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Dive into the research topics where Min Chang is active.

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Featured researches published by Min Chang.


Optics Letters | 2013

Endlessly single-polarization single-mode holey fibers with low confinement loss.

Dunke Lu; Xuedian Zhang; Min Chang; Ge Wang; Lina Pan; Songlin Zhuang

We present a novel structure for holey fibers (HFs) with endlessly single-polarization single-mode characteristics, which is realized by introducing four elliptical airholes arranged in a hexagonal matrix in the core region. The validation of the design is done by use of a full-vectorial finite element method. We exhibit one typical design that can deliver a single-polarization single-mode region of more than 2400 nm with a confinement loss level lower than 0.01 dB/km. We have also shown that the persevered polarization state possesses a wide wavelength band of flat dispersion behavior. As a consequence, such HFs are useful in high-speed communication systems or optical-fiber sensors since they are free of polarization mode dispersion and simultaneously immune to cross-talk effect.


Journal of Modern Optics | 2018

Dispersion-compensating photonic crystal fiber with wavelength tunability based on a modified dual concentric core structure

Nan Chen; Xuedian Zhang; Fukun Nie; Xinglian Lu; Min Chang

Abstract We present a 5-layer air-hole dispersion-compensating photonic crystal fiber (PCF) with a modified dual concentric core structure, based on central rod doping. The finite element method (FEM) was used to investigate the structure numerically. If the structural parameters remain unchanged, a high degree of linear correlation between the central rod refractive index and the operating wavelength can be achieved in the wavelength range of 1.5457–1.5857 μm, which suggests that the operating wavelength can be determined by the refractive index of the centre rod. A negative dispersion coefficient between –5765.2 ps/km/nm and –6115.8 ps/km/nm was obtained by calculation and within the bandwidth of 108 nm (1.515–1.623 μm) around 1.55 μm, a dispersion coefficient of –3000 ps/km/nm can be ensured for compensation. In addition, this proposed PCF also has the advantage of low confinement loss, between 0.00011 and 0.00012 dB/m, and ease of fabrication with existing technology. The proposed PCF has good prospects in dispersion-compensating applications.


Archive | 2012

Method and system for progressive additional lens detection based on optical coherence tomography

Xuedian Zhang; Min Chang; Ge Wang; Lina Pan


Optics Communications | 2014

Intrinsic magnetic field sensitivities of sensor head housing for all-fiber optic current sensors

Xuedian Zhang; Min Chang; Chenfei Mao; Dunke Lu; Abel Kamagara


Optik | 2013

Single-polarization single-mode photonic crystal fibers with rectangular-lattice and elliptical-hole arranged perpendicular to each other

Dunke Lu; Xuedian Zhang; Min Chang; Abel Kamagara; Songlin Zhuang


Optics Communications | 2018

Dual-cladding high-birefringence and high-nonlinearity photonic crystal fiber with As2S3 core

Xuedian Zhang; Menghui He; Min Chang; Hui Chen; Nan Chen; Ningning Qi; Manman Yuan; Xiaofei Qin


Archive | 2012

Device and method for measuring large current by optical fiber

Xuedian Zhang; Chenfei Mao; Yinglong Hou; Dunke Lu; Min Chang


Optical Materials | 2018

Elliptical As2Se3 filled core ultra-high-nonlinearity and polarization-maintaining photonic crystal fiber with double hexagonal lattice cladding

Feng Li; Menghui He; Xuedian Zhang; Min Chang; Zhizheng Wu; Zheng Liu; Hua Chen


IEEE Photonics Journal | 2018

Design of a Metal-Filled Photonic-Crystal Fiber Polarization Filter Based on Surface Plasmon Resonance at 1.31 and 1.55

Xinglian Lu; Min Chang; Nan Chen; Xuedian Zhang; Songlin Zhuang; Jian Xu


Optics Communications | 2015

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Xuedian Zhang; Min Chang; Yinglong Hou

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Xuedian Zhang

University of Shanghai for Science and Technology

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Dunke Lu

University of Shanghai for Science and Technology

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Chenfei Mao

University of Shanghai for Science and Technology

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Yinglong Hou

University of Shanghai for Science and Technology

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Nan Chen

University of Shanghai for Science and Technology

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Songlin Zhuang

University of Shanghai for Science and Technology

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Abel Kamagara

University of Shanghai for Science and Technology

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Ge Wang

University of Shanghai for Science and Technology

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Lina Pan

University of Shanghai for Science and Technology

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Menghui He

University of Shanghai for Science and Technology

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