Au-nanoparticles-decorated CeO2 electrocatalyst synthesized by direct growth and wet impregnation for enhanced oxygen evolution reaction

被引:9
作者
Park, Soojin [1 ]
Nguyen, Que T. [1 ]
Choi, Jeongsik [1 ]
Park, Jong Hyun [2 ]
Park, Jae Ryang [2 ]
Nakate, Umesh T. [3 ]
Park, Sungjune [1 ,3 ]
机构
[1] Jeonbuk Natl Univ, Dept Nano Convergence Engn, 567 Baekje Daero, Jeonju Si, Jeollabuk Do, South Korea
[2] Inst Adv Engn IAE, Mat Sci & Chem Engn Ctr, Goan Ro 51 Beon Gil, Yongin 17180, Gyeonggi Do, South Korea
[3] Jeonbuk Natl Univ, Dept Polymer Nano Sci & Technol, 567 Baekje Daero, Jeonju Si, Jeollabuk Do, South Korea
关键词
CeO2; Surface modification; Au nanoparticles; Electrocatalyst; OER; Low overpotential; HYDROGEN EVOLUTION; BIFUNCTIONAL ELECTROCATALYST; RATIONAL DESIGN; NI FOAM; EFFICIENT; CATALYSTS; ELECTRODEPOSITION; FABRICATION; NANORODS; FILM;
D O I
10.1016/j.surfin.2023.103206
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Water splitting is a promising method for producing pure hydrogen and oxygen electrochemically. However, the sluggish kinetics of the oxygen evolution reaction (OER) at the anode of a water splitting system reduces the efficiency of the reaction. To address this issue, various electrocatalysts have been developed for use in the OER. Among them, transition-metal-based materials (TMBMs) have emerged as promising candidates owing to their abundance, low cost, high redox states, and synergistic effects. The catalytic performance of TMBMs can be further enhanced by incorporating small amounts of noble metals. Based on this underlying principle, we developed trace amounts of gold nanoparticles (AuNPs)-decorated cerium oxide (CeO2) nanostructured electrocatalyst for a highly efficient OER. Previously, these composite materials have been utilized for this purpose; however, our approach is simple and facile: we incorporate noble metal elements on nanostructured catalysts synthesized by hydrothermal synthesis or electrodeposition. Metal salt aqueous solution-based alkali-free two different routes (hydrothermal synthesis or electrodeposition) were used for the direct growth of nanostructured CeO2 on nickel foam, followed by surface modification via the incorporation of gold using a simple wet impregnation method. The hydrothermally synthesized CeO2 electrode showed higher OER performance than the electrodeposited CeO2 electrodes. In both CeO2 nanostructures, AuNPs-decorated on the surfaces exhibited improved OER performance. Among the electrodes synthesized in this work, the hydrothermally synthesized AuNPs-decorated CeO2 nanostructures (termed HCA herein) exhibited a low overpotential 0.31 V at a current density of 10 mA cm-2, a low Tafel slope (30.25 mV dec � 1), and a performance retention of 97% after 50 h, indicating excellent and stable OER performance. Hence, this approach for the synthesis of nanostructured composites can be used to produce other effective electrocatalysts for OER applications.
引用
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页数:8
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共 60 条
[11]   A Copper Porphyrin-Based Conjugated Mesoporous Polymer-Derived Bifunctional Electrocatalyst for Hydrogen and Oxygen Evolution [J].
Cui, Shengsheng ;
Qian, Manman ;
Liu, Xiang ;
Sun, Zijun ;
Du, Pingwu .
CHEMSUSCHEM, 2016, 9 (17) :2365-2373
[12]   Ruthenium-nickel sandwiched nanoplates for efficient water splitting electrocatalysis [J].
Ding, Jiabao ;
Shao, Qi ;
Feng, Yonggang ;
Huang, Xiaoqing .
NANO ENERGY, 2018, 47 :1-7
[13]   Insight into the electrochemical activation of carbon-based cathodes for hydrogen evolution reaction [J].
Dong, Guofa ;
Fang, Ming ;
Wang, Hongtao ;
Yip, Senpo ;
Cheung, Ho-Yuen ;
Wang, Fengyun ;
Wong, Chun-Yuen ;
Chu, Sai Tak ;
Ho, Johnny C. .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (24) :13080-13086
[14]   The particle size-dependent optical band gap and magnetic properties of Fe-doped CeO2 nanoparticles [J].
El-Hagary, M. ;
Shaaban, E. R. ;
Moustafa, S. H. ;
Gad, G. M. A. .
SOLID STATE SCIENCES, 2019, 91 :15-22
[15]   Development of RuO2/CeO2 heterostructure as an efficient OER electrocatalyst for alkaline water splitting [J].
Galani, Sunil M. ;
Mondal, Aniruddha ;
Srivastava, Divesh N. ;
Panda, Asit Baran .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (37) :18635-18644
[16]   Comprehensive Understanding of the Spatial Configurations of CeO2 in NiO for the Electrocatalytic Oxygen Evolution Reaction: Embedded or Surface-Loaded [J].
Gao, Wei ;
Xia, Zhaoming ;
Cao, Fangxian ;
Ho, Johnny C. ;
Jiang, Zheng ;
Qu, Yongquan .
ADVANCED FUNCTIONAL MATERIALS, 2018, 28 (11)
[17]   Study of CeO2 XPS spectra by factor analysis:: reduction of CeO2 [J].
Holgado, JP ;
Alvarez, R ;
Munuera, G .
APPLIED SURFACE SCIENCE, 2000, 161 (3-4) :301-315
[18]   Toward the rational design of non-precious transition metal oxides for oxygen electrocatalysis [J].
Hong, Wesley T. ;
Risch, Marcel ;
Stoerzinger, Kelsey A. ;
Grimaud, Alexis ;
Suntivich, Jin ;
Shao-Horn, Yang .
ENERGY & ENVIRONMENTAL SCIENCE, 2015, 8 (05) :1404-1427
[19]   Facile one-step synthesis of cerium oxide-carbon quantum dots/RGO nanohybrid catalyst and its enhanced photocatalytic activity [J].
Kannan, Ramanujam ;
Kim, Ae Rhan ;
Eo, Seong Kug ;
Kang, Seong Ho ;
Yoo, Dong Jin .
CERAMICS INTERNATIONAL, 2017, 43 (03) :3072-3079
[20]   A Review on Ceo2-Based Electrocatalyst and Photocatalyst in Energy Conversion [J].
Li, Qingqing ;
Song, Lianpeng ;
Liang, Zhong ;
Sun, Mingzi ;
Wu, Tong ;
Huang, Bolong ;
Luo, Feng ;
Du, Yaping ;
Yan, Chun-Hua .
ADVANCED ENERGY AND SUSTAINABILITY RESEARCH, 2021, 2 (02)