Pd Sulfidation‐Induced 1T‐Phase Tuning in Monolayer MoS2 for Hydrogen Evolution Reaction

Author:

Mai Hien Duy1,Jeong Sangmin1,Bae Gi‐Nam1,Tran Ngoc Minh1,Youn Jong‐Sang2,Park Cheol‐Min34ORCID,Jeon Ki‐Joon15ORCID

Affiliation:

1. Department of Environmental Engineering Inha University 100 Inha‐ro Nam‐gu Incheon 22212 Republic of Korea

2. Department of Energy and Environmental Engineering The Catholic University of Korea 14662 Bucheon Republic of Korea

3. Department of Energy Engineering Convergence Kumoh National Institute of Technology Gumi Gyeongbuk 39177 Republic of Korea

4. School of Materials Science and Engineering Kumoh National Institute of Technology Gumi Gyeongbuk 39177 Republic of Korea

5. Program in Environmental and Polymer Engineering Inha University 22212 Incheon Republic of Korea

Abstract

AbstractFor single‐atom‐layer hydrogen evolution reaction catalysts, enrichment of the 1T‐phase in monolayer molybdenum disulfide is important to achieve ideal metal utilization efficiency and exposure of active surface atoms. Herein, it is discovered that the 1T‐phase degree in monolayer MoS2 can be enhanced through sulfidation of the Pd species deposited on MoS2 (PdxSy/1T‐MoS2). Raman and X‐ray photoelectron spectroscopy reveal that the sulfidation‐assisted phase transition results in considerably greater proportions of 1T‐phase fraction (up to 86%) without using alkali‐metal‐based approaches. Observations of S‐atom displacement/translation at the atomic level contribute to the understanding of the phase transformation of MoS2. The maximized surface atom activation and metal utilization efficiency in PdxSy/1T‐MoS2 lead to unprecedentedly high mass activity (−3444 A mgPd−1) and turnover frequency (1892 s−1), three orders of magnitude higher than those of commercial Pt/C 10 wt% (3.6 A mgPt−1 and 3.6 s−1). The sulfidation‐assisted 1T‐phase enrichment has major implications for the designs of efficient electrocatalysts through MoS2 phase engineering.

Funder

National Research Foundation of Korea

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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