Exciton Manipulation for Enhancing Photoelectrochemical Hydrogen Evolution Reaction in Wrinkled 2D Heterostructures

Author:

Ghosh Rapti1234ORCID,Papnai Bhartendu567,Chen Yu‐Siang128,Yadav Kanchan6,Sankar Raman7,Hsieh Ya‐Ping12,Hofmann Mario4ORCID,Chen Yang‐Fang49

Affiliation:

1. Molecular Science and Technology Program Taiwan International Graduate Program Academia Sinica Taipei 106 Taiwan

2. Institute of Atomic and Molecular Sciences Academia Sinica Taipei 115 Taiwan

3. Department of Physics National Central University Chung‐Li 320 Taiwan

4. Department of Physics National Taiwan University Taipei 106 Taiwan

5. Department of Engineering and System Science National Tsing Hua University Hsinchu City 300044 Taiwan

6. Nano Science and Technology Program Taiwan International Graduate Program Academia Sinica Taipei 106 Taiwan

7. Institute of Physics Academia Sinica Taipei 106 Taiwan

8. Institute of Opto‐Mechatronics National Chung Cheng University Chia‐Yi 62102 Taiwan

9. Advanced Research Centre for Green Materials Science and Technology National Taiwan, University Taipei 106 Taiwan

Abstract

Abstract2D materials’ junctions have demonstrated capabilities as metal‐free alternatives for the hydrogen evolution reaction (HER). To date, the HER has been limited to heterojunctions of different compositions or band structures. Here, the potential of local strain modulation based on wrinkled 2D heterostructures is demonstrated, which helps to realize photoelectrocatalytically active junctions. By forming regions of high and low tensile strain in wrinkled WS2 monolayers, local modification of their band structure and internal electric field due to piezoelectricity is realized in the lateral direction. This structure produces efficient electron–hole pair generation due to light trapping and exciton funneling toward the crest of the WS2 wrinkles and enhances exciton separation. Additionally, the formation of wrinkles induces an air gap in‐between the 2D layer and substrate, which reduces the interfacial scattering effect and consequently improves the charge‐carrier mobility. A detailed study of the strain‐dependence of the photocatalytic HER process demonstrates a 2‐fold decrease in the Tafel slope and a 30‐fold enhancement in exchange current density. Finally, optimization of the light absorption through functionalization with quantum dots produces unprecedented photoelectrocatalytic performance and provides a route toward the scalable formation of strain‐modulated WS2 nanojunctions for future green energy generation.

Funder

National Taiwan University

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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