Spin-active defects in hexagonal boron nitride

Author:

Liu Wei,Guo Nai-Jie,Yu Shang,Meng Yu,Li Zhi-Peng,Yang Yuan-Ze,Wang Zhao-An,Zeng Xiao-Dong,Xie Lin-Ke,Li Qiang,Wang Jun-Feng,Xu Jin-Shi,Wang Yi-Tao,Tang Jian-Shun,Li Chuan-FengORCID,Guo Guang-Can

Abstract

Abstract Quantum technology grown out of quantum information theory, including quantum communication, quantum computation and quantum sensing, not only provides powerful research tools for numerous fields, but also is expected to go to civilian use in the future. Solid-state spin-active defects are one of promising platforms for quantum technology, and the host materials include three-dimensional diamond and silicon carbide, and the emerging two-dimensional hexagonal boron nitride (hBN) and transition-metal dichalcogenides. In this review, we will focus on the spin defects in hBN, and summarize theoretical and experimental progresses made in understanding properties of these spin defects. In particular, the combination of theoretical prediction and experimental verification is highlighted. We also discuss the future advantages and challenges of solid-state spins in hBN on the path towards quantum information applications.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for The Central Universities

Anhui Initiative in Quantum Information Technologies

Science Foundation of The CAS

Fok Ying-Tong Education Foundation

Key Research Program of Frontier Sciences of the Chinese Academy of Sciences

Open Research Projects of Zhejiang Lab

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

IOP Publishing

Subject

Community and Home Care

Reference216 articles.

1. The quantum technologies roadmap: a European community view;Acín;New J. Phys.,2018

2. Simulating physics with computers;Feynman;Int. J. Theor. Phys.,1982

3. Quantum computation;DiVincenzo;Science,1995

4. Magnetic microtraps for ultracold atoms;Fortágh;Rev. Mod. Phys.,2007

5. Realization of a programmable two-qubit quantum processor;Hanneke;Nat. Phys.,2010

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