Universal Enhancement Effect of Nonlinear Optical Response from Band Hybridization

Author:

Lai Junwen12,Zhan Jie12,Liu Peitao12,Shirakawa Tomonori345ORCID,Seiji Yunoki3456,Chen Xing‐Qiu12ORCID,Sun Yan12ORCID

Affiliation:

1. Shenyang National Laboratory for Materials Science Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China

2. School of Materials Science and Engineering University of Science and Technology of China 110023 Shenyang China

3. Computational Materials Science Research Team RIKEN Center for Computational Science (R‐CCS) Hyogo 650‐0047 Japan

4. Computational Condensed Matter Physics Laboratory RIKEN Cluster for Pioneering Research (CPR) Saitama 351‐0198 Japan

5. Quantum Computational Science Research Team RIKEN Center for Quantum Computing (RQC) Saitama 351‐0198 Japan

6. Computational Quantum Matter Research Team RIKEN Center for Emergent Matter Science (CEMS) Saitama 351‐0198 Japan

Abstract

AbstractBulk photovoltaic effect, i.e. shift current, is a nonlinear second‐order optical response that can rectify an alternating current (AC) electric field into a direct current (DC). Depending on the wavelength of the incident light, shift current finds applications in various fields, including solar energy conversion and radiation detection. Its promising application in energy conversion and information processing has inspired investigations to uncover the relationship between shift current and electronic structures of materials. Despite numerous efforts dedicated to designing principles for strong bulk photovoltaic effect materials, the only widely accepted crucial parameter is the joint density of states (JDOS). In this study, employing effective model analysis and first‐principles calculations, an enhancement effect of bulk photovoltaic effect is found to arise from band hybridization that is typically along with anti‐crossing‐like electronic band structures, similar to the Berry curvature effects in intrinsic anomalous Hall conductivity. While this mechanism does not offer a comprehensive understanding of the relationship between electronic structure and the magnitude of bulk photovoltaic effect, it represents practical progress in the design of materials with strong bulk photovoltaic effect.

Funder

Key Technologies Research and Development Program

National Natural Science Foundation of China

Natural Science Foundation of Liaoning Province

Oak Ridge Institute for Science and Education

Publisher

Wiley

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