People

JING Mingyong

Job Title:Lecturer

School/Institute:State Key Lab of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Shanxi University, Taiyuan

E-mail: jmy@sxu.edu.cn

Biography

JING Mingyong is a lecturer and master advisor at State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Shanxi University. He has presided over 4 funds, including the national and provincial funds, as well as the defense project. He proposed the atomic superheterodyne measurement method, realized the atomic superheterodyne receiver, and achieved ultrasensitive measurement of microwave based on the atomic superheterodyne receiver. In the recent five years, he has also published 3 SCI-cited papers written as the first or corresponding author, including 1 papers published on JCR first zone journals.

Education:

[1] 2014.09 to 2020.07

Shanxi University, Institute of Laser Spectroscopy, State Key Laboratory of Quantum Optics and Quantum Optics Devices, Atomic and Molecular Physics, Doctoral degree.

[2] 2010.09 to 2014.07

Shanxi University, College of Physics and Electronic Engineering, Physics, Bachelor of Physics.

Research Area:

[1] Quantum optics of Rydberg atoms

[2] Precision measurement based on Rydberg atoms

Employment:

[1] 2020.8-Now: Institute of Laser Spectroscopy, Shanxi University, Lecturer

Grants and Projects:

[1] The National Natural Science Foundation of China: “Precision Measurement of Microwave Electric Field Using Rydberg Atom-Based Cavity-Enhanced Superheterodyne method”, Grant No. 12104279, 2022/01-2024/12.

Selective Publications

[3] Jing, M., Zhang, P., Yuan, S. et al. High bandwidth laser frequency locking for wideband noise suppression. Opt. Express, 29, 7916-7924, 2021.

[2] Jing, M., Hu, Y., Ma, J. et al. Atomic superheterodyne receiver based on microwave-dressed Rydberg spectroscopy. Nat. Phys., 16, 911–915, 2020.

[1] Jing, M., Yu, B., Hu, J. et al. Impedance self-matching ultra-narrow linewidth fiber resonator by use of a tunable π-phase-shifted FBG. Sci. Rep., 7, 1895, 2017.