| Reference Type | Journal (article/letter/editorial) |
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| Title | High‐Entropy Effect of Mesoporous Metal Oxides Promotes Tandem Catalysis for Efficient Ammonia Electrosynthesis from Nitrate |
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| Journal | Advanced Materials |
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| Authors | He, Hangjuan | Author |
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| Yao, Huiqin | Author |
| Sun, Lizhi | Author |
| Yang, Yuyang | Author |
| Qiao, Zhen‐An | Author |
| Liu, Ben | Author |
| Year | 2025 (October) | Volume | 37 |
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| Issue | 41 |
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| Publisher | Wiley |
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| DOI | doi:10.1002/adma.202508982Search in ResearchGate |
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| Generate Citation Formats |
| Mindat Ref. ID | 19081280 | Long-form Identifier | mindat:1:5:19081280:7 |
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| GUID | 0 |
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| Full Reference | He, Hangjuan; Yao, Huiqin; Sun, Lizhi; Yang, Yuyang; Qiao, Zhen‐An; Liu, Ben (2025) High‐Entropy Effect of Mesoporous Metal Oxides Promotes Tandem Catalysis for Efficient Ammonia Electrosynthesis from Nitrate. Advanced Materials, 37 (41). doi:10.1002/adma.202508982 |
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| Plain Text | He, Hangjuan; Yao, Huiqin; Sun, Lizhi; Yang, Yuyang; Qiao, Zhen‐An; Liu, Ben (2025) High‐Entropy Effect of Mesoporous Metal Oxides Promotes Tandem Catalysis for Efficient Ammonia Electrosynthesis from Nitrate. Advanced Materials, 37 (41). doi:10.1002/adma.202508982 |
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| In | (2025, October) Advanced Materials Vol. 37 (41). Wiley |
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These are the references the publisher has listed as being connected to the article. Please check the article itself for the full list of references which may differ. Not all references are currently linkable within the Digital Library.
 | |
| Not Yet Imported: - journal-article : 10.1016/j.watres.2020.115962
If you would like this item imported into the Digital Library, please contact us quoting Journal ID |
 | Xiao, Yong, Hao, Qichen, Zhang, Yunhui, Zhu, Yuchen, Yin, Shiyang, Qin, Limao, Li, Xiaohan (2022) Investigating sources, driving forces and potential health risks of nitrate and fluoride in groundwater of a typical alluvial fan plain. Science of The Total Environment, 802. 149909pp. doi:10.1016/j.scitotenv.2021.149909 |
 | Sun, Lizhi; Min, Xiaowen; Wang, Jingru; Yang, Yuyang; Han, Shu; Fan, Dongping; Jing, Yuqian; Xu, Dongdong; Wang, Wei; Liu, Ben (2025) Enabling High Performance in a Positive Potential of Nitrate‐to‐Ammonia Electrocatalysis Over Mesoporous Core@Shell Cu2O/Cu@PdCu Nanozyme. Advanced Materials, 37 (24). doi:10.1002/adma.202503291 |
