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Dive into the research topics where Yougang Ke is active.

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Featured researches published by Yougang Ke.


Optics Letters | 2015

Photonic spin Hall effect in dielectric metasurfaces with rotational symmetry breaking

Yachao Liu; Xiaohui Ling; Xunong Yi; Xinxing Zhou; Shizhen Chen; Yougang Ke; Hailu Luo; Shuangchun Wen

Observation of photonic spin Hall effect (SHE) in dielectric metasurfaces whose local optical axes are spatially rotated is presented. The photonic SHE manifests itself as a spin-dependent splitting in momentum space due to the space-variant Pancharatnam-Berry phase. We show that no spin-dependent splitting occurs when keeping the rotational symmetry of local optical axes. However, the splitting can be observed when the rotational symmetry is broken. The spin-dependent splitting in position space can be observed in the far field due to the high transmission efficiency of dielectric metasurfaces. Moreover, it can be enhanced by increasing the rotation rate of local optical axes in the metasurfaces.


Optics Letters | 2015

Generation of Airy vortex and Airy vector beams based on the modulation of dynamic and geometric phases

Junxiao Zhou; Yachao Liu; Yougang Ke; Hailu Luo; Shuangchun Wen

We propose a novel method for the generation of Airy vortex and Airy vector beams based on the modulation of dynamic and geometric phases. In our scheme, the Airy beam is generated by the dynamic phase with a spatial light modulator, and the vortex phase or the vector polarization is modulated by the geometric phase with a dielectric metasurface. The modulation of the geometric phase provides an extra degree of freedom to manipulate the phase and the polarization of Airy beams. This scheme can be extended to generate any other types of optical beams with desirable phase and polarization.


Photonics Research | 2017

Generation of arbitrary vector vortex beams on hybrid-order Poincaré sphere

Zhenxing Liu; Yuanyuan Liu; Yougang Ke; Yachao Liu; Weixing Shu; Hailu Luo; Shuangchun Wen

We propose theoretically and verify experimentally a method of combining a q-plate and a spiral phase plate to generate arbitrary vector vortex beams on a hybrid-order Poincare sphere. We demonstrate that a vector vortex beam can be decomposed into a vector beam and a vortex, whereby the generation can be realized by sequentially using a q-plate and a spiral phase plate. The generated vector beam, vortex, and vector vortex beam are verified and show good agreement with the prediction. Another advantage that should be pointed out is that the spiral phase plate and q-plate are both fabricated on silica substrates, suggesting the potential possibility to integrate the two structures on a single plate. Based on a compact method of transmissive-type transformation, our scheme may have potential applications in future integrated optical devices.


Nanophotonics | 2017

Photonic spin Hall effect in metasurfaces: a brief review

Yachao Liu; Yougang Ke; Hailu Luo; Shuangchun Wen

Abstract The photonic spin Hall effect (SHE) originates from the interplay between the photon-spin (polarization) and the trajectory (extrinsic orbital angular momentum) of light, i.e. the spin-orbit interaction. Metasurfaces, metamaterials with a reduced dimensionality, exhibit exceptional abilities for controlling the spin-orbit interaction and thereby manipulating the photonic SHE. Spin-redirection phase and Pancharatnam-Berry phase are the manifestations of spin-orbit interaction. The former is related to the evolution of the propagation direction and the latter to the manipulation with polarization state. Two distinct forms of splitting based on these two types of geometric phases can be induced by the photonic SHE in metasurfaces: the spin-dependent splitting in position space and in momentum space. The introduction of Pacharatnam-Berry phases, through space-variant polarization manipulations with metasurfaces, enables new approaches for fabricating the spin-Hall devices. Here, we present a short review of photonic SHE in metasurfaces and outline the opportunities in spin photonics.


Optics Express | 2015

Observation of photonic spin Hall effect with phase singularity at dielectric metasurfaces

Ying Li; Yachao Liu; Xiaohui Ling; Xunong Yi; Xinxing Zhou; Yougang Ke; Hailu Luo; Shuangchun Wen; Dianyuan Fan

Observation of photonic spin Hall effect (SHE) near the phase singularity at dielectric metasurfaces is presented. The structured metasurface works as a space-variant Pancharatnam-Berry phase element and produces a vortex beam with phase singularity. The dynamical vortex phase is introduced to eliminate or enhance the phase singularity, thus realizing the manipulation of spin-dependent Pancharatnam-Berry phase. The spin-orbit coupling near the singularity of the Pancharatnam-Berry phase leads to the observation of the photonic SHE which manifests itself as spin-dependent splitting. The underlying mechanism is significantly different from previously reported cases. It thereby provides an alternative way to manipulate the spin states of photons.


