Highly Porous Thermoelectric Nanocomposites with Low Thermal Conductivity and High Figure of Merit from Large‐Scale Solution‐Synthesized Bi2Te2.5Se0.5 Hollow Nanostructures

Abstract

To enhance the performance of thermoelectric materials and enable access to their widespread applications, it is beneficial yet challenging to synthesize hollow nanostructures in large quantities, with high porosity, low thermal conductivity (κ) and excellent figure of merit (z T). Herein we report a scalable (ca. 11.0 g per batch) and low‐temperature colloidal processing route for Bi2Te2.5Se0.5 hollow nanostructures. They are sintered into porous, bulk nanocomposites (phi 10 mm×h 10 mm) with low κ (0.48 W m−1 K−1) and the highest z T (1.18) among state‐of‐the‐art Bi2Te3−xSex materilas. Additional benefits of the unprecedented low relative density (68–77 %) are the large demand reduction of raw materials and the improved portability. This method can be adopted to fabricate other porous phase‐transition and thermoelectric chalcogenide materials and will pave the way for the implementation of hollow nanostructures in other fields.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jan 12, 2017
Source ID
10.1002/anie.201612041

Entities

People

  • Biao Xu
  • G. Jeffery Snyder
  • Lin Zhou
  • Matthias T Agne
  • Tianli Feng
  • Xiulin Ruan
  • Yue Wu

Organizations

  • Ames National Laboratory
  • Defense Advanced Research Projects Agency
  • Iowa State University
  • Northwestern University
  • Office of Naval Research
  • Purdue University
  • United States Department of Energy

Tags

Fields of Study

  • Materials science

Readers

  • Distributed Systems and Data Platform Development
  • Nanocomposite Materials Science
  • Thermal Physics or Thermal Science.

Technology Areas

  • Microelectronics
  • Microelectronics - Graphene