 | Xu, Hui, Ma, Yuanyuan, Chen, Jun, Zhang, Wei-xian, Yang, Jianping (2022) Electrocatalytic reduction of nitrate – a step towards a sustainable nitrogen cycle. Chemical Society Reviews, 51 (7) 2710-2758 doi:10.1039/d1cs00857a |
 | Zhang, Hui, Wang, Chuqi, Luo, Hongxia, Chen, Junliang, Kuang, Min, Yang, Jianping (2023) Iron Nanoparticles Protected by Chainmail‐structured Graphene for Durable Electrocatalytic Nitrate Reduction to Nitrogen. Angewandte Chemie International Edition, 62 (5) doi:10.1002/anie.202217071 |
 | Zhou, Jianjun, Zhu, Yunqing, Wen, Kaiyue, Pan, Fan, Ma, Hongrui, Niu, Junfeng, Wang, Chuanyi, Zhao, Jincai (2024) Efficient and Selective Electrochemical Nitrate Reduction to N2 Using a Flow-Through Zero-Gap Electrochemical Reactor with a Reconstructed Cu(OH)2 Cathode: Insights into the Importance of Inter-Electrode Distance. Environmental Science & Technology, 58 (10) 4824-4836 doi:10.1021/acs.est.3c10936 |
 | Sheng, Youwei, Yang, Ruidong, Shi, Keke, Yu, Hongjie, Deng, Kai, Wang, Ziqiang, Wang, Hongjing, Wang, Liang, Xu, You (2024) Synergism of electrostatic attraction and tandem catalytic effect enabled efficient electrosynthesis of ammonia from a wide-range of nitrate concentrations. Chemical Engineering Journal, 485. 149769 doi:10.1016/j.cej.2024.149769 |
 | Liao, Wanru, Wang, Jun, Ni, Ganghai, Liu, Kang, Liu, Changxu, Chen, Shanyong, Wang, Qiyou, Chen, Yingkang, Luo, Tao, Wang, Xiqing, Wang, Yanqiu, Li, Wenzhang, Chan, Ting-Shan, Ma, Chao, Li, Hongmei, Liang, Ying, Liu, Weizhen, Fu, Junwei, Xi, Beidou, Liu, Min (2024) Sustainable conversion of alkaline nitrate to ammonia at activities greater than 2 A cm−2. Nature Communications, 15 (1) doi:10.1038/s41467-024-45534-2 |
| () |
 | Liu, Yan, Wei, Jie, Yang, Zhengwu, Zheng, Lirong, Zhao, Jiankang, Song, Zhimin, Zhou, Yuhan, Cheng, Jiajie, Meng, Junyang, Geng, Zhigang, Zeng, Jie (2024) Efficient tandem electroreduction of nitrate into ammonia through coupling Cu single atoms with adjacent Co3O4. Nature Communications, 15 (1) doi:10.1038/s41467-024-48035-4 |
| () |
 | Zhang, Haoran, Wang, Haijian, Cao, Xiqian, Chen, Mengshan, Liu, Yuelong, Zhou, Yingtang, Huang, Ming, Xia, Lu, Wang, Yan, Li, Tingshuai, Zheng, Dongdong, Luo, Yongsong, Sun, Shengjun, Zhao, Xue, Sun, Xuping (2024) Unveiling Cutting‐Edge Developments in Electrocatalytic Nitrate‐to‐Ammonia Conversion. Advanced Materials, 36 (16) doi:10.1002/adma.202312746 |
 | Fang, Jia-Yi, Zheng, Qi-Zheng, Lou, Yao-Yin, Zhao, Kuang-Min, Hu, Sheng-Nan, Li, Guang, Akdim, Ouardia, Huang, Xiao-Yang, Sun, Shi-Gang (2022) Ampere-level current density ammonia electrochemical synthesis using CuCo nanosheets simulating nitrite reductase bifunctional nature. Nature Communications, 13 (1) doi:10.1038/s41467-022-35533-6 |
 | Yan, Riqing, Yin, Hanle, Zuo, XiFeng, Peng, Weihua, Zhu, Xiaofeng, Shi, Lei, Hou, Jianhua, Wang, Dan, Ye, Fenghui, Li, Jing, et al. (2025) Hollow PdCuCo medium-entropy alloy on reduced graphene oxide with proton-mediator boosted tandem catalysis for high-performance nitrate reduction. Applied Catalysis B: Environment and Energy, 361. doi:10.1016/j.apcatb.2024.124609 |
