TY - JOUR
T1 - Entropy-mediated phase stabilization and transport optimization for high-performance n-type AgBiTe2 thermoelectrics
AU - Li, Shan
AU - Wu, Xiuqun
AU - Zeng, Xianglong
AU - Qin, Xinyao
AU - Ye, Xinli
AU - Wang, Xiaodong
AU - Zhang, Qian
N1 - Publisher Copyright:
© 2026
PY - 2026/8/15
Y1 - 2026/8/15
N2 - The practical application of AgBiTe2, a promising thermoelectric candidate with intrinsically low thermal conductivity, is hindered by the thermodynamic instability of its cubic phase. In this work, we propose an entropy-engineering strategy via PbTe alloying to stabilize the cubic phase over the operating temperature range. Building upon this robust matrix, we employ Cd incorporation to optimize the thermoelectric transport properties. Specifically, Cd doping effectively optimizes the n-type carrier concentration while concurrently improving the Seebeck coefficient, suggesting a possible modification of the electronic structure. Microstructurally, Cd supersaturation induces a hierarchical defect architecture comprising Cd-enriched inclusions and dense dislocations. These multiscale features, integrated with intrinsic cation disorder, synergistically scatter phonons. Consequently, the optimized (AgBi0.94Cd0.06Te2)0.6(PbTe)0.4 achieves a peak zT of ∼0.51 at 632 K. This performance represents a ∼143% enhancement over state-of-the-art n-type AgBiTe2-based counterparts, establishing entropy-mediated stabilization as a viable route for advancing high-performance thermoelectric materials.
AB - The practical application of AgBiTe2, a promising thermoelectric candidate with intrinsically low thermal conductivity, is hindered by the thermodynamic instability of its cubic phase. In this work, we propose an entropy-engineering strategy via PbTe alloying to stabilize the cubic phase over the operating temperature range. Building upon this robust matrix, we employ Cd incorporation to optimize the thermoelectric transport properties. Specifically, Cd doping effectively optimizes the n-type carrier concentration while concurrently improving the Seebeck coefficient, suggesting a possible modification of the electronic structure. Microstructurally, Cd supersaturation induces a hierarchical defect architecture comprising Cd-enriched inclusions and dense dislocations. These multiscale features, integrated with intrinsic cation disorder, synergistically scatter phonons. Consequently, the optimized (AgBi0.94Cd0.06Te2)0.6(PbTe)0.4 achieves a peak zT of ∼0.51 at 632 K. This performance represents a ∼143% enhancement over state-of-the-art n-type AgBiTe2-based counterparts, establishing entropy-mediated stabilization as a viable route for advancing high-performance thermoelectric materials.
KW - AgBiTe
KW - Entropy engineering
KW - Phase stability
KW - Thermoelectric
UR - https://www.scopus.com/pages/publications/105045299867
U2 - 10.1016/j.jallcom.2026.190014
DO - 10.1016/j.jallcom.2026.190014
M3 - 文章
AN - SCOPUS:105045299867
SN - 0925-8388
VL - 1079
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 190014
ER -