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Xiao Dong Chen

Researcher at Soochow University (Suzhou)

Publications -  1563
Citations -  36284

Xiao Dong Chen is an academic researcher from Soochow University (Suzhou). The author has contributed to research in topics: Antenna (radio) & Spray drying. The author has an hindex of 73, co-authored 1513 publications receiving 30188 citations. Previous affiliations of Xiao Dong Chen include Monash University & Monash University, Clayton campus.

Papers
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Characterization of milk protein concentrate solubility using focused beam reflectance measurement

TL;DR: In this paper, a methodology to characterize the solubility of MPC using Focused Beam Reflectance Measurement (FBRM) is presented, which provides the ability to monitor in situ the changes in chord length with time over a wide range of suspension concentrations.
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A low-cost and highly integrated sensing insole for plantar pressure measurement

TL;DR: In this article, instead of embedding force sensitive resistors in the insole, a simple and low-cost, highly integrated, textile-only sensing insole for the measurement of plantar pressures was developed.
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Exploring the reaction kinetics of whey protein denaturation/aggregation by assuming the denaturation step is reversible

TL;DR: The current study shows that the kinetics of β-lg denaturation can be far more complicated than that described by the simple rate equation commonly applied in previous literature.
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Full controlling of Fano resonances in metal-slit superlattice.

TL;DR: It is semi-analytically shown that the spectral position and linewidth of both the bright and dark modes can be tuned independently and/or simultaneously in a simple and symmetric metal-slit superlattice, allowing for a free and continuous controlling of the lineshape of bothThe independent controlling scheme is applicable for an extremely large electromagnetic spectrum range from optical to microwave frequencies.
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Luminescence from porous silicon

TL;DR: In this article, the dependence of the photoluminescence spectrum on the sample temperature and on the excitation density, considered together with its nonexponential decay profile, suggest that the dominant luminescence process in porous silicon is recombination of quantum-confined carriers in a disordered medium.