Issue 23, 2013

Nano-solenoid: helicoid carbon–boron nitride hetero-nanotube

Abstract

As a fundamental element of a nanoscale passive circuit, a nano-inductor is proposed based on a hetero-nanotube consisting of a spiral carbon strip and a spiral boron nitride strip. It is shown by density functional theory associated with nonequilibrium Green function calculations that the nanotube exhibits attractive transport properties tunable by tube chirality, diameter, component proportion and connection manner between the two strips, with excellent ‘OFF’ state performance and high current on the order of 10–100 μA. All the hetero-nanotubes show negative differential resistance. The transmission peaks of current are absolutely derived from the helicoid carbon strips or C–BN boundaries, giving rise to a spiral current analogous with an energized nano-solenoid. According to Ampere's Law, the energized nano-solenoid can generate a uniform and tremendous magnetic field of more than 1 tesla, closing to that generated by the main magnet of medical nuclear magnetic resonance. Moreover, the magnitude of magnetic field can be easily modulated by bias voltage, providing great promise for a nano-inductor to realize electromagnetic conversion at the nanoscale.

Graphical abstract: Nano-solenoid: helicoid carbon–boron nitride hetero-nanotube

Supplementary files

Article information

Article type
Paper
Submitted
05 Jun 2013
Accepted
09 Aug 2013
First published
12 Aug 2013

Nanoscale, 2013,5, 11902-11909

Nano-solenoid: helicoid carbon–boron nitride hetero-nanotube

Z. Zhang, C. Miao and W. Guo, Nanoscale, 2013, 5, 11902 DOI: 10.1039/C3NR02914J

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