Issue 56, 2015

Unconventional co-existence of plasmon and thermoelectric activity in In:ZnO nanowires

Abstract

Metal-doped ZnO nanowires exhibit the unique property of being simultaneously thermoelectric transparent conductors and low-loss plasmonic materials in the near-IR and visible range. Using calculations from first principles, we identify the mechanisms that regulate this behavior at the nanoscale and we describe how nanostructuring affects the optoelectronic, vibrational and transport properties of In:ZnO nanowires. Our results reveal that In doping imparts a good electrical conductivity and provides an injected free charge sufficient to sustain a surface-plasmon-polariton excitation. At the same time, surface scattering effects efficiently quench the thermal conductivity along the wire, improving the thermoelectric figure of merit of the system with respect to the bulk material. The coexistence of plasmonic and thermoelectric characteristics fosters the design of a novel class of coupled nanostructured devices for photothermal-electrical energy conversion.

Graphical abstract: Unconventional co-existence of plasmon and thermoelectric activity in In:ZnO nanowires

Supplementary files

Article information

Article type
Paper
Submitted
07 Apr 2015
Accepted
12 May 2015
First published
12 May 2015

RSC Adv., 2015,5, 44865-44872

Author version available

Unconventional co-existence of plasmon and thermoelectric activity in In:ZnO nanowires

A. Catellani, A. Ruini, M. B. Nardelli and A. Calzolari, RSC Adv., 2015, 5, 44865 DOI: 10.1039/C5RA06199G

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