Shuangjin Shi
University of Electronic Science and Technology of China
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Publication
Featured researches published by Shuangjin Shi.
Classical and Quantum Gravity | 2016
Zhi-Yong Wang; Qi Qiu; Yunxiang Wang; Cai-Dong Xiong; Shuangjin Shi
The representation of the group SL(2, C) provides a six-component spinor equivalent to the electromagnetic field tensor. By means of the description, one can treat the photon field in curved spacetime via spin connection and the tetrad formalism, which is of great advantage to study the gravitational spin–orbit coupling of photons. Once the gravitational spin–orbit coupling is taken into account, the traditional radius of the circular photon orbit in the Schwarzschild geometry should be replaced with two different radiuses corresponding to the photons with the helicities of respectively. Owing to the splitting of energy levels induced by the spin–orbit coupling, photons (from Hawking radiations, say) escaping from a Schwarzschild black hole are partially polarized, provided that their initial velocities possess nonzero tangential components.
Chinese Physics B | 2017
Yang Zeng; Zhi-Yong Wang; Yuan Wu; Lan-Song Lu; Yunxiang Wang; Shuangjin Shi; Qi Qiu
We propose a Mobius-strip-type plasmonic cavity with a silver Mobius strip sandwiched between dielectric layers. By brief theoretical and simulation analyses, we obtain that the factor of the cavity remains about 40 and the mode volume is ultrasmall (less than 1 ) which is more compact than that of the cylindric cavity. This Mobius-strip-type plasmonic cavity supporting the propagation of surface plasmon polaritons owns some unusual properties such as more effective volume and the spatial separation. More potential applications based on this cavity remain to be explored in future nanophotonics.
Optical Engineering | 2016
Yunxiang Wang; Biao Li; Yong Guo; Zhi-Yong Wang; Shuangjin Shi; Jun Su; Qi Qiu
Abstract. Optical phase locking is a key technique in homodyne coherent optical communication, coherent optical detection, and active coherent laser beam combination. In these applications, environmental temperature variation and mechanical vibration would affect the accuracy of phase locking, or even cause losing lock. These disturbances are generally equivalent to introducing phase jitter, phase step, frequency ramp, and frequency step in the loop. A frequency discrimination and control subloop is introduced to improve the frequency acquisition, and the tracking performance is studied experimentally. The loop can track phase step in 0.2 ms, and precisely track ±π/2 sine phase jitter for jittering frequency lower than 1 kHz. For frequency ramp, the residual phase error is unaffected for ramping rates slower than 40 MHz/s. The frequency discrimination and control subloop makes the loop lock quickly under a frequency step larger than the pull-in frequency. The mean tracking time is 31 ms for a 1 MHz frequency step. The maximum trackable frequency step is around 160 MHz. Continuous or step variation of phase and frequency could be tracked by the loop with the frequency discrimination and control subloop.
Journal of The Optical Society of America B-optical Physics | 2013
Yunxiang Wang; Wenjun Yue; Shuangjin Shi; Zhi-Yong Wang; Cai-Dong Xiong; Qi Qiu
We present a full quantum mechanical model for a composite-ring erbium-doped fiber laser with a feedback loop, with a view to predict the achievable intensity noise reduction. By adding an electronic feedback term to the noise transfer function of the free running composite-ring fiber laser, an analytical expression is developed for the intensity noise spectrum of the current system. For ring fiber lasers, the model shows that the subcavity can suppress the noise at the high frequency and reduce the cutoff frequency to the quantum noise limit, and the feedback loop has a significant impact on suppressing the intensity noise near the relaxation oscillation.
Fourth Asia Pacific Optical Sensors Conference | 2013
Ning Yang; Qiu Qi; Jun Su; Zhi-Yong Wang; Shuangjin Shi
Optical fiber temperature sensors can provide accurate temperature information and adapt to different temperature environments well, so they have been widely used. Traditional optical fiber temperature sensors depend upon optical fiber grating or nonlinear back scatting, both of which need complex measurement systems and high cost. So, a simple and chip temperature sensing method was put forward based on fiber delay technology, and the temperature information was obtained by measuring additional delay of optical signal in fiber. Establishing an experiment system by using the frequency domain phase method, we obtained the delay coefficient which describes the relationship between delay and temperature, so that the feasibility of the method was proved.
Applied Sciences | 2017
Yunxiang Wang; Chen Wang; Yangping Tao; Yang Liu; Qiang Zhou; Jun Su; Zhi-Yong Wang; Shuangjin Shi; Qi Qiu
Journal of Non-crystalline Solids | 2015
Yong Guo; Zhi-Yong Wang; Qi Qiu; Jun Su; Yunxiang Wang; Shuangjin Shi; Zhenfang Yu
Optics and Photonics Journal | 2013
Zhi-Yong Wang; Jun Gou; Shuangjin Shi; Qi Qiu
Laser Physics Letters | 2018
Chen Wang; Yunxiang Wang; Jun Su; Shuangjin Shi; Zhi-Yong Wang; Qiang Zhou; Yun Liao; Qi Qiu
Archive | 2017
Zhi-Yong Wang; Changyin Cai; Qiang Zhou; Yunxiang Wang; Luye Cao; Juxiang Chang; Siwei Wang; Qi Qiu; Shuangjin Shi; Jun Su
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University of Electronic Science and Technology of China
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