 | Kang, Biyu, Xu, Bincheng, Chen, Zhixuan, Li, Fengting, Wang, Ying (2025) Promoting active hydrogen supply for kinetically matched tandem electrocatalytic nitrate reduction to ammonia. Applied Catalysis B: Environment and Energy, 360. doi:10.1016/j.apcatb.2024.124528 |
 | Bu, Yongguang, Wang, Chao, Zhang, Wenkai, Yang, Xiaohan, Ding, Jie, Gao, Guandao (2023) Electrical Pulse‐Driven Periodic Self‐Repair of Cu‐Ni Tandem Catalyst for Efficient Ammonia Synthesis from Nitrate. Angewandte Chemie International Edition, 62 (24) doi:10.1002/anie.202217337 |
 | Jang, Wonsik, Oh, Dongrak, Lee, Jinyoung, Kim, Jongkyoung, Matthews, Jesse E., Kim, Hyoseok, Lee, Sang-Won, Lee, Seunghyun, Xu, Yi, Yu, Je Min, et al. (2024) Homogeneously Mixed Cu–Co Bimetallic Catalyst Derived from Hydroxy Double Salt for Industrial-Level High-Rate Nitrate-to-Ammonia Electrosynthesis. Journal of the American Chemical Society, 146 (40). doi:10.1021/jacs.4c07061 |
| Not Yet Imported: - journal-article : 10.1002/adfm.202401287
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 | Chen, Xinhong, Cheng, Yumeng, Zhang, Bo, Zhou, Jia, He, Sisi (2024) Gradient-concentration RuCo electrocatalyst for efficient and stable electroreduction of nitrate into ammonia. Nature Communications, 15 (1) doi:10.1038/s41467-024-50670-w |
| () |
| Not Yet Imported: - journal-article : 10.1038/s41929-023-00951-2
If you would like this item imported into the Digital Library, please contact us quoting Journal ID |
| Sun L. (2023) Adv. Energy Mater. 13 |
 | Lv, Chade, Yan, Chunshuang, Chen, Gang, Ding, Yu, Sun, Jingxue, Zhou, Yansong, Yu, Guihua (2018) An Amorphous Noble-Metal-Free Electrocatalyst that Enables Nitrogen Fixation under Ambient Conditions. Angewandte Chemie International Edition, 57 (21). 6073-6076 doi:10.1002/anie.201801538 |
 | |
| () |
| () |
| Not Yet Imported: - journal-article : 10.1002/advs.202203219
If you would like this item imported into the Digital Library, please contact us quoting Journal ID |
 | Han, Liuliu, Mu, Wangzhong, Wei, Shaolou, Liaw, Peter K., Raabe, Dierk (2024) Sustainable high-entropy materials? Science Advances, 10 (50). doi:10.1126/sciadv.ads3926 |
| () |
| Not Yet Imported: - journal-article : 10.1126/sciadv.abg1600
If you would like this item imported into the Digital Library, please contact us quoting Journal ID |
 | Cai, Huizhu, Yang, Hengpan, He, Sizhen, Wan, Da, Kong, Yan, Li, Deliang, Jiang, Xingxing, Zhang, Xue, Hu, Qi, He, Chuanxin (2025) Size‐Adjustable High‐Entropy Alloy Nanoparticles as an Efficient Platform for Electrocatalysis. Angewandte Chemie International Edition, 64 (13). doi:10.1002/anie.202423765 |
 | Xiang, Ziwei; Lu, Ying‐Rui; Meng, Linghu; Lan, Jiao; Xie, Feng; Gao, Shanqiang; Li, Jilong; Luo, Min; Peng, Ming; Tan, Yongwen (2025) Active Hydrogen Enrichment on Cu6Sn5‐type High Entropy Intermetallics for Efficient Nitrate Reduction Reaction. Advanced Materials, 37 (28). doi:10.1002/adma.202501886 |
| Not Yet Imported: - journal-article : 10.1038/s41578-024-00654-5
If you would like this item imported into the Digital Library, please contact us quoting Journal ID |
| () |
| () |
