层状双氢氧化物
催化作用
材料科学
电解水
制氢
镍
过渡金属
铂金
电解
可再生能源
钯
氢
分解水
化学工程
纳米技术
无机化学
冶金
化学
电极
光催化
有机化学
物理化学
工程类
电气工程
电解质
作者
Dang Khoa Tran,Nguyễn Thanh Hải,Duy Thanh Tran,Van An Dinh,Nam Hoon Kim,Joong Hee Lee
出处
期刊:ACS Nano
[American Chemical Society]
日期:2024-06-12
卷期号:18 (25): 16222-16235
被引量:50
标识
DOI:10.1021/acsnano.4c02240
摘要
High-performance production of green hydrogen gas is necessary to develop renewable energy generation technology and to safeguard the living environment. This study reports a controllable engineering approach to tailor the structure of nickel-layered double hydroxides via doped and absorbed platinum single atoms (PtSA) promoted by low electronegative transition metal (Mn, Fe) moieties (PtSA-Mn,Fe-Ni LDHs). We explore that the electron donation from neighboring transition metal moieties results in the well-adjusted d-band center with the low valence states of PtSA(doped) and PtSA(ads.), thus optimizing adsorption energy to effectively accelerate the H2 release. Meanwhile, a tailored local chemical environment on transition metal centers with unique charge redistribution and high valence states functions as the main center for H2O catalytic dissociation into oxygen. Therefore, the PtSA-Mn,Fe-Ni LDH material possesses a small overpotential of 42 and 288 mV to reach 10 mA·cm-2 for hydrogen and oxygen evolution, respectively, superior to most reported LDH-based catalysts. Additionally, the mass activity of PtSA-Mn,Fe-Ni LDHs proves to be 15.45 times higher than that of commercial Pt-C. The anion exchange membrane electrolyzer stack of PtSA-Mn,Fe-Ni LDHs(+,-) delivers a cell voltage of 1.79 V at 0.5 A·cm-2 and excellent durability over 600 h. This study presents a promising electrocatalyst for a practical water splitting process.
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