J. Mater. Sci. Technol. ›› 2026, Vol. 263: 67-75.DOI: 10.1016/j.jmst.2025.10.054
• Research article • Previous Articles Next Articles
Xueqiang Zhanga,1, Xuewen Xiaa,1, Ya Gaoa,1, Xing Yua, Zhongya Panga, Guangshi Lia, Qian Xua, Hsien-Yi Hsub, Yufeng Zhaoc, Shen Hud, Li Jid, Xionggang Lua, Xingli Zoua,*
Received:2025-09-02
Revised:2025-10-21
Accepted:2025-10-23
Online:2026-08-19
Contact:
*E-mail address: xlzou@shu.edu.cn (X. Zou).
About author:1These authors contributed equally to this work.
Xueqiang Zhang, Xuewen Xia, Ya Gao, Xing Yu, Zhongya Pang, Guangshi Li, Qian Xu, Hsien-Yi Hsu, Yufeng Zhao, Shen Hu, Li Ji, Xionggang Lu, Xingli Zou. High-entropy doping strengthens Ni-S covalent bonds for industrially stable oxygen evolution[J]. J. Mater. Sci. Technol., 2026, 263: 67-75.
| [1] W. Wu, H. Zhai, E. Holubnyak, Nat. Commun. 15(2024) 5684. [2] M. Chatenet, B.G. Pollet, D.R. Dekel, F. Dionigi, J. Deseure, P. Millet, R.D. Braatz, M.Z. Bazant, M. Eikerling, I. Staffell, P. Balcombe, Y. Shao-Horn, H. Schäfer, Chem. Soc. Rev. 51(2022) 4583-4762. [3] L. Quan, H. Jiang, G. Mei, Y. Sun, B. You, Chem. Rev. 124(2024) 3694-3812. [4] K. Zhang, R. Zou, Small 17 (2021) 2100129. [5] Y. Zhang, R. Yan, X. Xu, C. He, M. Zhou, Z. Zeng, T. Ma, M. Wang, S. Li, Adv. Funct. Mater. 34(2023) 2308813. [6] Y. Zhang, F. Gao, D. Wang, Z. Li, X. Wang, C. Wang, K. Zhang, Y. Du, Coord. Chem. Rev. 475(2023) 214916. [7] H. Liu, J. Cheng, W. He, Y. Li, J. Mao, X. Zheng, C. Chen, C. Cui, Q. Hao, Appl. Catal. B-Environ. Energy 304 (2022) 120935. [8] Y. Sang, J. Xue, J. Hu, L. Chen, Appl. Catal. B-Environ. Energy 361 (2025) 124698. [9] X. Ding, D. Liu, P. Zhao, X. Chen, H. Wang, F.E. Oropeza, G. Gorni, M. Barawi, M. García-Tecedor, V.A.Peña O’Shea, J.P. Hofmann, J. Li, J. Kim, S. Cho, R. Wu, K.H.L. Zhang, Nat. Commun. 15(2024) 5336. [10] L. Sun, Z. Zhou, Y. Xie, J. Zheng, X. Pan, L. Li, G. Zhao, Adv. Funct. Mater. 33(2023) 2301884. [11] S. Wang, D. Yuan, S. Sun, S. Huang, Y. Wu, L. Zhang, S.X. Dou, H.K. Liu, Y. Dou, J. Xu, Small 20 (2024) 2311770. [12] Z. Wang, S. Shen, Z. Lin, W. Tao, Q. Zhang, F. Meng, L. Gu, W. Zhong, Adv. Funct. Mater. 32(2022) 2112832. [13] J.-T. Ren, L.Chen, H.-Y. Wang, Z.-Y. Yuan, Chem. Soc. Rev. 52(2023) 8319-8373. [14] Y. Ma, Y. Ma, Q. Wang, S. Schweidler, M. Botros, T. Fu, H. Hahn, T. Brezesinski, B. Breitung, Energy Environ. Sci. 14(2021) 2883-2905. [15] J. Wang, J. Zhang, Y. Hu, H. Jiang, C. Li, Sci. Bull. 67(2022) 1890-1897. [16] J. Sun, Z. Wu, Z. Zhu, M.L.S.Nai, X. An, J.Mater. Sci. Technol. 237(2025) 115-127. [17] R. Zhang, C. Wang, P. Zou, R. Lin, L. Ma, L. Yin, T. Li, W. Xu, H. Jia, Q. Li, S. Sainio, K. Kisslinger, S.E. Trask, S.N. Ehrlich, Y. Yang, A.M. Kiss, M. Ge, B.J. Polzin, S.J. Lee, W. Xu, Y. Ren, H.L. Xin, Nature 610 (2022) 67-73. [18] P. Liang, K. Qi, S. Chen, X. Ding, X. Wu, C. Wu, Y. Zhu, Angew. Chem. Int. Ed. 63(2024) e202318186. [19] G. Zeng, B. Liu, U. Ali, Y. Li, H. Jia, M. Sun, Y. Li, Y. Hao, X. Yong, T. Wang, C. Wang, Appl. Catal. B-Environ. Energy 351 (2024) 123996. [20] Q. Chen, X. Han, Z. Xu, Q. Chen, Q. Wu, T. Zheng, P. Wang, Z. Wang, J. Wang, H. Li, Z. Xia, J. Hao, Nano Energy 110 (2023) 108380. [21] H. Jia, Y. Li, U. Ali, B. Liu, Z. Jin, L. Li, Y. Chen, L. Zhang, T. Wang, C. Wang, Nano Energy 122 (2024) 109348. [22] Y.