Xu Yun-Fei
Zhejiang University
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Publication
Featured researches published by Xu Yun-Fei.
Chinese Physics Letters | 2011
Wang Xiao-Long; Tao Tian-Jiong; Cheng Bing; Wu Bin; Xu Yun-Fei; Wang Zhao-Ying; Lin Qiang
A digital optical phase lock loop (OPLL) is implemented to synchronize the frequency and phase between two external cavity diode lasers (ECDL), generating Raman pulses for atom interferometry. The setup involves all-digital phase detection and a programmable digital proportional-integral-derivative (PID) loop in locking. The lock generates a narrow beat-note linewidth below 1 Hz and low phase-noise of 0.03rad2 between the master and slave ECDLs. The lock proves to be stable and robust, and all the locking parameters can be set and optimized on a computer interface with convenience, making the lock adaptable to various setups of laser systems.
Chinese Physics B | 2014
Yang Ai-Lin; Yang Guo-Qing; Xu Yun-Fei; Lin Qiang
We present an experimental and theoretical investigation of the coherent population trapping (CPT) resonance excited on the D1 line of 87Rb atoms by bichromatic linearly polarized laser light. The experimental results show that a lin || lin transition scheme is a promising alternative to the conventional circular—circular transition scheme for an atomic magnetometer. Compared with the circular light transition scheme, linear light accounts for high-contrast transmission resonances, which makes this excitation scheme promising for high-sensitivity magnetometers. We also use linear light and circular light to detect changes of a standard magnetic field, separately.
Chinese Physics B | 2013
Yang Ai-Lin; Yang Guo-Qing; Cai Xun-Ming; Xu Yun-Fei; Lin Qiang
We demonstrate experimentally an atomic magnetometer based on optical pumping theory, a magnetic resonance that is induced by a radio frequency field and dependent on the magnetic field strength. Compared with the conventional method using one radiation field, which is used not only as the probe beam but also as a pump beam, the additional re-pump beam can increase remarkably the amplitude of the signal. It is shown that the amplitude of the magnetic field resonance signal can increase more than 55% by using an additional re-pump beam, which makes the sensitivity of the magnetometer higher. Finally, we investigate the relation between amplitude of the signal and re-pump laser power, and calculate the atomic population in the trapping states with rate equations.
Chinese Physics Letters | 2009
Han Shun-Li; Cheng Bing; Zhang Jing-Fang; Xu Yun-Fei; Wang Zhao-Ying; Lin Qiang
A simple method to realize both stabilization and shift of the frequency in an external cavity diode laser (ECDL) is reported. Due to the Zeeman effect, the saturated absorption spectrum of Rb atoms in a magnetic field is shifted. This shift can be used to detune the frequency of the ECDL, which is locked to the saturated absorption spectrum. The frequency shift amount can be controlled by changing the magnetic field for a specific polarization state of the laser beam. The advantages of this tunable frequency lock include low laser power requirement, without additional power loss, cheapness, and so on.
Chinese Physics Letters | 2009
Li Shu-Guang; Xu Yun-Fei; Wang Zhao-Ying; Liu Yun-Xian; Lin Qiang
A highly sensitive all-optical atomic magnetometer based on the magnetooptical effect which uses the advanced technique of single laser beam detection is reported and demonstrated experimentally. A sensitivity of 0.5 pT/Hz1/2 is obtained by analyzing the magnetic noise spectrum, which exceeds that of most traditional magnetometers. This kind of atomic magnetometer is very compact, has a low power consumption, and has a high theoretical sensitivity limit, which make it suitable for many applications.
Chinese Physics Letters | 2009
Han Shun-Li; Cheng Bing; Zhang Jing-Fang; Xu Yun-Fei; Wang Zhao-Ying; Lin Qiang
A novel and simple method to realize polarization gradient cooling (PGC) is reported. The stabilizing, shifting and rapid tuning of the frequency of the external cavity diode laser is realized by using the Zeeman-effect-assisted Doppler-free saturated absorption technique. Based on this convenient technique, 87Rb cold atoms are captured from room-temperature background vapor in the magneto-optical trap (MOT). Meanwhile, the steady-state number, the density and the lifetime of atoms in the MOT are measured. Subsequently, a frequency-fast-varying circuit is designed to realize PGC, which is demonstrated effectively and reliably in experiments. The temperature of the cold atom cloud is measured by two different methods, which coincide with each other.
Archive | 2014
Liang Shangqing; Yang Guo-Qing; Xu Yun-Fei; Lin Qiang
Chinese Physics B | 2014
Cheng Bing; Wang Zhao-Ying; Wu Bin; Xu Ao-Peng; Wang Qiyu; Xu Yun-Fei; Lin Qiang
Archive | 2010
Li Shu-Guang; Zhou Xiang; Cao Xiao-Chao; Sheng Ji-Teng; Xu Yun-Fei; Wang Zhao-Ying; Lin Qiang
Archive | 2017
Xu Yun-Fei; Wang Weidong; Wang Zhao-Ying; Liang Shangqing; Fang Feiyun; Hu Yao