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Xuezhi Duan

Researcher at East China University of Science and Technology

Publications -  173
Citations -  6370

Xuezhi Duan is an academic researcher from East China University of Science and Technology. The author has contributed to research in topics: Catalysis & Dehydrogenation. The author has an hindex of 37, co-authored 173 publications receiving 3935 citations. Previous affiliations of Xuezhi Duan include Norwegian University of Science and Technology & China University of Science and Technology.

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Mechanistic insight into size-dependent activity and durability in Pt/CNT catalyzed hydrolytic dehydrogenation of ammonia borane.

TL;DR: A size-dependent activity in Pt/CNT catalyzed hydrolytic dehydrogenation of ammonia borane is reported and the insights reported here may pave the way for the rational design of highly active and durable Pt catalysts for hydrogen generation.
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Directly transforming copper (I) oxide bulk into isolated single-atom copper sites catalyst through gas-transport approach.

TL;DR: A gas-transport route to transform monolithic copper (I) oxide into copper single-atoms catalyst with a high activity for oxygen reduction with great potential in high-temperature applications is reported.
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Unique reactivity in Pt/CNT catalyzed hydrolytic dehydrogenation of ammonia borane

TL;DR: An unprecedented H2 generation activity is demonstrated in the hydrolytic dehydrogenation of ammonia borane over acid oxidation- and subsequent high temperature-treated CNT immobilized Pt nanocatalysts to combine the merits of defect-rich and oxygen group-deficient surfaces and unique textural properties of supports as well as optimum particle size of Pt.
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Efficient and Robust Hydrogen Evolution: Phosphorus Nitride Imide Nanotubes as Supports for Anchoring Single Ruthenium Sites

TL;DR: Density functional theory (DFT) calculations demonstrate that the Gibbs free energy of adsorbed H* over theRu SAs on PN is much closer to zero compared with the Ru/C and Ru SAs supported on carbon and C3 N4 , thus considerably facilitating the overall HER performance.