Qi You
Shenzhen University
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Publication
Featured researches published by Qi You.
Photonics Research | 2017
Yuanjiang Xiang; Xing Jiang; Qi You; Jun Guo; Xiaoyu Dai
The photonic spin Hall effect (SHE) has been intensively studied and widely applied, especially in spin photonics. However, the SHE is weak and is difficult to detect directly. In this paper, we propose a method to enhance SHE with the guided-wave surface-plasmon resonance (SPR). By covering a dielectric with high refractive index on the surface of silver film, the photonic SHE can be greatly enhanced, and a giant transverse shift of horizontal polarization state is observed due to the evanescent field enhancement near the interface at the top dielectric layer and air. The maximum transverse shift of the horizontal polarization state with 11.5xa0μm is obtained when the thickness of Si film is optimum. There is at least an order of magnitude enhancement in contrast with the transverse shift in the conventional SPR configuration. Our research is important for providing an effective way to improve the photonic SHE and may offer the opportunity to characterize the parameters of the dielectric layer with the help of weak measurements and development of sensors based on the photonic SHE.
Photonics Research | 2017
Xi Wang; Xing Jiang; Qi You; Jun Guo; Xiaoyu Dai; Yuanjiang Xiang
In this paper, we have shown that perfect absorption at terahertz frequencies can be achieved by using a composite structure where graphene is coated on one-dimensional photonic crystal (1DPC) separated by a dielectric. Due to the excitation of optical Tamm states (OTSs) at the interface between the graphene and 1DPC, a strong absorption phenomenon occurs induced by the coupling of the incident light and OTSs. Although the perfect absorption produced by a metal–distributed Bragg reflector structure has been researched extensively, it is generally at a fixed frequency and not tunable. Here, we show that the perfect absorption at terahertz frequency not only can be tuned to different frequencies but also exhibits a high absorption over a wide angle range. In addition, the absorption of the proposed structure is insensitive to the polarization, and multichannel absorption can be realized by controlling the thickness of the top layer.
Sensors | 2017
Banxian Ruan; Jun Guo; Leiming Wu; Jiaqi Zhu; Qi You; Xiaoyu Dai; Yuanjiang Xiang
Graphene terahertz (THz) surface plasmons provide hope for developing functional devices in the THz frequency. By coupling graphene surface plasmon polaritons (SPPs) and a planar waveguide (PWG) mode, Fano resonances are demonstrated to realize an ultrasensitive terahertz biosensor. By analyzing the dispersion relation of graphene SPPs and PWG, the tunable Fano resonances in the terahertz frequency are discussed. It is found that the asymmetric lineshape of Fano resonances can be manipulated by changing the Fermi level of graphene, and the influence of the thickness of coupling layer and air layer in sandwich structure on the Fano resonances is also discussed in detail. We then apply the proposed Fano resonance to realize the ultrasensitive terahertz biosensors, it is shown that the highest sensitivities of 3260 RIU−1 are realized. Our result is two orders of a conventional surface plasmon resonance sensor. Furthermore, we find that when sensing medium is in the vicinity of water in THz, the sensitivity increases with increasing refractive index of the sensing medium.
Sensors | 2018
Banxian Ruan; Qi You; Jiaqi Zhu; Leiming Wu; Jun Guo; Xiaoyu Dai; Yuanjiang Xiang
Transparent conducting oxides (TCOs) have appeared in the past few years as potential plasmonic materials for the development of optical devices in the near infrared regime (NIR). However, the performance of biosensors with TCOs has been limited in sensitivity and figure of merit (FOM). To improve the performance of the biosensors with TCOs, a biosensor based on long-range surface plasmon with Ga-doped zinc oxide (GZO) is proposed. It is shown that a larger FOM with a 2~7 times enhancement compared to the traditional surface plasmon polaritons (SPPs) sensor and higher detection accuracy (DA) can be realized in our proposed sensor compared with the surface plasmon resonance (SPR) sensor with GZO. Therefore, this sensor can be used to detect biological activity or chemical reactions in the near infrared region.
Journal of Physical Chemistry C | 2018
Leiming Wu; Qingkai Wang; Banxian Ruan; Jiaqi Zhu; Qi You; Xiaoyu Dai; Yuanjiang Xiang
Sensors and Actuators B-chemical | 2018
Jiaqi Zhu; Banxian Ruan; Qi You; Jun Guo; Xiaoyu Dai; Yuanjiang Xiang
Optics Express | 2018
Banxian Ruan; Qi You; Jiaqi Zhu; Leiming Wu; Jun Guo; Xiaoyu Dai; Yuanjiang Xiang
Sensors and Actuators B-chemical | 2018
Leiming Wu; Qi You; Youxian Shan; Shuaiwen Gan; Yuting Zhao; Xiaoyu Dai; Yuanjiang Xiang
Optical Materials Express | 2018
Qi You; Youxian Shan; Shuaiwen Gan; Yuting Zhao; Xiaoyu Dai; Yuanjiang Xiang
IEEE Sensors Journal | 2018
Banxian Ruan; Qi You; Jiaqi Zhu; Leiming Wu; Jun Guo; Xiaoyu Dai; Yuanjiang Xiang