Chinese Journal of Catalysis ›› 2026, Vol. 89: 196-206.DOI: 10.1016/S1872-2067(26)65111-X
• Article • Previous Articles Next Articles
Xiaoshan Hao,1, Shanshan Lu,1(
), Chuanqi Cheng,1, Qingqing Ruan, Bin Zhang*(
), Yanmei Shi*(
)
Received:2025-12-19
Accepted:2026-02-21
Online:2026-10-18
Published:2026-09-01
Contact:
E-mail: About author:1 Contributed equally to this work.
Supported by:Xiaoshan Hao, Shanshan Lu, Chuanqi Cheng, Qingqing Ruan, Bin Zhang, Yanmei Shi. Promoting interfacial free water supply through the hydration of single-atom lanthanide doping for acidic water oxidation[J]. Chinese Journal of Catalysis, 2026, 89: 196-206.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65111-X
Fig. 1. Theoretical predictions of La doping into Co3O4. (a) Calculation models of La-Co3O4 for different OER steps. The red, dark blue, pink, and green balls represent O, Co, H, and La, respectively. The O and H in the OER intermediates are highlighted in cyan and light blue, respectively. (b) Calculated density of H2O (top) and O species (bottom) at the surface of Co3O4 and La-Co3O4. (c) Free energy diagrams of the OER over Co3O4 and La-Co3O4 at a bias of 0 V. (d) -pCOHP analysis of Co3O4 and La-Co3O4.
Fig. 2. Preparation and morphology of La-Co3O4. (a) Illustration of the preparation of La-Co3O4. (b) LSV curves of Co3O4 scanning in electrolytes with different La3+ concentrations. (c) XRD patterns of Co3O4 and La-Co3O4. Peaks labeled by asterisk (*) arise from Ti as the substrate. (d) Magnified view of the marked region in (c). (e) TEM image of La-Co3O4. (f) Aberration-corrected HAADF-STEM image of La-Co3O4. (g) HAADF-STEM and corresponding elemental distributing mapping images of La-Co3O4.
Fig. 3. Spectroscopic characterizations of La-Co3O4. (a) Co 2p XPS spectra of Co3O4 and La-Co3O4. (b) La 3d5/2 spectrum of La-Co3O4. (c) Raman spectra of Co3O4 and La-Co3O4. (d) Co K-edge XANES spectra of Co3O4 and La-Co3O4. The Co foil and CoO data are shown for comparison. The inset is the corresponding pre-edge region in (d). (e) Co K-edge EXAFS spectra of Co3O4 and La-Co3O4. (f) O K-edge soft X-ray absorption spectra of Co3O4 and La-Co3O4.
Fig. 4. Electrocatalytic OER performance and reaction mechanism. (a) LSV curves of Co3O4, La-Co3O4, and RuO2. (b) Tafel plots of Co3O4 and La-Co3O4. (c) Nyquist plots of Co3O4 and La-Co3O4 at 1.6 V vs. RHE. (d) I-t curves of Co3O4, La-Co3O4, and RuO2 at 10 mA cm-2. (e) Co 2p XPS spectra of the counter electrode used for Co3O4 and La-Co3O4. (f) Current densities of Co3O4 and La-Co3O4 at 1.7 V as a function of pH. (g) Proportion of 34O2 and 36O2 generated from 18O-labeled Co3O4 and La-Co3O4 tested in H216O. (h) Raman spectra of Co3O4 and La-Co3O4 with the addition of TMA+ at the OCP and 1.7 V.
Fig. 5. In-situ investigations of the effect of La doping. In-situ Raman spectra of Co3O4 (a) and La-Co3O4 (b) in the range of 550-770 cm-1. (c) Corresponding Raman shifts of F2g at different potentials for Co3O4 and La-Co3O4. In-situ Raman spectra of Co3O4 (d) and La-Co3O4 (e) in the range of 2800-4000 cm-1. Corresponding proportion (f) and Raman shift (g) of free water for Co3O4 and La-Co3O4.
Fig. 6. Universality of the performance promotion through other lanthanide-element doping. (a) LSV curves of Co3O4, Sm-Co3O4, and Pr-Co3O4. (b) I-t curves of Co3O4, Sm-Co3O4, and Pr-Co3O4 at 10 mA cm-2. In-situ Raman spectra of Sm-Co3O4 (c) and Pr-Co3O4 (d) in the range of 2800-4000 cm-1. Corresponding proportion (e) and Raman shift (f) of free water for Sm-Co3O4 and Pr-Co3O4.
