Literature DB >> 24722627

Electronic and phonon transport in Sb-doped Ti(0.1)Zr(0.9)Ni(1+x)Sn(0.975)Sb(0.025) nanocomposites.

Yuanfeng Liu1, Alexander Page, Pranati Sahoo, Hang Chi, Ctirad Uher, Pierre F P Poudeu.   

Abstract

The thermoelectric behavior of n-type Sb-doped half-Heusler (HH)-full-Heusler (FH) nanocomposites with general composition Ti(0.1)Zr(0.9)Ni(1+x)Sn(0.975)Sb(0.025) (x = 0, 0.02, 0.04, 0.1) was investigated in the temperature range from 300 to 775 K. Samples used for structural characterization and transport measurements were obtained through the solid-state reaction of high purity elements at 950 °C and densification of the resulting polycrystalline powders using a uniaxial hot press. X-ray diffraction study of the powder samples suggested the formation of single-phase HH alloys regardless of the Ni concentration (x value). However, high resolution transmission electron microscopy investigation revealed the presence of spherical nanoprecipitates with a broad size distribution coherently embedded in the HH matrix. The size range and dispersion of the precipitates depend on the concentration of Ni in the starting mixture. Well dispersed nanoprecipitates with size ranging from 5 nm to 50 nm are observed in the nanocomposite with x = 0.04, while severe agglomeration of large precipitates (>50 nm) is observed in samples with x = 0.1. Hall effect measurements of various samples indicate that the carrier concentration within the Sb-doped HH matrix remains nearly constant (~7 × 10(20) cm(-3)) for samples with x = 0.02 and x = 0.04, whereas a significant increase of the carrier concentration to ~9 × 10(20) cm(-3) is observed for the sample with x = 0.1. Interestingly, only a marginal change in thermopower value is observed for various samples despite the large difference in the carrier density. In addition, the carrier mobility remains constant up to x = 0.04 suggesting that the small nanoprecipitates in these samples do not disrupt electronic transport within the matrix. Remarkably, a large reduction in the total thermal conductivity is observed for all nanocomposites, indicating the effectiveness of the embedded nanoprecipitates in scattering phonons while enabling efficient electron transfer across the matrix/inclusion interfaces.

Entities:  

Year:  2014        PMID: 24722627     DOI: 10.1039/c4dt00430b

Source DB:  PubMed          Journal:  Dalton Trans        ISSN: 1477-9226            Impact factor:   4.390


  1 in total

1.  Phase Boundary Mapping in ZrNiSn Half-Heusler for Enhanced Thermoelectric Performance.

Authors:  Xiaofang Li; Pengbo Yang; Yumei Wang; Zongwei Zhang; Dandan Qin; Wenhua Xue; Chen Chen; Yifang Huang; Xiaodong Xie; Xinyu Wang; Mujin Yang; Cuiping Wang; Feng Cao; Jiehe Sui; Xingjun Liu; Qian Zhang
Journal:  Research (Wash D C)       Date:  2020-01-30
  1 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.