4.8 Article

A Facile Surfactant-Assisted Reflux Method for the Synthesis of Single-Crystalline Sb2Te3 Nanostructures with Enhanced Thermoelectric Performance

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 7, 期 26, 页码 14263-14271

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.5b02504

关键词

antimony telluride; growth mechanism; reflux method; thermoelectric materials; transport properties

资金

  1. National Natural Science Foundation of China [51172234]
  2. Science and Technology Planning Project of Guangdong Province, China [2013B050800006]
  3. External Cooperation Program of BIC, Chinese Academy of Sciences [182344KYSB20130006]

向作者/读者索取更多资源

Antimony telluride (Sb2Te3) and its based alloys are of importance to p-type semiconductors for thermoelectric applications near room temperature. Herein, we report a simple, low-energy intensive, and scalable surfactant-assisted reflux method for the synthesis of Sb2Te3 nanoparticles in the solvent ethylene glycol (EG) at low temperatures (120-180 degrees C). The formation mechanism of platelike Sb2Te3 nanoparticles is proposed. Also, it is found that the size, shape, and chemical composition of the products could be controlled by the introduction of organic surfactants (CTAB, PVP, etc.) or inorganic salts (EDTA-Na-2, NaOH, etc.). Additionally, the collected Sb2Te3 nanoparticles were further fabricated into nanostructured pellets using cold-compaction and annealing techniques. Low resistivity [(7.37-19.4) X 10(-6) Omega m], moderate Seebeck coefficient (103-141 mu V K-1), and high power factor (10-16 x 10(-4) W m(-1) K-2) have been achieved in our Sb2Te3-nanostructured bulk materials. The relatively low thermal conductivity (1.32-1.55 W m(-1) K-1) is attained in the nanobulk made of PVP-modified nanoparticles, and values of ZT in the range of 0.24-0.37 are realized at temperatures ranging from 50 to 200 degrees C. Our researches set forth a new avenue in promoting practical applications of Sb2Te3-based thermoelectric power generation or cooling devices.

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