Non‐Linear Optics at Twist Interfaces in h‐BN/SiC Heterostructures

Author:

Biswas Abhijit1ORCID,Xu Rui1,Alvarez Gustavo A.2,Zhang Jin3,Christiansen‐Salameh Joyce2,Puthirath Anand B.1,Burns Kory4,Hachtel Jordan A.5,Li Tao6,Iyengar Sathvik Ajay1,Gray Tia1,Li Chenxi1,Zhang Xiang1,Kannan Harikishan1,Elkins Jacob1,Pieshkov Tymofii S.17,Vajtai Robert1,Birdwell A. Glen8,Neupane Mahesh R.8,Garratt Elias J.8,Ivanov Tony G.8,Pate Bradford B.9,Zhao Yuji6,Zhu Hanyu1,Tian Zhiting2,Rubio Angel310,Ajayan Pulickel M.1

Affiliation:

1. Department of Materials Science and Nanoengineering Rice University Houston TX 77005 USA

2. Sibley School of Mechanical and Aerospace Engineering Cornell University Ithaca NY 14853 USA

3. Max Planck Institute for the Structure and Dynamics of Matter and Center for Free‐Electron Laser Science Chaussee 149 22761 Luruper Germany

4. Department of Materials Science & Engineering University of Virginia Charlottesville VA 22904 USA

5. Center for Nanophase Materials Sciences Oak Ridge National Laboratory Oak Ridge TN 37831 USA

6. Department of Electrical and Computer Engineering Rice University Houston TX 77005 USA

7. Applied Physics Graduate Program Smalley‐Curl Institute Rice University Houston TX 77005 USA

8. DEVCOM Army Research Laboratory RF Devices and Circuits Adelphi MD 20783 USA

9. Chemistry Division Naval Research Laboratory Washington, D.C. 20375 USA

10. Center for Computational Quantum Physics (CCQ) Flatiron Institute New York NY 10010 USA

Abstract

AbstractUnderstanding the emergent electronic structure in twisted atomically thin layers has led to the exciting field of twistronics. However, practical applications of such systems are challenging since the specific angular correlations between the layers must be precisely controlled and the layers have to be single crystalline with uniform atomic ordering. Here, an alternative, simple, and scalable approach is suggested, where nanocrystallinetwo‐dimensional (2D) film on 3D substrates yields twisted‐interface‐dependent properties. Ultrawide‐bandgap hexagonal boron nitride (h‐BN) thin films are directly grown on high in‐plane lattice mismatched wide‐bandgap silicon carbide (4H‐SiC) substrates to explore the twist‐dependent structure‐property correlations. Concurrently, nanocrystalline h‐BN thin film shows strong non‐linear second‐harmonic generation and ultra‐low cross‐plane thermal conductivity at room temperature, which are attributed to the twisted domain edges between van der Waals stacked nanocrystals with random in‐plane orientations. First‐principles calculations based on time‐dependent density functional theory manifest strong even‐order optical nonlinearity in twisted h‐BN layers. This work unveils that directly deposited 2D nanocrystalline thin film on 3D substrates could provide easily accessible twist‐interfaces, therefore enabling a simple and scalable approach to utilize the 2D‐twistronics integrated in 3D material devices for next‐generation nanotechnology.

Funder

Welch Foundation

U.S. Department of Energy

Office of Science

National Natural Science Foundation of China

Deutsche Forschungsgemeinschaft

Basic Energy Sciences

Army Research Office

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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