Mo-doped Ni3S2 nanosheet arrays for boosting hydrogen evolution activity and supercapacitor energy storage

Author:

Song Xiumei1ORCID,He Ranran2ORCID,Guo Dongxuan3ORCID,Chu Dawei4ORCID,Li Hongpeng5ORCID,Tan Lichao12ORCID

Affiliation:

1. Institute of Carbon Neutrality, Zhejiang Wanli University 1 , Ningbo 315100, People's Republic of China

2. School of Materials Science and Chemical Engineering, Harbin University of Science and Technology 2 , Harbin 150000, People's Republic of China

3. Key Laboratory of Fine Chemicals of College of Heilongjiang Province, Qiqihar University 3 , Qiqihar 161006, People's Republic of China

4. College of Energy Engineering, Huanghuai University 4 , Zhumadian 463000, People's Republic of China

5. College of Mechanical Engineering, Yangzhou University 5 , Yangzhou 225127, People's Republic of China

Abstract

The design and preparation of bifunctional electrode materials play a vital role in the field of energy storage and conversion. Herein, Mo-doped Ni3S2 nanosheet arrays assembled on nickel foam (named as Mo-Ni3S2) are designed through three-step continuous hydrothermal methods for enhanced hydrogen evolution reaction (HER) and supercapacitor storage characteristics. The ultrathin Mo-Ni3S2 nanosheets structure could modulate electronic structure and offer rich actives sites, thereby expediting the mobility of charge carriers and engendering a greater density of active sites. Consequently, the Mo-Ni3S2 exhibits low overpotential both in alkaline and acidic solution with the value of 53 and 65 mV at the current density of 10 mA cm−2, respectively. Meanwhile, the HER activity can be well maintained after 17 h of continuous operation at 10 mA cm−2, demonstrating its excellent stability. Furthermore, the as-prepared Mo-Ni3S2 as pseudocapacitive materials exhibits a specific capacitance of 3528 F g−1 at 1 A g−1, implying outstanding long durability with 96.5% capacity retention after 3000 charge–discharge cycles. Overall, this work provides a viable strategy for the development of transition metal-based materials as efficient bifunctional catalysts.

Funder

National Natural Science Foundation of China

outstanding youth project of natural science foundation in heilongjiang province

Natural Science Foundation of Shandong Province

Natural Science Foundation of Jiangsu Province

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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