Robust Synthesis of Large‐Area PtSe2 Microbelts by Step‐Induced Separation Growth on Au(001) Substrate for The Hydrogen Evolution Reaction

Author:

Meng Si1,Yang Yang12,Dai Xinyue3,Tang Yue1,He Mengfei1,Gu Yiru1,Jiang Ruibin1,Ding Feng4,Xu Hua1ORCID

Affiliation:

1. Key Laboratory of Applied Surface and Colloid Chemistry of Ministry of Education, Shaanxi Key Laboratory for Advanced Energy Devices, School of Materials Science and Engineering Shaanxi Normal University Xi'an 710119 P. R. China

2. Centre for Quantum Physics, Key Laboratory of Advanced Optoelectronic Quantum Architecture and Measurement (MOE), School of Physics Beijing Institute of Technology Beijing 10081 China

3. School of Life Sciences Shanghai University Shanghai 200444 P. R. China

4. Faculty of Materials Science and Engineering/Institute of Technology for Carbon Neutrality, Shenzhen Institute of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 P. R. China

Abstract

AbstractPlatinum selenide (PtSe2), an emerging 2D material, has attracted extensive attention owing to its wide‐tunable bandgap and ultrahigh conductivity for potential applications in optoelectronic and energy devices. However, the preparation of atomically thin PtSe2 remains a big challenge due to its large formation energy. Herein, the robust synthesis of large‐area ultrathin PtSe2 microbelts via a step‐induced separation growth strategy on Au(001) substrate is demonstrated. Thanks to the high controllability of this approach, the continuous modulation of the thickness of PtSe2 microbelts from monolayer to bulk is realized and the sample coverage from ≈5% to ≈100% by coordinately tuning the growth temperature and time. Theory calculations indicate that the significant reduction of formation energy of PtSe2 nucleation at the Au steps, along with the high‐efficiency separation‐supply of Pt precursor, are responsible for the robust synthesis of PtSe2. Owing to the rich‐edges with abundant active sites and metallic conduction features of ultrathin PtSe2 microbelt, it can act as an excellent electrocatalyst, featured with a record high hydrogen evolution reaction efficiency (Tafel slope: 37 mV dec−1). This work provides new insights into the highly efficient synthesis of large‐scale 2D materials for exploring their unique physics and fascinating applications.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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