Van der Waals Heterostructures for Photoelectric, Memory, and Neural Network Applications

Author:

Xu Hang1,Xue Yue12,Liu Zhenqi13,Tang Qing1,Wang Tianyi2,Gao Xichan2,Qi Yaping24ORCID,Chen Yong P.2456,Ma Chunlan1,Jiang Yucheng1

Affiliation:

1. Jiangsu Key Laboratory of Micro and Nano Heat Fluid Flow Technology and Energy Application School of Physical Science and Technology Suzhou University of Science and Technology Suzhou Jiangsu 215009 P. R. China

2. Advanced Institute for Materials Research (WPI‐AIMR) Tohoku University Sendai 980‐8577 Japan

3. School of Materials Science and Engineering Shanghai University Shanghai 200444 P. R. China

4. Department of Engineering Science Faculty of Innovation Engineering Macau University of Science and Technology Av. Wai Long Macau SAR 999078 China

5. Department of Physics and Astronomy and Elmore Family School of Electrical and Computer Engineering and Birck Nanotechnology Center and Purdue Quantum Science and Engineering Institute Purdue University West Lafayette IN 47907 USA

6. Institute of Physics and Astronomy and Villum Center for Hybrid Quantum Materials and Devices Aarhus University 8000 Aarhus‐C Denmark

Abstract

A van der Waals (vdW) heterostructure is formed by combining multiple materials through vdW bonds. It can combine the advantages of electronic, optical, thermal, and magnetic properties of different 2D materials and has the potential to develop into the next generation of high‐performance functional devices. Herein, the current research advances of vdW heterostructures are reviewed. First, current fabrication methods and physical structures of vdW heterostructures are summarized. The 2D/nD (n = 0,1,2,3) mixed‐dimensional heterostructures are discussed in detail. Second, a new type of vdW heterostructure is introduced based on two‐dimensional electron gas with a nanoscale junction interface. Finally, the application prospects of vdW heterostructures in photoelectric and memory devices are further outlined by combing new applications in the neural networks. This review shows that vdW heterostructures have great advantages in high integration, energy harvesting, and logical operations, and it provides directions and suggestions for the future research and application of environmentally friendly, high‐performance, and smart functional devices.

Funder

National Natural Science Foundation of China

Japan Society for the Promotion of Science London

Publisher

Wiley

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