-N. Zhou, R.-Y. Fan, Y.-S. Zhang, N. Yu, H. Hu, M. Hojamberdiev, B. Dong, Y.-M. Chai, ACS. Energy Lett. 9(2024) 5064-5073. [23] S. Li, T. Liu, W. Zhang, M. Wang, H. Zhang, C. Qin, L. Zhang, Y. Chen, S. Jiang, D. Liu, X. Liu, H. Wang, Q. Luo, T. Ding, T. Yao, Nat. Commun. 15(2024) 3416. [24] B. Yao, Y. Chen, Y. Yan, Y. Yang, H. Xing, Y. Xu, D. Jiao, Z. Xing, D. Wang, X. Yang, Angew. Chem. Int. Ed. 64(2024) e202416141. [25] D. Li, W. Wan, Z. Wang, H. Wu, S. Wu, T. Jiang, G. Cai, C. Jiang, F. Ren, Adv. Energy Mater. 12(2022) 2201913. [26] J.F.G.Kresse, Comput. Mater. Sci. 6(1996) 15-50. [27] G. Kress, Phys. Rev. B 59 (1999) 1758-1775. [28] K.B. John, P. Perdew, M. Ernzerhof, Phys. Rev. Lett. 77(1996) 3865-3868. [29] D.J. Chadi, Phys. Rev. B 16 (1977) 1746-1747. [30] G. Henkelman, H. Jónsson, J. Chem. Phys. 113(20 0 0) 9978-9985. [31] M. Yang, L. Zhu, Q. Zhong, R. El-Ganainy, P.-Y. Chen, Nat.Commun. 14(2023) 1145. [32] C. Zhan, Y. Xu, L. Bu, H. Zhu, Y. Feng, T. Yang, Y. Zhang, Z. Yang, B. Huang, Q. Shao, X. Huang, Nat. Commun. 12(2021) 6261. [33] G. Zhang, Z. Li, J. Zeng, L. Yu, C. Zuo, P. Wen, Y. Liu, L. Zhong, H. Chen, Y. Qiu, Appl. Catal. B-Environ. Energy 319 (2022) 121921. [34] H. Zhang, N. Li, S. Gao, A. Chen, Q. Qian, Q. Kong, B.Y. Xia, G. Hu, eScience 5 (2024) 100311. [35] H. Luo, L. Li, F. Lin, Q. Zhang, K. Wang, D. Wang, L. Gu, M. Luo, F. Lv, S. Guo, Adv. Mater. 36(2024) 2403674. [36] H. Guan Xu, C. Zhu, H. Yang Lin, J. Kai Liu, Y. Xiao Wu, H. Qin Fu, X. Yu Zhang, F. Mao, H. Yang Yuan, C. Sun, P. Fei Liu, H. Gui Yang, Angew. Chem. Int. Ed. 64(2024) e202415423. [37] C. Feng, Y. Zhou, M. Chen, L. Zou, X. Li, X. An, Q. Zhao, P. Xiaokaiti, A. Abudula, K. Yan, G. Guan, Appl. Catal. B-Environ. Energy 349 (2024) 123875. [38] W. Zhai, Y. Chen, Y. Liu, Y. Ma, P. Vijayakumar, Y. Qin, Y. Qu, Z. Dai, Nano-Micro Lett. 16(2024) 115. [39] W. Li, Z. Sun, R. Ge, J. Li, Y. Li, J.M. Cairney, R. Zheng, Y. Li, S. Li, Q. Li, B. Liu, Small. Struct. 4(2023) 2300175. [40] P. Wang, X. Han, P. Bai, J. Mu, Y. Zhao, J. He, Y. Su, Appl. Catal. B-Environ. En-ergy 344 (2024) 123659. [41] C.-A. Zhou, S. Wang, K. Ma, L. Song, L. Zheng, H. Yue, Appl. Catal. B-Environ. Energy 321 (2023) 122065. [42] H. Zhu, S. Sun, J. Hao, Z. Zhuang, S. Zhang, T. Wang, Q. Kang, S. Lu, X. Wang, F. Lai, T. Liu, G. Gao, M. Du, D. Wang, Energy Environ. Sci. 16(2023) 619-628. [43] X. Liu, S. Wei, S. Cao, Y. Zhang, W. Xue, Y. Wang, G. Liu, J. Li, Adv. Mater. 36(2024) 2405970. [44] W. Luo, Y. Yu, Y. Wu, W. Wang, Y. Jiang, W. Shen, R. He, W. Su, M. Li, Small 20 (2024) 2310387. [45] C.-H. Li, C.