Surface active sites and interphase engineering into metal oxide hydrates enabled by ions substitution for efficient water splitting

被引:0
作者
Duong, Nguyen Tram Anh [1 ]
Nguyen, Hoang Tuan [1 ]
Tran, Duy Thanh [1 ]
Kim, Nam Hoon [1 ,3 ]
Lee, Joong Hee [1 ,2 ,3 ]
机构
[1] Jeonbuk Natl Univ, Dept Nano Convergence Engn, Jeonju 54896, Jeonbuk, South Korea
[2] Jeonbuk Natl Univ, Carbon Composite Res Ctr, Dept Polymer Nano Sci & Technol, Jeonju 54896, Jeonbuk, South Korea
[3] AHES Co, 445 Techno Valley Ro, Jeonbuk, South Korea
基金
新加坡国家研究基金会;
关键词
Ion substitution engineering; Nickel molybdenum oxide hydrates; Surface active sites; Heterointerfaces; Overall water splitting; CATALYSTS; NANOSHEETS;
D O I
10.1016/j.cej.2024.155287
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The expanding requirement of energy-effective and cost-efficient water electrolysis has prompted studies of earth-abundant metal-based electrocatalysts. In this study, we study the typical substitution strategies of cation (Pt) or anion (Se) for modifying surface active sites or interphase engineering to tune electronic structure of bimetallic nickel molybdenum oxide hydrates (NiMoO4<middle dot>xH(2)O), thus effectively improving catalytic properties toward hydrogen evolution reaction (HER) or oxygen evolution reaction (OER). Result of the cation substitution achieves Pt-SA-NiMoO4<middle dot>xH(2)O catalyst with abundant doped Pt single atoms on surface, which promotes high HER activity with a small overpotential of 73 mV at a current yield of 10 mA cm(-2) in alkaline medium. Meanwhile, Se-NiMoO4<middle dot>xH(2)O catalyst, an outcome of the anion substitution approach, has unique interfaces of NiSe-NiMoO4 heterostructure and thus exhibits a desired overpotential of only 297 mV for OER. The combination of Pt-SA-NiMoO4<middle dot>xH(2)O((-))//Se-NiMoO4<middle dot>xH(2)O((+)) couple results in a two-electrode electrolyzer cell, which requires a small cell voltage of 1.48, 1.54 and 1.59 V to deliver a response of 10 mA<middle dot>cm(-2) at 75, 50 and 25 degrees C, respectively, along with negligible performance decay during 50 h operation. These results highlight the potential of our catalyst engineering strategies to achieve high-performance green hydrogen production.
引用
收藏
页数:10
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