Boron Nitride Nanotubes and Nanosheets
Нанотрубки и нанослои из нитрида бора
2010-05-12
SCID: 54.1/6vdy37qj
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boron nitride nanosheetsboron nitride nanotubeshexagonal boron nitridenanomaterial propertieswide band gap
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Abstract (AI)
Hexagonal boron nitride (h-BN) is a layered material with a graphite-like structure in which planar networks of BN hexagons are regularly stacked. As the structural analogue of a carbon nanotube (CNT), a BN nanotube (BNNT) was first predicted in 1994; since then, it has become one of the most intriguing non-carbon nanotubes. Compared with metallic or semiconducting CNTs, a BNNT is an electrical insulator with a band gap of ca. 5 eV, basically independent of tube geometry. In addition, BNNTs possess a high chemical stability, excellent mechanical properties, and high thermal conductivity. The same advantages are likely applicable to a graphene analogue-a monatomic layer of a hexagonal BN. Such unique properties make BN nanotubes and nanosheets a promising nanomaterial in a variety of potential fields such as optoelectronic nanodevices, functional composites, hydrogen accumulators, electrically insulating substrates perfectly matching the CNT, and graphene lattices. This review gives an introduction to the rich BN nanotube/nanosheet field, including the latest achievements in the synthesis, structural analyses, and property evaluations, and presents the purpose and significance of this direction in the light of the general nanotube/nanosheet developments.
Key Findings
1
BN nanotubes (BNNTs) are structural analogues of carbon nanotubes but are electrically insulating, with an approximately 5 eV band gap largely independent of tube geometry.
2
BN nanotubes and nanosheets show promise for optoelectronic devices, functional composites, hydrogen storage, and electrically insulating substrates compatible with carbon nanotubes and graphene.
3
BNNTs combine high chemical stability, excellent mechanical properties, and high thermal conductivity, distinguishing them from metallic or semiconducting carbon nanotubes.
4
Hexagonal boron nitride nanosheets are proposed as graphene analogues that may exhibit similarly advantageous electrical, mechanical, chemical, and thermal properties.
5
The review surveys recent progress in BN nanotube and nanosheet synthesis, structural characterization, and property evaluation, highlighting their significance among emerging nanotube and nanosheet materials.
Research Object
hexagonal boron nitride nanotubes and nanosheets
Research Subject
their synthesis, structural characteristics, and physicochemical properties, including electrical insulation, chemical stability, mechanical performance, and thermal conductivity
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2010-05-12
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