Reversing Interfacial Catalysis of Ambipolar WSe2 Single Crystal

Abstract An improved understanding of the origin of the electrocatalytic activity is of importance to the rational design of highly efficient electrocatalysts for the hydrogen evolution reaction. Here, an ambipolar single‐crystal tungsten diselenide (WSe2) semiconductor is employed as a model system...

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Main Authors: Zegao Wang, Hong‐Hui Wu, Qiang Li, Flemming Besenbacher, Yanrong Li, Xiao Cheng Zeng, Mingdong Dong
Format: Article
Language:English
Published: Wiley 2020-02-01
Series:Advanced Science
Subjects:
Online Access:https://doi.org/10.1002/advs.201901382
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spelling doaj-34a3fbb765a44a66ab0e59c0921ed1e02020-11-24T23:59:28ZengWileyAdvanced Science2198-38442020-02-0173n/an/a10.1002/advs.201901382Reversing Interfacial Catalysis of Ambipolar WSe2 Single CrystalZegao Wang0Hong‐Hui Wu1Qiang Li2Flemming Besenbacher3Yanrong Li4Xiao Cheng Zeng5Mingdong Dong6College of Materials Science and Engineering Sichuan University Chengdu 610065 ChinaDepartment of Chemistry University of Nebraska‐Lincoln NE 68588 Lincoln USAInterdisciplinary Nanoscience Center (iNANO) Aarhus University DK‐8000 Aarhus C DenmarkInterdisciplinary Nanoscience Center (iNANO) Aarhus University DK‐8000 Aarhus C DenmarkState Key Laboratory of Electronic Thin Films and Integrated Devices University of Electronic Science and Technology of China Chengdu 610054 ChinaDepartment of Chemistry University of Nebraska‐Lincoln NE 68588 Lincoln USAInterdisciplinary Nanoscience Center (iNANO) Aarhus University DK‐8000 Aarhus C DenmarkAbstract An improved understanding of the origin of the electrocatalytic activity is of importance to the rational design of highly efficient electrocatalysts for the hydrogen evolution reaction. Here, an ambipolar single‐crystal tungsten diselenide (WSe2) semiconductor is employed as a model system where the conductance and carrier of WSe2 can be individually tuned by external electric fields. The field‐tuned electrochemical microcell is fabricated based on the single‐crystal WSe2 and the catalytic activity of the WSe2 microcell is measured versus the external electric field. Results show that WSe2 with electrons serving as the dominant carrier yields much higher activity than WSe2 with holes serving as the dominant carrier even both systems exhibit similar conductance. The catalytic activity enhancement can be characterized by the Tafel slope decrease from 138 to 104 mV per decade, while the electron area concentration increases from 0.64 × 1012 to 1.72 × 1012 cm−2. To further understand the underlying mechanism, the Gibbs free energy and charge distribution for adsorbed hydrogen on WSe2 versus the area charge concentration is systematically computed, which is in line with experiments. This comprehensive study not only sheds light on the mechanism underlying the electrocatalysis processes, but also offers a strategy to achieve higher electrocatalytic activity.https://doi.org/10.1002/advs.201901382ambipolar carrierdensity function theoryelectrochemical microcellshydrogen evolutionmodel catalysis
collection DOAJ
language English
format Article
sources DOAJ
author Zegao Wang
Hong‐Hui Wu
Qiang Li
Flemming Besenbacher
Yanrong Li
Xiao Cheng Zeng
Mingdong Dong
spellingShingle Zegao Wang
Hong‐Hui Wu
Qiang Li
Flemming Besenbacher
Yanrong Li
Xiao Cheng Zeng
Mingdong Dong
Reversing Interfacial Catalysis of Ambipolar WSe2 Single Crystal
Advanced Science
ambipolar carrier
density function theory
electrochemical microcells
hydrogen evolution
model catalysis
author_facet Zegao Wang
Hong‐Hui Wu
Qiang Li
Flemming Besenbacher
Yanrong Li
Xiao Cheng Zeng
Mingdong Dong
author_sort Zegao Wang
title Reversing Interfacial Catalysis of Ambipolar WSe2 Single Crystal
title_short Reversing Interfacial Catalysis of Ambipolar WSe2 Single Crystal
title_full Reversing Interfacial Catalysis of Ambipolar WSe2 Single Crystal
title_fullStr Reversing Interfacial Catalysis of Ambipolar WSe2 Single Crystal
title_full_unstemmed Reversing Interfacial Catalysis of Ambipolar WSe2 Single Crystal
title_sort reversing interfacial catalysis of ambipolar wse2 single crystal
publisher Wiley
series Advanced Science
issn 2198-3844
publishDate 2020-02-01
description Abstract An improved understanding of the origin of the electrocatalytic activity is of importance to the rational design of highly efficient electrocatalysts for the hydrogen evolution reaction. Here, an ambipolar single‐crystal tungsten diselenide (WSe2) semiconductor is employed as a model system where the conductance and carrier of WSe2 can be individually tuned by external electric fields. The field‐tuned electrochemical microcell is fabricated based on the single‐crystal WSe2 and the catalytic activity of the WSe2 microcell is measured versus the external electric field. Results show that WSe2 with electrons serving as the dominant carrier yields much higher activity than WSe2 with holes serving as the dominant carrier even both systems exhibit similar conductance. The catalytic activity enhancement can be characterized by the Tafel slope decrease from 138 to 104 mV per decade, while the electron area concentration increases from 0.64 × 1012 to 1.72 × 1012 cm−2. To further understand the underlying mechanism, the Gibbs free energy and charge distribution for adsorbed hydrogen on WSe2 versus the area charge concentration is systematically computed, which is in line with experiments. This comprehensive study not only sheds light on the mechanism underlying the electrocatalysis processes, but also offers a strategy to achieve higher electrocatalytic activity.
topic ambipolar carrier
density function theory
electrochemical microcells
hydrogen evolution
model catalysis
url https://doi.org/10.1002/advs.201901382
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AT flemmingbesenbacher reversinginterfacialcatalysisofambipolarwse2singlecrystal
AT yanrongli reversinginterfacialcatalysisofambipolarwse2singlecrystal
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