-Z. Yuan, X. Huang, H. Zhao, F. Wu, L. Xin, X. Zhang, S. Ye, Y. Chen, eScience 5 (2025) 100307. [46] S. Anantharaj, S. Noda, M. Driess, P.W. Menezes, ACS Energy Lett. 6(2021) 1607-1611. [47] T. Shinagawa, A.T.Garcia-Esparza, K.Takanabe, Sci. Rep. 5(2015) 13801. [48] S. Qiang, Z. Li, S. He, H. Zhou, Y. Zhang, X. Cao, A. Yuan, J. Zou, J. Wu, Y. Qiao, Nano Energy 134 (2025) 110564. [49] X. Jian, W. Zhang, Y. Yang, Z. Li, H. Pan, Q. Gao, H.-J. Lin, ACS Catal. 14(2024) 2816-2827. [50] Y. Chen, Z. Tang, Z. Liu, W.H. Huang, M.H. Yeh, C.W. Pao, H. Tao, M. Xu, Z. Dong, L. Yuan, M. Pu, B. Li, G. Yang, Y. Guo, Z. Hu, Y. Zhu, Adv. Mater. 37(2025) 2504607. [51] S. Zhang, C. Tan, R. Yan, X. Zou, F.L. Hu, Y. Mi, C. Yan, S. Zhao, Angew. Chem. Int. Ed. 62(2023) e202302795. [52] H. Ding, C. Su, J. Wu, H. Lv, Y. Tan, X. Tai, W. Wang, T. Zhou, Y. Lin, W. Chu, X. Wu, Y. Xie, C. Wu, J. Am. Chem.Soc. 146(2024) 7858-7867. [53] N. Li, J. Han, K. Yao, M. Han, Z. Wang, Y. Liu, L. Liu, H. Liang, J. Mater. Sci.Technol. 106(2022) 90-97. [54] M. Chen, W. Li, Y. Lu, P. Qi, H. Wu, K. Hao, Y. Tang, Appl. Catal. B-Environ. Energy 358 (2024) 124415. [55] J. Hu, T. Guo, X. Zhong, J. Li, Y. Mei, C. Zhang, Y. Feng, M. Sun, L. Meng, Z. Wang, B. Huang, L. Zhang, Z. Wang, Adv. Mater. 36(2024) 2310918. [56] J. Yang, K. An, Z. Yu, L. Qiao, Y. Cao, Y. Zhuang, C. Liu, L. Li, L. Peng, H. Pan, ACS Catal. 14(2024) 17739-17747. |
| [1] | Long Tiantian, Chen Qiang, Jia Liangyong, Li Mingyang, Cheng Ping, Li Jiahui, Chen Chunguang, Lei Yuhui, Yang Guangzhi, Yang Weiwei. Interfacial engineering activates the oxide pathway mechanism of the ruthenium dioxide for efficient acidic water oxidation [J]. J. Mater. Sci. Technol., 2026, 260(0): 80-87. |
| [2] | Yu Xu, Wang Xinyu, He Pinyi, Yang Guohui, Qin Fu, Yao Yongkang, Ren Lili. CoFe alloy realizing enhanced Fe-bridged electron superhighways in Mott-Schottky heterojunctions for efficient water and urea electrolysis [J]. J. Mater. Sci. Technol., 2026, 260(0): 298-308. |
| [3] | Yujun Han, Li Shao, Liyang Xiao, Pengfei Huang, Tongzhou Wang, Lei Shi, Yuefei Zhang, Jihong Li, Wenbin Hu, Yida Deng. Freestanding Fe3C twinning/amorphous NiP electrode with carbon-linked interface for enhanced alkaline oxygen evolution [J]. J. Mater. Sci. Technol., 2026, 262(0): 109-118. |
| [4] | Shuangfei Huang, Xiaowen Chen, Chunxue Guo, Xuemei Han, Ping Zhu, Xinsheng Zhao, Chuangwei Liu, Sa Liu. Self-supported coaxial nanocable CuO@Ni(OH)2@FeOOH heterojunction arrays catalyst with interfacial coupling for enhanced oxygen evolution and urea oxidation reactions [J]. J. Mater. Sci. Technol., 2026, 240(0): 290-298. |
| [5] | Xianyu Chu, Yanan Wang, Li Jing, Wei Jiang, Yuanyuan Wu, Ming Lu, Bo Liu, Chunbo Liu, Yantao Sun, Guangbo Che. Design and construction of metal sulfide/phosphide heterostructures with optimized d-band center and boosted electrocatalytic oxygen evolution [J]. J. Mater. Sci. Technol., 2025, 233(0): 38-47. |
| [6] | Ruoyu Wu, Ruiying Gao, Zhibin Li, Jing Wang, Hui Wang, Yuan Wu, Suihe Jiang, Xiaobin Zhang, Xianzhen Wang, Xiongjun Liu, Zhaoping Lu. Nanoporous high-entropy Mn-Fe-Co-Ni amorphous oxide: Boosting oxygen evolution efficiency through electron spin-polarization [J]. J. Mater. Sci. Technol., 2025, 238(0): 266-275. |
