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Structure Engineering of MoS 2 via Simultaneous Oxygen and Phosphorus Incorporation for Improved Hydrogen Evolution
Author(s) -
Liu Jinlong,
Wang Zhenyu,
Li Jun,
Cao Lujie,
Lu Zhouguang,
Zhu Dongdong
Publication year - 2020
Publication title -
small
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.785
H-Index - 236
eISSN - 1613-6829
pISSN - 1613-6810
DOI - 10.1002/smll.201905738
Subject(s) - tafel equation , electrocatalyst , overpotential , oxygen evolution , materials science , phosphorus , chemical engineering , conductivity , oxygen , inorganic chemistry , doping , nanotechnology , chemistry , electrode , electrochemistry , optoelectronics , organic chemistry , metallurgy , engineering
Oxygen and phosphorus dual‐doped MoS 2 nanosheets (O,P‐MoS 2 ) with porous structure and continuous conductive network are fabricated using a one‐pot NaH 2 PO 2 ‐assisted hydrothermal approach. By simply changing the precursor solution, the chemical composition and resulting structure can be effectively controlled to obtain desired properties toward the hydrogen evolution reaction (HER). Thanks to the beneficial structure and strong synergistic effects between the incorporated oxygen and phosphorus, the optimal O,P‐MoS 2 exhibit superior electrocatalytic performances compared with those of oxygen single‐doped MoS 2 nanosheets (O‐MoS 2 ). Specifically, a low HER onset overpotential of 150 mV with a small Tafel slope of 53 mV dec −1 , excellent conductivity, and long‐term durability are achieved by the structural engineering of MoS 2 via O and P co‐doping, making it an efficient HER electrocatalyst for water electrocatalysis. This work provides an alternative strategy to manipulate transition metal dichalcogenides as advanced materials for electrocatalytic and related energy applications.