 | Wang, Yanzhi, Yao, Yinghong, Xu, Cong, Tang, Deqing, Li, Yuting, Qiao, Zhen‐An, Liang, Hai‐Wei, Liu, Ben (2025) A Universal Solid‐Phase Synthetic Strategy for Ultrafine Intermetallic Libraries Confined in Ordered Mesoporous Carbon. Advanced Materials, 37 (6). doi:10.1002/adma.202416111 |
 | Chen, Zhi Wen, Li, Jian, Ou, Pengfei, Huang, Jianan Erick, Wen, Zi, Chen, LiXin, Yao, Xue, Cai, GuangMing, Yang, Chun Cheng, Singh, Chandra Veer, Jiang, Qing (2024) Unusual Sabatier principle on high entropy alloy catalysts for hydrogen evolution reactions. Nature Communications, 15 (1) doi:10.1038/s41467-023-44261-4 |
 | Li, Hanjun, Huang, Honggang, Chen, Yao, Lai, Feili, Fu, Hui, Zhang, Longsheng, Zhang, Nan, Bai, Shuxing, Liu, Tianxi (2023) High‐Entropy Alloy Aerogels: A New Platform for Carbon Dioxide Reduction. Advanced Materials, 35 (2) 2209242 doi:10.1002/adma.202209242 |
 | Wang, Yan, Meng, Huiying, Yu, Renqin, Hong, Jie, Zhang, Yifan, Xia, Zhonghong, Wang, Yong (2025) Unconventional Interconnected High‐Entropy Alloy Nanodendrites for Remarkably Efficient C−C Bond Cleavage toward Complete Ethanol Oxidation. Angewandte Chemie International Edition, 64 (10). doi:10.1002/anie.202420752 |
 | Zeng, Kaizhu, Hu, Rong, Zhang, Jianwei, Li, Xin, Xu, Yifan, Mu, Xilong, Wu, Hao, Liu, Shijing, Liu, Hanwen, Chen, Jinli, et al. (2025) Finely tailoring the local ensembles in heterostructured high entropy alloy catalysts through pulsed annealing. Nature Communications, 16 (1). doi:10.1038/s41467-025-58495-x |
 | Wang, Yanzhi, He, Hangjuan, Lv, Hao, Jia, Fengrui, Liu, Ben (2024) Two-dimensional single-crystalline mesoporous high-entropy oxide nanoplates for efficient electrochemical biomass upgrading. Nature Communications, 15 (1) doi:10.1038/s41467-024-50721-2 |
| Not Yet Imported: - journal-article : 10.1021/acs.jpclett.1c01242
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 | |
| Not Yet Imported: - journal-article : 10.1016/j.joule.2018.12.015
If you would like this item imported into the Digital Library, please contact us quoting Journal ID |
 | |
 | |
 | |
 | Hu, Qi, Qi, Shuai, Huo, Qihua, Zhao, Yuxin, Sun, Jianju, Chen, Xinbao, Lv, Miaoyuan, Zhou, Weiliang, Feng, Chao, Chai, Xiaoyan, Yang, Hengpan, He, Chuanxin (2024) Designing Efficient Nitrate Reduction Electrocatalysts by Identifying and Optimizing Active Sites of Co-Based Spinels. Journal of the American Chemical Society, 146 (5) 2967-2976 doi:10.1021/jacs.3c06904 |
 | Chen, Jiahao; Li, Gaoyang; Bu, Fanxing; Tian, Jiazhuang; Liu, Lin; Wang, Yifeng; Zhang, Jie; Li, Xingjin; Li, Xiang; Yang, Zhuo; et al. (2025) Tandem Assembly and Etching Chemistry towards Mesoporous Conductive Metal–Organic Frameworks for Sodium Storage Over 50,000 Cycles. Angewandte Chemie International Edition, 64 (18). doi:10.1002/anie.202500287 |
 | Zhang, Songtao, Li, Yuan, Zhuang, Xiaoli, Hu, Yaxun, Xu, Kun, Zhang, Guangxun, Pi, Yecan, Tang, Yijian, Hu, Jinliang, Zang, Rui, et al. (2025) Nano‐Metal–Organic Frameworks Isolated in Mesoporous Structures. Advanced Materials, 37 (9). doi:10.1002/adma.202418344 |
 | Li, Di, Xu, Danyun, Pei, Yuhou, Zhang, Qicheng, Lu, Yingying, Zhang, Bing (2024) Isolated Octahedral Pt-Induced Electron Transfer to Ultralow-Content Ruthenium-Doped Spinel Co3O4 for Enhanced Acidic Overall Water Splitting. Journal of the American Chemical Society, 146 (42). doi:10.1021/jacs.4c07089 |
