Chinese Journal of Catalysis ›› 2026, Vol. 85: 226-236.DOI: 10.1016/S1872-2067(26)65019-X
• Articles • Previous Articles Next Articles
Puyu Dua,1, Yi Shenb,1, Tao Pengb, Zisheng Yub, Tingting Dub, Meng Maa, Hongyu Heb, Zhilin Jiab, Yang Liua, Shaohua Shenb(
)
Received:2025-09-27
Accepted:2025-11-24
Online:2026-06-18
Published:2026-05-18
Contact:
*E-mail: shshen_xjtu@mail.xjtu.edu.cn (S. Shen).About author:1Contributed equally to this work.
‡P. Du and ‡Y. Shen carried out the sample preparation, characterizations and theoretical calculations. T. Peng and Z. Yu detected the HMFOR liquid products and H2 product. M. Ma conducted the electrochemical measurements. T. Du, H. He, and Z. Jia helped with the in-situ Raman spectra measurements. Y. Liu helped the assembly of membrane electrode assembly (MEA) electrolyzer. P. Du and Y. Shen conceived the idea and supervised the project. Y. Shen and S. Shen wrote the paper. All authors have given approval to the final version of the manuscript. ‡These authors contributed equally.
Supported by:Puyu Du, Yi Shen, Tao Peng, Zisheng Yu, Tingting Du, Meng Ma, Hongyu He, Zhilin Jia, Yang Liu, Shaohua Shen. Steering adsorption behavior of 5-hydroxymethylfurfural at CuAu alloys for one-electron dehydrogenation electrocatalysis pairing anodic 5-hydroxymethyl-2-furancarboxylic acid and bipolar hydrogen production[J]. Chinese Journal of Catalysis, 2026, 85: 226-236.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65019-X
Fig. 1. (a) Schemed process for the synthesis of CuxAu1-x (x = 0, 0.25, 0.5, 0.75, 1). SEM image (b), EDX images (c), and HRTEM image (d) of Cu0.25Au0.75. (e) XRD patterns of Au, Cu0.25Au0.75, Cu0.5Au0.5, Cu0.75Au0.25 and Cu. (f) Cu 2p XPS spectra of Cu and Cu0.25Au0.75. (g) Au 4f XPS spectra of Au and Cu0.25Au0.75.
Fig. 2. (a) LSV curves of Au, Cu0.25Au0.75 and Cu in 1 mol L-1 KOH solution with 50 mmol L-1 HMF. (b) LSV curves of Cu0.25Au0.75 in 1 mol L-1 KOH solution with and without 50 mmol L-1 HMF. (c) HMF conversion, HMFCA yield and FE for HMFOR over Au, Cu0.25Au0.75 and Cu at 0.4 V vs. RHE. Concentrations of HMF, oxidation products (d) and volume of H2 produced (e) during HMFOR over Cu0.25Au0.75 at 0.4 V vs. RHE. (f) HMFOR performance of Cu0.25Au0.75 for ten cycles at 0.4 V vs. RHE. Nyquist plots (g), Tafel slopes (h), and TOF values (i) in 1 mol L-1 KOH solution with 50 mmol L-1 HMF.
Fig. 3. (a) Time dependent open-circuit potentials of Au, Cu0.25Au0.75 and Cu in 1 mol L-1 KOH solution before and after HMF injection. In-situ Raman spectra collected at 200-650 cm-1 of Au (b), Cu0.25Au0.75 (c), and Cu (d) in 1 mol L-1 KOH solution containing 50 mmol L-1 HMF. (e) I-t curves for HMFOR over Cu0.25Au0.75 and Au at 0.4 V vs. RHE, with surface adsorbed HMF cleaned by DI water. (f) In-situ Raman spectra collected at 800-2150 cm-1 for Cu0.25Au0.75 in 1 mol L-1 KOH solution containing 50 mmol L-1 HMF. (g) In-situ DEMS signals of m/z?=?2, 3 and 4 detected over Cu0.25Au0.75 during HMFOR.
Fig. 4. (a) PDOS of Cu for Cu0.25Au0.75 and Cu. (b) PDOS of Au for Cu0.25Au0.75 and Au. (c) Calculated adsorption energy of HMF at Au, Cu0.25Au0.75 and Cu. (d) Gibbs free energy diagrams of HMFOR over Au, Cu0.25Au0.75, and Cu. (e) Desorption energy (ΔGdes) of HMFCA on Au, Cu0.25Au0.75 and Cu. (f) Schemed HMF adsorption and HMFCA desorption behaviors at Au, Cu0.25Au0.75 and Cu.
