posted on 2022-12-19, 18:52authored byYawei Cao, Lihong Li, Xiaoxia Yu, Muhammad Tahir, Zhongyuan Xiang, Wei Kong, Zehua Lu, Xianran Xing, Yanlin Song
Hydrogen evolution reaction (HER) and oxygen evolution
reaction
(OER) through water decomposition are feasible methods to produce
green and clean energy. Herein, we report a facile two-step strategy
for the preparation of non-noble metal defect-rich nanosheets by an
electrochemical process at room temperature. First-principle calculations
are used to study the bifunctional catalytic reaction mechanism of
defect engineering in transition-metal dichalcogenides (TMDs); from
the first-principle calculations, we predicted that the rich S vacancies
on the nanosheet promoted electron transfer and reduced the energy
barrier of electrocatalysis. As a substantiation, we conducted HER/OER
electrochemical characterizations and found that the defect-rich atomic-thick
tantalum sulfide is a kind of dual-function electrocatalyst with enhanced
comprehensive properties of Tafel slope (39 mV/dec for HER, 38 mV/dec
for OER) and low overpotential (0.099 V for HER, 0.153 V for OER)
in acidic and alkaline environments, respectively. Likewise, the defect-rich
catalysts exhibit high stability in acidic and alkaline solutions,
which have potential applications as electrocatalysts for the large-scale
production of hydrogen and oxygen.