 | Zhao, Fenglin, Hai, Guangtong, Li, Xin, Jiang, Zhouyan, Wang, Haihui (2023) Enhanced electrocatalytic nitrate reduction to ammonia on cobalt oxide nanosheets via multiscale defect modulation. Chemical Engineering Journal, 461. 141960 doi:10.1016/j.cej.2023.141960 |
 | |
 | Fan, Jianwei, Chen, Yanyan, Chen, Xiaoqian, Wu, Zhangxiong, Teng, Wei, Zhang, Wei-xian (2023) Atomically dispersed iron enables high-efficiency electrocatalytic conversion of nitrate to dinitrogen on a N-coordinated mesoporous carbon architecture. Applied Catalysis B: Environmental, 320. 121983 doi:10.1016/j.apcatb.2022.121983 |
 | Li, Jie, Zhan, Guangming, Yang, Jianhua, Quan, Fengjiao, Mao, Chengliang, Liu, Yang, Wang, Bo, Lei, Fengcai, Li, Lejing, Chan, Alice W. M., Xu, Liangpang, Shi, Yanbiao, Du, Yi, Hao, Weichang, Wong, Po Keung, Wang, Jianfang, Dou, Shi-Xue, Zhang, Lizhi, Yu, Jimmy C. (2020) Efficient Ammonia Electrosynthesis from Nitrate on Strained Ruthenium Nanoclusters. Journal of the American Chemical Society, 142 (15) 7036-7046 doi:10.1021/jacs.0c00418 |
 | |
 | Jiang, Haifeng, Chen, Gao‐Feng, Savateev, Oleksandr, Xue, Jian, Ding, Liang‐Xin, Liang, Zhenxing, Antonietti, Markus, Wang, Haihui (2023) Enabled Efficient Ammonia Synthesis and Energy Supply in a Zinc–Nitrate Battery System by Separating Nitrate Reduction Process into Two Stages. Angewandte Chemie International Edition, 62 (13) doi:10.1002/anie.202218717 |
 | |
 | Gao, Wensheng, Xie, Kefeng, Xie, Jin, Wang, Xiaomei, Zhang, Hong, Chen, Shengqi, Wang, Hao, Li, Zelong, Li, Can (2023) Alloying of Cu with Ru Enabling the Relay Catalysis for Reduction of Nitrate to Ammonia. Advanced Materials, 35 (19) doi:10.1002/adma.202202952 |
 | |
| Qin J. (2025) Catal. Sci. Technol. 10 |
 | Huang, Jinzhen, Sheng, Hongyuan, Ross, R. Dominic, Han, Jiecai, Wang, Xianjie, Song, Bo, Jin, Song (2021) Modifying redox properties and local bonding of Co3O4 by CeO2 enhances oxygen evolution catalysis in acid. Nature Communications, 12 (1) doi:10.1038/s41467-021-23390-8 |
 | Liang, Shaozhen, Teng, Xue, Xu, Heng, Chen, Lisong, Shi, Jianlin (2024) H* Species Regulation by Mn‐Co(OH)2 for Efficient Nitrate Electro‐reduction in Neutral Solution. Angewandte Chemie International Edition, 63 (11) doi:10.1002/anie.202400206 |
 | Li, Yuxiang, Lu, Zhenjie, Zheng, Lei, Yan, Xing, Xie, Junliang, Yu, Zhonghao, Zhang, Shengli, Jiang, Fang, Chen, Huan (2024) The synergistic catalysis effect on electrochemical nitrate reduction at the dual-function active sites of the heterostructure. Energy & Environmental Science, 17 (13) 4582-4593 doi:10.1039/d4ee00784k |
 | |
 | |
 | Zhu, Guihua, Bao, Weichao, Xie, Meng, Qi, Chunhong, Xu, Fangfang, Jiang, Ying, Chen, Bingwei, Fan, Yuchi, Liu, Bin, Wang, Lianjun, et al. (2025) Accelerating Tandem Electroreduction of Nitrate to Ammonia via Multi‐Site Synergy in Mesoporous Carbon‐Supported High‐Entropy Intermetallics. Advanced Materials, 37 (5). doi:10.1002/adma.202413560 |
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