| [7] | Xiaorui Wang, Lingxing Zan, Hongling Zhang, Kun Tian, Dan Zhu, Jian Li, Qiang Weng, Cuicui Wang, Qingbo Wei, Wenlin Zhang, Xiangyang Hou, Feng Fu. Cr-leaching induced in-situ surface reconstruction of trimetallic CoFeCr-hydroxide on Ni foam for highly efficient water oxidation [J]. J. Mater. Sci. Technol., 2025, 239(0): 320-329. |
| [8] | Xingheng Zhang, Zhaojie Wang, Shoufu Cao, Xiaojing Lin, Xiaodong Chen, Qi Hou, Shuxian Wei, Siyuan Liu, Fangna Dai, Daofeng Sun, Xiaoqing Lu. Breaking the scaling relationship for high-performance seawater oxidation through lattice distortion triggered by molybdenum [J]. J. Mater. Sci. Technol., 2025, 225(0): 165-173. |
| [9] | Haryeong Choi, Jiseung Kim, Taehee Kim, Vinayak G. Parale, Wonjun Lee, Hyun Jee Heo, Hyung-Ho Park. Morphological modulation of Co-based zeolitic imidazolate framework for oxygen evolution reaction [J]. J. Mater. Sci. Technol., 2025, 225(0): 277-287. |
| [10] | Biao Wang, Xiangrui Wu, Suyue Jia, Jiayi Tang, Hao Wu, Xuan Wang, Shengyong Gao, Hao Li, Haijiao Lu, Gengtao Fu, Xiangkang Meng, Shaochun Tang. Ultrahigh specific surface area mesoporous perovskite oxide nanosheets with rare-earth-enhanced lattice oxygen participation for superior water oxidation [J]. J. Mater. Sci. Technol., 2025, 227(0): 255-261. |
| [11] | Wansen Ma, Jinshuai Fei, Chao Chen, Liwen Hu, Xuewei Lv, Jie Dang. One-step approach for constructing synergistic effect-based high-performance bifunctional catalysts toward green hydrogen production [J]. J. Mater. Sci. Technol., 2025, 230(0): 1-9. |
| [12] | Weiwei Zhang, Qingyun lv, Long Hou, Jiantao Wang, Zhipeng Long, Xionggang Lu, Xing Yu, Xi Li. Facile top-down fabrication of integrated amorphous NiFe-based electrocatalytic electrodes for high current and long-life oxygen evolution [J]. J. Mater. Sci. Technol., 2025, 211(0): 11-21. |
| [13] | Mengyao Yang, Xixin Wang, Xuewen Xu, Ying Li, Yuejiao Liu, Jianling Zhao. Facile preparation of CoFe-MnO2@titania nanotube array bifunctional electrodes for high-current-density water splitting at industrial temperatures [J]. J. Mater. Sci. Technol., 2025, 211(0): 123-133. |
| [14] | Juan He, Chao Chen, Hailong Yu, Yang Zhao, Ming Xu, Ting Xiong, Qiuhong Lu, Zhi Yu, Kaiping Tai, Jun Tan, Chang Liu. Epitaxial growth of highly atomically ordered Pt-Fe nanoparticles from carbon nanotube bundles as durable oxygen reduction electrocatalysts [J]. J. Mater. Sci. Technol., 2025, 212(0): 139-147. |
| [15] | Jiaxuan Bai, Ming Hao, Xiaoyu Han, Pengfei Zhou, Hairui Yao, Liang Bian, Guanling Yang, Jinsheng Liang, Richard M. Laine, Fei Wang. Halloysite-derived hierarchical cobalt silicate hydroxide hollow nanorods assembled by nanosheets for highly efficient electrocatalytic oxygen evolution reaction [J]. J. Mater. Sci. Technol., 2025, 216(0): 139-149. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
WeChat
