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Triggering the Inert Basal Planes of Curved MoS2 by Rational Strain Engineering of Single-Atom Pt toward Enhanced
Rong Hua1, Qiaoling Li1, Yuxing Ma1
1Key Laboratory of Applied Surface and Colloid Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an 710119, China.
Abstract:
Strain engineering has been considered as a promising strategy for constructing strained two-dimensional (2D) materials to trigger inert basal planes and anchor single-atom active sites but continues to be a challenge. Herein, we present a curved molybdenum disulfide nanosheet with in-plane strain and anchored Pt single atoms (sMoS2-Pt). The strain engineering of curved MoS2 induces the formation of sulfur vacancies, while the introduction of Pt single atoms promotes the phase transformation of sMoS2 from semiconducting 2H to metallic 1T. According to theoretical calculations, the synergistic effect of the Pt single atoms and bending strain achieves a lower hydrogen adsorption energy (-0.04 eV), thereby enhancing the hydrogen evolution reaction (HER) performance. The sMoS2 with activated inert basal planes exhibits a lower overpotential of 72 and 102 mV across both acidic and alkaline electrolytes at 10 mA cm-2. When employed as a cathode in a proton exchange membrane water electrolysis cell (PEMWE), after continuous operation for 85 h at a constant voltage of 1.79 V, approximately 80.8% of the current density was still retained, demonstrating good stability. This work offers a strain engineering strategy for designing MoS2 and other 2D materials-based electrocatalysts and elucidates the HER mechanism of strained MoS2.
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