TY - JOUR
T1 - Improved
T2 - ZT in Nb5Ge3-GeTe thermoelectric nanocomposite
AU - Cao, Jing
AU - Tan, Xian Yi
AU - Jia, Ning
AU - Lan, Da
AU - Solco, Samantha Faye Duran
AU - Chen, Kewei
AU - Chien, Sheau Wei
AU - Liu, Hongfei
AU - Tan, Chee Kiang Ivan
AU - Zhu, Qiang
AU - Xu, Jianwei
AU - Yan, Qingyu
AU - Suwardi, Ady
N1 - Publisher Copyright:
© The Royal Society of Chemistry.
PY - 2022
Y1 - 2022
N2 - Robust electronic transport properties is a crucial in designing high performance thermoelectrics. A key similarity between superconductor and thermoelectric lies in their generally high electrical conductivity, even at above its superconducting temperature. In this work, we design a nanocomposite between Nb5Ge3 and GeTe-based thermoelectric to improve its thermoelectric figure of merit zT. Phase and microstructural characterization shows distinct Nb5Ge3 precipitates embed in Ge0.9Sb0.1Te matrix. In addition, experimental electronic and thermal transport analysis, together with density functional theory calculation were employed to show the synergistic effect of doping Sb and Nb5Ge3 nanocomposite approach. 10% Sb doping was found to optimize the electronic properties of the GeTe-based matrix. Further addition of 2 wt% Nb5Ge3 nanocomposite to the matrix enhances the phonon scattering, which consequently lowers the lattice thermal conductivity, which results in zT of up to 2.0 at 723 K. Such superconductor nanocomposite approach shown in this work can be employed to enhance the properties of other thermoelectric materials.
AB - Robust electronic transport properties is a crucial in designing high performance thermoelectrics. A key similarity between superconductor and thermoelectric lies in their generally high electrical conductivity, even at above its superconducting temperature. In this work, we design a nanocomposite between Nb5Ge3 and GeTe-based thermoelectric to improve its thermoelectric figure of merit zT. Phase and microstructural characterization shows distinct Nb5Ge3 precipitates embed in Ge0.9Sb0.1Te matrix. In addition, experimental electronic and thermal transport analysis, together with density functional theory calculation were employed to show the synergistic effect of doping Sb and Nb5Ge3 nanocomposite approach. 10% Sb doping was found to optimize the electronic properties of the GeTe-based matrix. Further addition of 2 wt% Nb5Ge3 nanocomposite to the matrix enhances the phonon scattering, which consequently lowers the lattice thermal conductivity, which results in zT of up to 2.0 at 723 K. Such superconductor nanocomposite approach shown in this work can be employed to enhance the properties of other thermoelectric materials.
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U2 - 10.1039/d1nr06962d
DO - 10.1039/d1nr06962d
M3 - Article
C2 - 34929726
AN - SCOPUS:85122876510
SN - 2040-3364
VL - 14
SP - 410
EP - 418
JO - Nanoscale
JF - Nanoscale
IS - 2
ER -