|
| [1] | Qi Tang, Bomiao Wang, Chongtai Wang, DaoXiong Wu, Ziming Cheng, Huimin Han, Leiyun Han, Huaxia Chen, Yingjie Hua. The regulation of interface structure improves the performance of the MoxOy/Co3O4 electrocatalytic oxygen evolution reaction in acidic media [J]. Chinese Journal of Catalysis, 2026, 88(9): 295-306. |
| [2] | Yingzhen Zhang, Wei Zhang, Zhangzheng Huang, Weilong Cai, Yun Hau Ng, Jianying Huang, Yuekun Lai. Mn-triggered dynamic phase transition in NiSe2 catalyst via doping engineering for boosted urea electrolysis [J]. Chinese Journal of Catalysis, 2026, 88(9): 335-346. |
| [3] | Chen Wang, Yue Zhang, Haolin Luo, Huoshuai Huang, Qianxiang Su, Zhen Ye, Zhi Jiang, Yong Zhu, Mingxia Chen, Zhidong Wei, Wenfeng Shangguan. Regulation of Metal‒Sulfur bond polarizability in Zn0.5Cd0.5S for visible-light-driven photocatalytic overall water splitting [J]. Chinese Journal of Catalysis, 2026, 87(8): 217-229. |
| [4] | Suwei Lu, Hongping Yan, Hongwei Zhang, Yuying Cheng, Xinxin Jiang, Xuyun Peng, Junwei Huang, Yuanjin Li, Xin Wang, Shijing Liang, Lilong Jiang. Electrosynthesis of nylon-6 precursor via heteroatom-doping-regulated oxygen vacancies engineering over ZnO [J]. Chinese Journal of Catalysis, 2026, 87(8): 243-253. |
| [5] | Yatai Zhou, Chengcheng Yuan, Wei Xia, Jun Wang, Xiaofeng Zhu, Yong Zhang, Bicheng Zhu, Jiaguo Yu. Synergistic optimization of interfacial electron transfer and surface hydrogen adsorption in a CdS/ZnO S-scheme heterojunction by site-specific doping: A DFT study [J]. Chinese Journal of Catalysis, 2026, 86(7): 327-337. |
| [6] | Qiurong Wang, Fozia Sultana, Renkun Li, Yan Fang, Selvi Mushina, Mingwu Tan, Tongtong Li, Renhong Li. Chromium-driven lattice oxygen activation in high-entropy oxide for efficient oxygen evolution reaction [J]. Chinese Journal of Catalysis, 2026, 86(7): 277-289. |
| [7] | Quan Zhang, Hejin Ma, Ruobing Han, Tonglin Yang, Zhenhui Chen, Miaoyang Zhu, Jiawei Shi, Weiwei Cai, Fangqi Yang, Zehui Yang. Lattice-expanded NiSe catalyst via lanthanum incorporation for accelerating urea electrooxidation in assisting water electrolysis [J]. Chinese Journal of Catalysis, 2026, 86(7): 254-264. |
| [8] | Kaiyang Zhang, Huihui Li, Shuhao Wang, Rui Yao, Jinping Li, Chuan Zhao, Guang Liu. Breaking the activity-stability trade-off of iridium-based catalysts for proton exchange membrane water electrolyzers [J]. Chinese Journal of Catalysis, 2026, 85(6): 193-203. |
| [9] | Liqing Wu, Wenxia Huang, Bingbing Zhao, Ping Cai, Wei Luo. Surface anions-mediated dynamic interfacial free water enriched microenvironment on RuO2 for efficient acidic oxygen evolution [J]. Chinese Journal of Catalysis, 2026, 85(6): 237-246. |
| [10] | Xiang Wang, Min Zhou, Xiaobin Liao, Xu Han, Congcong Xing, René Bes, Simo Huotari, Jordi Arbiol, Andreu Cabot. Enhanced oxygen evolution and reduction by phosphorus-doped Co9S8 derived from MOFs: Toward high-performance zinc-air batteries [J]. Chinese Journal of Catalysis, 2026, 85(6): 204-215. |
| [11] | Zhe Deng, Xiandi Ma, Ning Wang, Menggai Jiao, Hao Wan, Li-Li Zhang, Wei Ma, Zhen Zhou. Superficial S atom optimized active sites in NiFe layered double hydroxides for electrocatalytic urea oxidation [J]. Chinese Journal of Catalysis, 2026, 84(5): 189-199. |
| [12] | Rongxing Chen, Yongkang Quan, Weilong Cai, Yun Hau Ng, Jianying Huang, Yuekun Lai. Synergistic band and electronic engineering in cyano-oxygen co-functionalized carbon nitride for efficient photocatalytic H2O2 synthesis [J]. Chinese Journal of Catalysis, 2026, 84(5): 250-260. |
| [13] | Xiaofeng Chen, Yixuan Huang, Wanbin Lin, Jiaojiao Xia, Xirui Zhang, Wenjie Gong, Chuqian Jian, Hao Liu, Jiacheng Zeng, Jiang Liu, Yu Chen. Mn-doping induced phase segregation of air electrodes enables high-performance and durable reversible protonic ceramic cells [J]. Chinese Journal of Catalysis, 2026, 81(2): 333-343. |
| [14] | Yu Tang, Yang Chen, Kerun Chen, Edmund Qi, Xiaoyang Liu, Haiyan Lu, Yu Gao. Cu-Mo synergistic doping of metal-organic framework double-shelled hollow nanospheres: Surface reconstruction activates adsorbate evolution and lattice oxygen mechanisms [J]. Chinese Journal of Catalysis, 2026, 81(2): 159-171. |
| [15] | Xuebi Rao, Huiling Fang, Jialin Sun, Liqun Liu, Yongkang Zhu, Junxiang Chen, Shiming Zhang, Bin Liu. Regulating single-Fe-atom spin-state via implanting second-shell symmetrical sulfur coordination [J]. Chinese Journal of Catalysis, 2026, 89(10): 453-463. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||