Fig. 5. (a) Schematic illustration of HMFOR and HER in MEA electrolyzer. (b) LSV curves of Cu0.25Au0.75 in 1 mol L-1 KOH electrolyte with and without 50 mmol L-1 HMF in MEA electrolyzer. (c) Anode products and FE over Cu0.25Au0.75 in MEA electrolyzer. (d) Experimentally collected and theoretically calculated amounts of H2 at different accumulated charges. (e) HMFOR performance of Cu0.25Au0.75 for five cycles at 0.45 V.
|
| [1] | Wei Zhong, Yiyao Gan, Jingtao Wang, Peiyi Yang, Aiyun Meng, Yaorong Su. Achieving near-equilibrium Had adsorption/desorption by introducing asymmetric S-Re-Se modules in a-ReSxSe2-x cocatalysts for enhanced photocatalytic H2 evolution [J]. Chinese Journal of Catalysis, 2026, 85(6): 322-332. |
| [2] | Runlin Ma, Xiandi Ma, Hejing Wang, Xu Zhang, Yongzheng Fang, Menggai Jiao, Zhen Zhou. Bifunctional electrocatalysis of hydrazine oxidation and hydrogen evolution reactions on 2D CoX (X = P, S, As, Se): Insights from DFT calculations [J]. Chinese Journal of Catalysis, 2026, 82(3): 115-124. |
| [3] | Xuan Zhang, Lin Zhou, Teng Yan, Xiaohu Zhang, Hao Chen. Fabrication of S-scheme heterojunction between covalent organic frameworks and Ni-ZIF-8 and its photocatalytic hydrogen production performance [J]. Chinese Journal of Catalysis, 2026, 80(1): 200-212. |
| [4] | Shenghui Zhou, Zheng Wang, Voon Huey Lim, Chi Cheng Chong, Hossein Akhoundzadeh, Chao Wu, Mohammadreza Kosari, Shibo Xi, Markus Kraft, Rong Xu. Subnanometer molybdenum oxide-stabilized platinum nanocatalysts enable efficient hydrogen production from methylcyclohexane [J]. Chinese Journal of Catalysis, 2026, 80(1): 347-357. |
| [5] | Zihao Zhang, Jiaming Zhang, Haifeng Wang, Meng Liu, Yao Xu, Kaiwei Liu, Boyang Zhang, Ke Shi, Jifang Zhang, Guijun Ma. Facet-oriented surface modification for enhancing photocatalytic hydrogen production on Sm2Ti2O5S2 nanosheets [J]. Chinese Journal of Catalysis, 2025, 74(7): 341-351. |
| [6] | Xuelu He, Wenyan Ma, Siteng Zhu, Dan Li, Jia-Xing Jiang. The effect of electronic structure matching between building blocks in conjugated porous polymers on photocatalytic hydrogen evolution activity [J]. Chinese Journal of Catalysis, 2025, 73(6): 279-288. |
| [7] | Yihan Zheng, Yuxin Wang, Ruitao Li, Haoran Yang, Yuanyuan Dai, Qiang Niu, Tiejun Lin, Kun Gong, Liangshu Zhong. CO2-free hydrogen production from solar-driven photothermal catalytic decomposition of methane [J]. Chinese Journal of Catalysis, 2025, 73(6): 289-299. |
| [8] | Jindou Hu, Miaomiao Zhu, Zahid Ali Ghazi, Yali Cao. Restoration mechanism of photocatalytic H2O2/H2 production stability of ZnO/ZnS S-scheme heterojunction [J]. Chinese Journal of Catalysis, 2025, 71(4): 319-329. |
| [9] | Yunzhu Zang, Jiali Ren, Shanna An, Jian Tian. Facile synthesis of medium-entropy metal sulfides as high-efficiency cocatalysts toward photocatalytic hydrogen production [J]. Chinese Journal of Catalysis, 2025, 78(11): 242-251. |
| [10] | Cheng Yang, Xin Li, Mei Li, Guijie Liang, Zhiliang Jin. Anchoring oxidation co-catalyst over CuMn2O4/graphdiyne S-scheme heterojunction to promote eosin-sensitized photocatalytic hydrogen evolution [J]. Chinese Journal of Catalysis, 2024, 56(1): 88-103. |
| [11] | Xin Kang, Qiangmin Yu, Tianhao Zhang, Shuqi Hu, Heming Liu, Zhiyuan Zhang, Bilu Liu. A perspective on interface engineering of transition metal dichalcogenides for high-current-density hydrogen evolution [J]. Chinese Journal of Catalysis, 2024, 56(1): 9-24. |
| [12] | Sikai Wang, Xiang-Ting Min, Botao Qiao, Ning Yan, Tao Zhang. Single-atom catalysts: In search of the holy grails in catalysis [J]. Chinese Journal of Catalysis, 2023, 52(9): 1-13. |
| [13] | Bowen Liu, Jiajie Cai, Jianjun Zhang, Haiyan Tan, Bei Cheng, Jingsan Xu. Simultaneous benzyl alcohol oxidation and H2 generation over MOF/CdS S-scheme photocatalysts and mechanism study [J]. Chinese Journal of Catalysis, 2023, 51(8): 204-215. |
| [14] | Wei Qiao, Lice Yu, Jinfa Chang, Fulin Yang, Ligang Feng. Efficient bi-functional catalysis of coupled MoSe2 nanosheet/Pt nanoparticles for methanol-assisted water splitting [J]. Chinese Journal of Catalysis, 2023, 51(8): 113-123. |
| [15] | Bo Zhou, Jianqiao Shi, Yimin Jiang, Lei Xiao, Yuxuan Lu, Fan Dong, Chen Chen, Tehua Wang, Shuangyin Wang, Yuqin Zou. Enhanced dehydrogenation kinetics for ascorbic acid electrooxidation with ultra-low cell voltage and large current density [J]. Chinese Journal of Catalysis, 2023, 50(7): 372-380. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||