[1] |
Gong Zhang, Wei-Song Zhang, Xiao-Yu Wang, Yang Yang, Ding-Wei Ji, Boshun Wan, Qing-An Chen.
Ni-catalyzed unnatural prenylation and cyclic monoterpenation of heteroarenes with isoprene
[J]. Chinese Journal of Catalysis, 2023, 49(6): 123-131.
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[2] |
Jingjing Li, Fengwei Zhang, Xinyu Zhan, Hefang Guo, Han Zhang, Wen-Yan Zan, Zhenyu Sun, Xian-Ming Zhang.
Precise design of nickel phthalocyanine molecular structure: Optimizing electronic and spatial effects for remarkable electrocatalytic CO2 reduction
[J]. Chinese Journal of Catalysis, 2023, 48(5): 117-126.
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[3] |
Qixian Xie, Dan Ren, Lichen Bai, Rile Ge, Wenhui Zhou, Lu Bai, Wei Xie, Junhu Wang, Michael Grätzel, Jingshan Luo.
Investigation of nickel iron layered double hydroxide for water oxidation in different pH electrolytes
[J]. Chinese Journal of Catalysis, 2023, 44(1): 127-138.
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[4] |
Yingjie Zhou, Tianfu Liu, Yuefeng Song, Houfu Lv, Qingxue Liu, Na Ta, Xiaomin Zhang, Guoxiong Wang.
Highly dispersed nickel species on iron-based perovskite for CO2 electrolysis in solid oxide electrolysis cell
[J]. Chinese Journal of Catalysis, 2022, 43(7): 1710-1718.
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[5] |
Huining Wang, Anxiang Guan, Junbo Zhang, Yuying Mi, Si Li, Taotao Yuan, Chao Jing, Lijuan Zhang, Linjuan Zhang, Gengfeng Zheng.
Copper-doped nickel oxyhydroxide for efficient electrocatalytic ethanol oxidation
[J]. Chinese Journal of Catalysis, 2022, 43(6): 1478-1484.
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[6] |
Bo Zhou, Mengyu Li, Yingying Li, Yanbo Liu, Yuxuan Lu, Wei Li, Yujie Wu, Jia Huo, Yanyong Wang, Li Tao, Shuangyin Wang.
Cobalt-regulation-induced dual active sites in Ni2P for hydrazine electrooxidation
[J]. Chinese Journal of Catalysis, 2022, 43(4): 1131-1138.
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[7] |
Xiaoqin Han, Jiachang Zuo, Danlu Wen, Youzhu Yuan.
Toluene methylation with syngas to para-xylene by bifunctional ZnZrOx-HZSM-5 catalysts
[J]. Chinese Journal of Catalysis, 2022, 43(4): 1156-1164.
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[8] |
Lulu An, Shaofeng Deng, Xuyun Guo, Xupo Liu, Tonghui Zhao, Ke Chen, Ye Zhu, Yuxi Fu, Xu Zhao, Deli Wang.
Enhancing hydrogen electrocatalytic oxidation on Ni3N/MoO2 in-plane heterostructures in alkaline solution
[J]. Chinese Journal of Catalysis, 2022, 43(12): 3154-3160.
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[9] |
Letian Chen, Xu Zhang, An Chen, Sai Yao, Xu Hu, Zhen Zhou.
Targeted design of advanced electrocatalysts by machine learning
[J]. Chinese Journal of Catalysis, 2022, 43(1): 11-32.
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[10] |
Yiqi Ren, Lin Tao, Chunzhi Li, Sanjeevi Jayakumar, He Li, Qihua Yang.
Development of efficient solid chiral catalysts with designable linkage for asymmetric transfer hydrogenation of quinoline derivatives
[J]. Chinese Journal of Catalysis, 2021, 42(9): 1576-1585.
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[11] |
Changshun Deng, Yun Cui, Junchao Chen, Teng Chen, Xuefeng Guo, Weijie Ji, Luming Peng, Weiping Ding.
Enzyme-like mechanism of selective toluene oxidation to benzaldehyde over organophosphoric acid-bonded nano-oxides
[J]. Chinese Journal of Catalysis, 2021, 42(9): 1509-1518.
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[12] |
Xueyou Gao, Deqian Zeng, Jingren Yang, Wee-Jun Ong, Toyohisa Fujita, Xianglong He, Jieqian Liu, Yuezhou Wei.
Ultrathin Ni(OH)2 nanosheets decorated with Zn0.5Cd0.5S nanoparticles as 2D/0D heterojunctions for highly enhanced visible light-driven photocatalytic hydrogen evolution
[J]. Chinese Journal of Catalysis, 2021, 42(7): 1137-1146.
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[13] |
Huizhong Wu, Jiadong Wang, Ruimin Chen, Chaowei Yuan, Jin Zhang, Yuxin Zhang, Jianping Sheng, Fan Dong.
Zn-doping mediated formation of oxygen vacancies in SnO2 with unique electronic structure for efficient and stable photocatalytic toluene degradation
[J]. Chinese Journal of Catalysis, 2021, 42(7): 1195-1204.
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[14] |
Steffen Cychy, Sebastian Lechler, Zijian Huang, Michael Braun, Ann Cathrin Brix, Peter Blümler, Corina Andronescu, Friederike Schmid, Wolfgang Schuhmann, Martin Muhler.
Optimizing the nickel boride layer thickness in a spectroelectrochemical ATR-FTIR thin-film flow cell applied in glycerol oxidation
[J]. Chinese Journal of Catalysis, 2021, 42(12): 2206-2215.
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[15] |
Yue Hu, Jian Wu, Yujia Han, Weibin Xu, Li Zhang, Xue Xia, Chuande Huang, Yanyan Zhu, Ming Tian, Yang Su, Lin Li, Baolin Hou, Jian Lin, Wen Liu, Xiaodong Wang.
Intensified solar thermochemical CO2 splitting over iron-based redox materials via perovskite-mediated dealloying-exsolution cycles
[J]. Chinese Journal of Catalysis, 2021, 42(11): 2049-2058.
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