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Samson Ho-Sum Cheng

Researcher at Shenzhen University

Publications -  13
Citations -  634

Samson Ho-Sum Cheng is an academic researcher from Shenzhen University. The author has contributed to research in topics: Electrolyte & Lithium. The author has an hindex of 9, co-authored 13 publications receiving 377 citations. Previous affiliations of Samson Ho-Sum Cheng include Hong Kong University of Science and Technology & City University of Hong Kong.

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Hydrogenated V2O5 Nanosheets for Superior Lithium Storage Properties

TL;DR: In this paper, oxygen-deficient V2O5 nanosheets prepared by hydrogenation at 200 °C with superior lithium storage properties are described, and the results reveal that a simple and effective strategy to improve the capacity, rate capability, and cycling stability of V 2O5 materials which have large potential in energy storage and conversion applications are revealed.
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In-situ intermolecular interaction in composite polymer electrolyte for ultralong life quasi-solid-state lithium metal batteries.

TL;DR: In this article, a rational designed intermolecular interaction in composite electrolytes that utilizing contaminants as reaction initiator to generate Li + conducting ether oligomers, which further emerge as molecular crosslinkers between inorganic fillers and polymer matrix, creating dense and homogeneous interfacial Li + immigration channels in the composite electrolyte.
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(Oxalato)borate: The key ingredient for polyethylene oxide based composite electrolyte to achieve ultra-stable performance of high voltage solid-state LiNi0.8Co0.1Mn0.1O2/lithium metal battery

TL;DR: In this paper, a dual-salts reinforced polyethylene oxide/garnet composite electrolyte (SCE) with high ionic conductivity was developed for solid-state lithium (Li) metal batteries.
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Versatile Strategy for Realizing Flexible Room-Temperature All-Solid-State Battery through a Synergistic Combination of Salt Affluent PEO and Li6.75La3Zr1.75Ta0.25O12 Nanofibers.

TL;DR: A brand-new strategy to design and fabricate solid electrolyte in a versatile way for room temperature all-solid-state batteries employing the solid electrolytes exhibit excellent cycling stability at room temperature and superior safety performance is proposed.