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Xuebin Wang

Researcher at Nanjing University

Publications -  88
Citations -  8101

Xuebin Wang is an academic researcher from Nanjing University. The author has contributed to research in topics: Boron nitride & Graphene. The author has an hindex of 38, co-authored 70 publications receiving 6459 citations. Previous affiliations of Xuebin Wang include Wuhan University of Science and Technology & Waseda University.

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Functionalized hexagonal boron nitride nanomaterials: emerging properties and applications.

TL;DR: An overview of the progress in functionalized hexagonal boron nitride (h-BN) nanomaterials can be found in this paper, where different functionalization methods, including physical and chemical routes, are comprehensively described toward fabrication of various BN derivatives, hetero- and porous structures, etc.
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“White Graphenes”: Boron Nitride Nanoribbons via Boron Nitride Nanotube Unwrapping

TL;DR: It is shown that few- and single-layered BNnanoribbons, mostly terminated with zigzag edges, can be produced under unwrapping multiwalled BN nanotubes through plasma etching and become semiconducting due to doping-like conducting edge states and vacancy defects.
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Three-dimensional strutted graphene grown by substrate-free sugar blowing for high-power-density supercapacitors

TL;DR: In this article, a sugar-blowing approach based on a polymeric predecessor was used to synthesize a 3D graphene bubble network, which consists of mono- or few-layered graphitic membranes that are tightly glued, rigidly fixed and spatially scaffolded by micrometre-scale graphitic struts.
Journal Article

"White graphenes": boron nitride nanoribbons via boron nitride nanotube unwrapping

TL;DR: In this paper, a few and single-layered BN nanoribbons, mostly terminated with zigzag edges, can be produced under unwrapping multi-walled Bn nanotubes through plasma etching.
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Highly water-soluble, porous, and biocompatible boron nitrides for anticancer drug delivery.

TL;DR: An original and simple thermal substitution method is reported to fabricate perfectly water-soluble and porous boron nitride (BN) materials featuring unprecedentedly high hydroxylation degrees.