Seebeck Tuning in Chalcogenide Nanoplate Assemblies by Nanoscale Heterostructuring

  • Rutvik J. Mehta
  • , Chinnathambi Karthik
  • , Binay Singh
  • , Ranganath Teki
  • , Theo Borca-Tasciuc
  • , Ganpati Ramanath
  • , Karthik Chinnathambi

Research output: Contribution to journalArticlepeer-review

68 Scopus citations

Abstract

Chalcogenide nanostructures offer promise for obtaining nanomaterials with high electrical conductivity, low thermal conductivity, and high Seebeck coefficient. Here, we demonstrate a new approach of tuning the Seebeck coefficient of nanoplate assemblies of single-crystal pnictogen chalcogenides by heterostructuring the nanoplates with tellurium nanocrystals. We synthesized bismuth telluride and antimony telluride nanoplates decorated with tellurium nanorods and nanofins using a rapid, scalable, microwave-stimulated organic surfactant-directed technique. Heterostructuring permits two- to three-fold factorial tuning of the Seebeck coefficient, and yields a 40% higher value than the highest reported for bulk antimony telluride. Microscopy and spectroscopy analyses of the nanostructures suggest that Seebeck tunability arises from carrier-energy filtration effects at the Te−chalcogenide heterointerfaces. Our approach of heterostructuring nanoscale building blocks is attractive for realizing high figure-of-merit thermoelectric nanomaterials.

Original languageAmerican English
JournalACS Nano
Volume4
Issue number9
StatePublished - 2 Sep 2010

Keywords

  • Seebeck coefficient
  • chalcogenide nanostructures
  • heterostructures
  • interfaces
  • thermoelectrics

EGS Disciplines

  • Materials Science and Engineering

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