双功能
电解
兴奋剂
硫黄
材料科学
电解水
分解水
化学工程
纳米技术
无机化学
化学
光电子学
冶金
电极
催化作用
物理化学
工程类
电解质
光催化
生物化学
作者
Athibala Mariappan,Ranjith Kumar Dharman,Tae Hwan Oh
标识
DOI:10.1021/acsanm.5c02610
摘要
Fabricating highly dynamic, robust, and non-precious bifunctional electrocatalysts will be more advantageous for hydrogen energy. Defect engineering is a promising strategy in electrocatalysis, which produces surface vacancies in the crystal structure and boosts the electrochemical performance. In this study, we constructed a defect-rich Mn-induced SnS2 (MnSnS2) electrocatalyst via a simple hydrothermal process. The as-synthesized Mn@SnS2-2 catalyst attains an excellent electrochemical performance with lower overpotentials of 260 and 108 mV toward the OER and HER in alkaline medium. Furthermore, it requires a lower cell voltage of 1.47 V at 10 mA cm–2 toward a two-cell electrolyzer, which is superior to most of the earlier reported bifunctional metal sulfides. In addition, the Mn@SnS2-2 catalyst demonstrates an outstanding stability activity for 50 h at 10 mA cm–2 for half- and full-cell water electrolysis. The sulfur vacancies formed in the SnS2 crystal structure can successfully assist in the modification of the electronic structure. In addition, the plentiful sulfur vacancies contribute numerous accessible active sites and better electrical conductivity that synergistically promote the intrinsic activity of the electrocatalyst. Thus, designing defect-enriched transition metal sulfide-based electrocatalysts via a facile approach will undeniably suggest a reasonable ideology in producing clean hydrogen energy.
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