与 国家重点研发计划, 复合工序单组分VOCs吸附回收技术, 2016YFC0204204, 2016.07-2019.12, 参与 企业合作项目, 低温烟气脱硝整体催化剂开发, 参与
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Xinyang Wang*, Xinyu Luo, Rui Li, Yu Chang, Jianbiao Peng, Weilai Wang, Haijin Liu, Guangxuan Yan, Pengkun Wei, Zhiguo Cao*. Boosting peroxymonosulfate activation over partial Zn-substituted Co3O4 for florfenicol degradation: Insights into catalytic performance, degradation mechanism and routes [J]. Chemical Engineering Journal, 2024, 491: 152197. (IF = 13.3, 中科院一区TOP) Xinyang Wang*, Rui Li, Xinyu Luo, Jincheng Mu, Jianbiao Peng, Guangxuan Yan, Pengkun Wei, Zhenbang Tian, Zuohua Huang, Zhiguo Cao*. Enhanced CO oxidation performance over hierarchical flower-like Co3O4 based nanosheets via optimizing oxygen activation and CO chemisorption [J]. Journal of Colloid and Interface Science, 2024, 654: 454-465. (IF = 9.4, 中科院一区TOP) Xinyang Wang, Xinyong Li*, et al. Insight into the Enhanced Activity and H2O/O2 Tolerance for the Low-Temperature NO Reduction by CO over Ag Modified Porous Co3O4 Nanosheets,Journal of Physical Chemistry C,2022, 126(32): 13675-13685. (IF = 3.3) Xinyang Wang, Ling Zhao*,Xinyong Li*, Jincheng Mu, et al., Unveiling the Promotion Effects of CoO on Low-Temperature NO Reduction with CO over an In-Situ-Established Co3O4-CoO Heterostructure, ACS Sustainable Chemistry & Engineering, 2021, 9, 6107–6117. (IF = 7.1, 中科院一区TOP) Xinyang Wang, Xinyong Li*, Jincheng Mu, et al., Oxygen Vacancy Rich Porous Co3O4 Nanosheets towards Boosted NO Reduction by CO and CO Oxidation: Insights into Structure-Activity Relationship and Performance Enhancement Mechanism, ACS Applied Materials & Interfaces, 2019, 11, 41988–41999. (IF = 8.3, 中科院一区) Xinyang Wang, Xinyong Li*, Jincheng Mu, et al., Facile Design of Highly Effective CuCexCo1–xOy Catalysts with Diverse Surface/Interface Structures toward NO Reduction by CO at Low Temperatures, Industrial & Engineering Chemistry Research, 2019, 58, 15459–15469. (IF = 3.8, 中科院二区TOP) Jincheng Mu, Jinming Feng, Xinyang Wang, Baojun Liu. Oxygen vacancy boosting peroxymonosulfate activation over nanosheets assembled flower-like CoMoO4 for contaminant removal: Performance and activity enhancement mechanisms [J]. Chemical Engineering Journal, 2023, 459: 141537. Jianbiao Peng, Yu Chang, Lei Xu, Yakun Zhang, Tian Wang, Xinyang Wang, Haijin Liu, Guangxuan Yan, Shixiang Gao, Dexin Liu, Zhiguo Cao. Insights into the enhanced removal of sulfamethoxazole via peroxymonosulfate activation catalyzed by bimetallic (Co/Cu) doped graphitic carbon nitride: Reaction kinetics, mechanisms, and pathways [J]. Chemical Engineering Journal, 2023, 476: 146692. Jincheng Mu, Xinyong Li,* Xinyang Wang, Shiying Fan, Zhifan Yin, Zeyu Li, Moses O. Tadé, and Shaomin Liu. New Insight into the Effects of NH3 on SO2 Poisoning for In Situ Removal of Metal Sulfates in Low-Temperature NH3-SCR over an Fe−V Catalyst. Journal of Physical Chemistry C, 2020, 124, 21396–21406. Liehao Wei, Xinyong Li*, Jincheng Mu, Xinyang Wang, Shiying Fan, Zhifan Yin, Moses O. Tadé, Shaomin Liu. Rationally Tailored Redox Properties of a Mesoporous Mn-Fe Spinel Nanostructure for Boosting Low-Temperature Selective Catalytic Reduction of NOx with NH3, ACS Sustainable Chemistry & Engineering, 2020, 8, 17727–17739. Jincheng Mu, Xinyong Li*, Wenbo Sun, Shiying Fan, Xinyang Wang, Liang Wang, Meichun Qin, Guoqiang Gan, Zhifan Yin, Dongke Zhang*, Inductive Effect Boosting Catalytic Performance of Advanced Fe1-xVxOδ Catalysts in Low Temperature NH3 Selective Catalytic Reduction: Insight into the Structure, Interaction, and Mechanisms, ACS Catalysis, 2018, 8, 6760−6774. Jincheng Mu, Xinyong Li*, Wenbo Sun, Shiying Fan, Xinyang Wang, Liang Wang, Meichun Qin, Guoqiang Gan, Zhifan Yin, Dongke Zhang*, Enhancement of Low-Temperature Catalytic Activity over a Highly Dispersed Fe–Mn/Ti Catalyst for Selective Catalytic Reduction of NOx with NH3. Industrial & Engineering Chemistry Research, 2018, 57, 10159–10169.
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