Issue 2, 2017

Semimetal to semiconductor transition and polymer electrolyte gate modulation in single-crystalline bismuth nanowires

Abstract

A semimetal to semiconductor transition in low-dimensional Bi nanowires is theoretically predicted based on the quantum confinement effect, which results in the enhancement of the thermoelectric performance. However, this transition has rarely been observed in the transport properties of gate modulation because of there being too few charge carriers induced by a typical electric field effect. In this paper, we report on our observations of the on–off state in a Bi nanowire using a polyethylene oxide/LiClO4 electrolyte gate, which produces a much larger effect than a back-gate. The carrier density of the surface state was found to be consistent with previously reported results. The intrinsic properties of the Bi nanowires, as obtained by temperature- and diameter-dependent gate modulations, are also discussed.

Graphical abstract: Semimetal to semiconductor transition and polymer electrolyte gate modulation in single-crystalline bismuth nanowires

Article information

Article type
Paper
Submitted
29 Aug 2016
Accepted
06 Dec 2016
First published
07 Dec 2016

Nanoscale, 2017,9, 923-929

Semimetal to semiconductor transition and polymer electrolyte gate modulation in single-crystalline bismuth nanowires

J. Kim and W. Lee, Nanoscale, 2017, 9, 923 DOI: 10.1039/C6NR06839A

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