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Copper-Incorporated heterostructures of amorphous NiSex/Crystalline NiSe2 as an efficient electrocatalyst for overall water splitting
被引:73
|作者:
Park, Kyoung Ryeol
[1
]
Tran, Duy Thanh
[1
]
Nguyen, Thanh Tuan
[1
]
Kim, Nam Hoon
[1
]
Lee, Joong Hee
[1
,2
]
机构:
[1] Jeonbuk Natl Univ, Dept Nano Convergence Engn, Jeonju 54896, Jeonbuk, South Korea
[2] Jeonbuk Natl Univ, Dept Polymer Nano Sci & Technol, Carbon Composite Res Ctr, Jeonju 54896, Jeonbuk, South Korea
基金:
新加坡国家研究基金会;
关键词:
Amorphous-crystalline heterostructures;
Copper-nickel selenides;
Core@shell nanostructures;
Water splitting;
HYDROGEN EVOLUTION REACTION;
ENHANCED CATALYTIC-ACTIVITY;
BIFUNCTIONAL ELECTROCATALYST;
MOS2;
NANOSHEETS;
DOPED CARBON;
NICKEL FOAM;
METAL-OXIDE;
FILMS;
ARRAY;
IRON;
D O I:
10.1016/j.cej.2021.130048
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
In this research, we designed a novel heterostructure of porous amorphous-crystalline nickel selenide incorporated with copper (Cu-(a-NiSex/c-NiSe2)) and shelled over one-dimensional TiO2 nanorods (NRs) to simultaneously accelerate both the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) kinetics in alkaline environment. The Cu-(a-NiSex/c-NiSe2)/TiO2 NRs supported by carbon cloth displayed as an effective bifunctional catalyst, which required low overpotentials of 156.9 mV for HER and 339 mV for OER to achieve a current response of 10 mA cm-2 in 1.0 M KOH medium. An electrolyzer derived from the Cu-(a-NiSex/c-NiSe2)/ TiO2 NRs material allowed an operation voltage of 1.62 V at 10 mA cm-2 along with good long-term stability after 21.5 h operation towards water splitting in alkaline medium. This achievement was resulted from the finetuned 3D porous architecture of the amorphous NiSex-crystalline NiSe2 heterostructures doped by copper, which led to significant modulation of electronic properties as well as large surface of exposed electroactive site/types, thereby effectively promoting the catalytic performance. This study suggested a rational approach of structure and shape engineering to design a potential catalyst for producing green hydrogen via water spitting.
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