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Kuei-Hsien Chen

Researcher at Academia Sinica

Publications -  682
Citations -  27827

Kuei-Hsien Chen is an academic researcher from Academia Sinica. The author has contributed to research in topics: Thin film & Carbon nanotube. The author has an hindex of 75, co-authored 652 publications receiving 24809 citations. Previous affiliations of Kuei-Hsien Chen include Massachusetts Institute of Technology & KAIST.

Papers
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Nanohomojunction (GaN) and Nanoheterojunction (InN) Nanorods on One-Dimensional GaN Nanowire Substrates

TL;DR: In this article, the formation of homojunctions and heterojunctions on two-dimensional (2D) substrates plays a key role in the device performance of thin films.
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Si-containing crystalline carbon nitride derived from microwave plasma-enhanced chemical vapor deposition

TL;DR: In this article, the phase contents in carbon nitride thin films were found to be strongly dependent on the substrate temperature and the incorporation of significant amounts of Si into the film was observed when the substrate was exceeded 1000°C.
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Direct-growth of polyaniline nanowires for enzyme-immobilization and glucose detection

TL;DR: In this article, an amperometric enzyme biosensor based on the glucose oxidase (GOx) incorporated polyaniline nanowires (PANI-NWs) on carbon cloth (CC) electrode was demonstrated.
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Multi-bandgap-sensitized ZnO nanorod photoelectrode arrays for water splitting: An x-ray absorption spectroscopy approach for the electronic evolution under solar illumination

TL;DR: In this paper, an environmentally friendly inorganic light-harvesting nanostructure was constructed by first building up an array of ZnO nanowires and then incorporating indium phosphide (InP) nanocrystals into them.
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Micro-Raman for diamond film stress analysis

TL;DR: In this article, the residual stress in microwave plasma-enhanced CVD diamond film was analyzed using a Raman spectrometer with micrometer spatial resolution, which enables effective study of isolated crystals grown in the same deposition run.