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Xinliang Zhang

Researcher at Huazhong University of Science and Technology

Publications -  868
Citations -  10196

Xinliang Zhang is an academic researcher from Huazhong University of Science and Technology. The author has contributed to research in topics: Optical amplifier & Resonator. The author has an hindex of 40, co-authored 777 publications receiving 7658 citations.

Papers
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Optical bandgap and phase transition in relaxor ferroelectric Pb(Mg 1/3 Nb 2/3 )O 3 -xPbTiO 3 single crystals: An inherent relationship

TL;DR: In this paper, the phase transition behavior of relaxor ferroelectric Pb(Mg1 ∕3Nb2∕3)O3-xPbTiO3 (PMN-xPT) single crystals derived from temperature-dependent spectral transmittance is investigated.
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An SOI based polarization insensitive filter for all-optical clock recovery.

TL;DR: An SOI based polarization diversity scheme consisting of two 2D grating couplers and a micro ring resonator is proposed and fabricate and all-optical polarization insensitive clock recovery has been demonstrated successfully.
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Reduction of patterning effects in SOA-based wavelength converters by combining cross-gain and cross-absorption modulation

TL;DR: The simulation results indicate that the patterning effect in wavelength conversion due to the slow recovery of the carrier density in the SOA can be well compensated by a concatenated EAM.
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Mode coupling in a terahertz multi-mode whispering-gallery-mode resonator.

TL;DR: Detailed analysis of mode-coupling effects of terahertz whispering-gallery modes (WGMs) in a multi-mode resonator using an extended transfer matrix method contributes to understanding physical phenomena, such as mode splitting, but also helps in identifying parameters when designing terAhertz devices,such as dual-band filters.
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Time-division-multiplexed observation bandwidth for ultrafast parametric spectro-temporal analyzer.

TL;DR: The TDM-based PASTA system successfully demultiplexes the C band and L (long) band spectra in two adjacent temporal frames, capable of reconstructing the wavelength-to-time sequence for arbitrary waveform over a record 58-nm observation bandwidth.