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Xueqiu You

Researcher at Xiamen University

Publications -  10
Citations -  190

Xueqiu You is an academic researcher from Xiamen University. The author has contributed to research in topics: Catalysis & Electrocatalyst. The author has an hindex of 5, co-authored 10 publications receiving 104 citations.

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Role of Graphene in Water-Assisted Oxidation of Copper in Relation to Dry Transfer of Graphene

TL;DR: In this paper, the process of oxidation of a copper surface coated by a layer of graphene in water-saturated air at 50 °C was studied where it was observed that oxidation started at the graphene edge and was complete after 24 hours.
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MoS2 nanoflower supported Pt nanoparticle as an efficient electrocatalyst for ethanol oxidation reaction

TL;DR: In this article, a platinum/molybdenum disulfide nanoflower (Pt/MoS2) nanocomposite is synthesized through a facile method and is first applied as catalyst for ethanol oxidation reaction.
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Small-sized Pt nanoparticles supported on hybrid structures of MoS2 nanoflowers/graphene nanosheets: Highly active composite catalyst toward efficient ethanol oxidation reaction studied by in situ electrochemical NMR spectroscopy

TL;DR: In this article, highly active MoS2 nanoflowers/graphene nanosheets (GNS) composites are successfully prepared through a simple hydrothermal method and are employed as Pt supports to prepare Pt/MoS2/GNS for ethanol oxidation.
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3D-printed integrative probeheads for magnetic resonance

TL;DR: 3D printing and liquid metal filling techniques are utilized to fabricate integrative radio frequency probeheads for MR experiments and can accurately obtain complicated coil geometries at the micrometer scale, shortening the fabrication timescale and extending the application scenarios.
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NMR spectroelectrochemistry in studies of hydroquinone oxidation by polyaniline thin films

TL;DR: In this paper, the authors developed a direct way for the study of hydroquinone oxidation through in situ electrochemistry-combined nuclear magnetic resonance (EC-NMR) for quantitatively monitoring the generation of products under varied solvent composition and pH values.