Anisotropy of Single‐Crystal Semiconductors in Photo(electro)Catalysis

P Peng Cheng Ding (Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering East China University of Science and Technology 130 Meilong Road Shanghai 200237 China) Y Yang Zhang W Wen Jing Li (Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering East China University of Science and Technology 130 Meilong Road Shanghai 200237 China) Z Zheng Ming Li (Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering East China University of Science and Technology 130 Meilong Road Shanghai 200237 China) X Xue Lu Wang (Physics Department & Shanghai Key Laboratory of Magnetic Resonance, School of Physics, Institute of Magnetic Resonance and Molecular Imaging in Medicine, East China Normal University, North Zhongshan Road 3663, Shanghai 200241, China) P Peng Fei Liu (Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China) H Hua Gui Yang (Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China)

Abstract

Abstract Anisotropy in single‐crystal semiconductors has emerged as a key design principle for understanding and advancing photo(electro)catalytic systems. The exposure of well‐defined facets in single‐crystal semiconductors introduces anisotropic variations in atomic coordination, electronic structure, and surface energetics, giving rise to directional charge transport and facet‐specific reactivity. Such intrinsic differences coordinate the entire photocatalytic process, from charge excitation and separation to interfacial reaction kinetics. In this regard, effective utilization of anisotropy requires clarifying its impact on electronic structure, charge transport, and interfacial reactivity, along with its sensitivity to microenvironmental changes under realistic operando conditions. In this review article, we systematically examine the role of crystallographic anisotropy in light harvesting, charge carrier dynamics, and surface reactivity. We summarize recent advances in anisotropic material design, trace the evolution of the concept, and provide mechanistic insights based on experimental studies, theoretical models, and advanced characterization techniques. We further discuss current challenges and propose strategies to guide the rational application of anisotropy in catalyst design, aiming to expand its scope across a broader range of photo(electro)catalytic systems.

Article Details

Volume / Issue Vol. 64, Issue 34
Published August 18, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

P

Peng Cheng Ding

Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering East China University of Science and Technology 130 Meilong Road Shanghai 200237 China

Y

Yang Zhang

W

Wen Jing Li

Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering East China University of Science and Technology 130 Meilong Road Shanghai 200237 China

Z

Zheng Ming Li

Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering East China University of Science and Technology 130 Meilong Road Shanghai 200237 China

X

Xue Lu Wang

Physics Department & Shanghai Key Laboratory of Magnetic Resonance, School of Physics, Institute of Magnetic Resonance and Molecular Imaging in Medicine, East China Normal University, North Zhongshan Road 3663, Shanghai 200241, China

P

Peng Fei Liu

Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China

H

Hua Gui Yang

Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China