Optics Express | 2016

Propagation model for vector beams generated by metasurfaces

Weixing Shu; Yachao Liu; Yougang Ke; Xiaohui Ling; Zhenxing Liu; Bin Huang; Hailu Luo; Xiaobo Yin

A propagation model of vector beams generated by metasurfaces based on vector diffraction theory is established theoretically and verified experimentally. Considering the Pancharatnam-Berry phase introduced by the metasurface, analytical forms of vector beams for arbitrary incident polarization and topological charge of metasurfaces are found in the Fresnel and Fraunhofer diffraction regions, respectively. The complex amplitude of the resultant vector beam can be described in terms of a confluent hypergeometric function, with an intensity profile that manifests concentric rings in the Fresnel region and a single ring in the Fraunhofer one. Fraunhofer diffraction provides a method to create vector beams with simultaneously high purity and modal power. Further experiments verify the theoretical results.


Scientific Reports | 2017

Generation of perfect vortex and vector beams based on Pancharatnam-Berry phase elements

Yachao Liu; Yougang Ke; Junxiao Zhou; Yuanyuan Liu; Hailu Luo; Shuangchun Wen; Dianyuan Fan

Perfect vortex beams are the orbital angular momentum (OAM)-carrying beams with fixed annular intensities, which provide a better source of OAM than traditional Laguerre-Gaussian beams. However, ordinary schemes to obtain the perfect vortex beams are usually bulky and unstable. We demonstrate here a novel generation scheme by designing planar Pancharatnam-Berry (PB) phase elements to replace all the elements required. Different from the conventional approaches based on reflective or refractive elements, PB phase elements can dramatically reduce the occupying volume of system. Moreover, the PB phase element scheme is easily developed to produce the perfect vector beams. Therefore, our scheme may provide prominent vortex and vector sources for integrated optical communication and micromanipulation systems.


Applied Physics Letters | 2015

Realization of spin-dependent splitting with arbitrary intensity patterns based on all-dielectric metasurfaces

Yougang Ke; Yachao Liu; Yongli He; Junxiao Zhou; Hailu Luo; Shuangchun Wen

We report the realization of spin-dependent splitting with arbitrary intensity patterns based on all-dielectric metasurfaces. Compared with the plasmonic metasurfaces, the all-dielectric metasurface exhibits more high transmission efficiency and conversion efficiency, which makes it possible to achieve the spin-dependent splitting with arbitrary intensity patterns. Our findings suggest a way for generation and manipulation of spin photons, and thereby offer the possibility of developing spin-based nanophotonic applications.


Scientific Reports | 2016

Spin-dependent manipulating of vector beams by tailoring polarization.

Junxiao Zhou; Wenshuai Zhang; Yachao Liu; Yougang Ke; Yuanyuan Liu; Hailu Luo; Shuangchun Wen

We examine the spin-dependent manipulating of vector beams by tailoring the inhomogeneous polarization. The spin-dependent manipulating is attributed to the spin-dependent phase gradient in vector beams, which can be regarded as the intrinsic feature of inhomogeneous polarization. The desired polarization can be obtained by establishing the relationship between the local orientation of polarization and the local orientation of the optical axis of waveplate. We demonstrate that the spin-dependent manipulating with arbitrary intensity patterns can be achieved by tailoring the inhomogeneous polarization.


Applied Physics Letters | 2016

Optical integration of Pancharatnam-Berry phase lens and dynamical phase lens

Yougang Ke; Yachao Liu; Junxiao Zhou; Yuanyuan Liu; Hailu Luo; Shuangchun Wen

In the optical system, most elements such as lens, prism, and optical fiber are made of silica glass. Therefore, integrating Pancharatnam-Berry phase elements into silica glass has potential applications in the optical system. In this paper, we take a lens, for example, which integrates a Pancharatnam-Berry phase lens into a conventional plano-convex lens. The spin states and positions of focal points can be modulated by controlling the polarization states of the incident beam. The proposed lens has a high transmission efficiency, and thereby acts as a simple and powerful tool to manipulate spin photons. Furthermore, the method can be conveniently extended to the optical fiber and laser cavity, and may provide a route to the design of the spin-photonic devices.

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Xiaohui Ling

Hengyang Normal University

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