Literature DB >> 31441632

Compositional Tailoring for Realizing High Thermoelectric Performance in Hafnium-Free n-Type ZrNiSn Half-Heusler Alloys.

Nagendra S Chauhan1,2, Sivaiah Bathula1,2,3, Bhasker Gahtori1,2, Subhendra D Mahanti4, Amrita Bhattacharya5, Avinash Vishwakarma1,2, Ruchi Bhardwaj1,2, Vidya Nand Singh1, Ajay Dhar1,2.   

Abstract

Compositional tailoring enables fine-tuning of thermoelectric (TE) transport parameters by synergistic modulation of electronic and vibrational properties. In the present work, the aspects of compositionally tailored defects have been explored in ZrNiSn-based half-Heusler (HH) TE materials to achieve high TE performance and cost effectiveness in n-type Hf-free HH alloys. In off-stoichiometric Ni-rich ZrNi1+xSn alloys in a low Ni doping limit (x < 0.1), excess Ni induces defects (Ni/vacancy antisite + interstitials), which tend to cause band structure modification. In addition, the structural similarity of HH and full-Heusler (FH) compounds and formation energetics lead to an intrinsic phase segregation of FH nanoscale precipitates that are coherently dispersed within the ZrNiSn HH matrix as nanoclusters. A consonance was achieved experimentally between these two competing mechanisms for optimal HH composition having both FH precipitates and Ni/vacancy antisite defects in the HH matrix by elevating the sintering temperature up to the solubility limit range of the ZrNiSn system. Defect-mediated optimization of electrical and thermal transport via carrier concentration tuning, energy filtering, and possibly all scale-hierarchical architecture resulted in a maximum ZT ≈ 1.1 at 873 K for the optimized ZrNi1.03Sn composition. Our findings highlight the realistic prospect of enhancing TE performance via compositional engineering approach for wide applications of TE.

Entities:  

Keywords:  antisite defects; defects; half-Heusler; phase separation; thermoelectric

Year:  2019        PMID: 31441632     DOI: 10.1021/acsami.9b12599

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  1 in total

1.  Scalable colloidal synthesis of Bi2Te2.7Se0.3 plate-like particles give access to a high-performing n-type thermoelectric material for low temperature application.

Authors:  Nagendra S Chauhan; Oleg I Lebedev; Kirill Kovnir; Sergey V Pyrlin; Luis S A Marques; Marta M D Ramos; Brian A Korgel; Yury V Kolen'ko
Journal:  Nanoscale Adv       Date:  2020-11-02
  1 in total

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