Zhongwei Zhang, Fengting Mao, Min Yao, Shiyuan Zhao, Sijing Zhu, Zhengniu Pan, Jun-Liang Chen, Zhixiang Zhang, Qi Zhou, Wentao Zhang, Jianmin Chen, Jie Gao, Lei Miao
By the coordinated implementation of shallow impurity level engineering and multiscale defect engineering, this study achieves simultaneous optimization of electrical transport and thermal conduction in GeTe-based thermoelectric (TE) materials. This synergistic mechanism originates from the unique electronic configuration of Ni, whose d-sp orbital hybridization introduces shallow impurity levels that promote valence band convergence, thereby enhancing carrier effective mass and the Seebeck coefficient. Concurrently, in situ reactions between Ni and Ge form NiGe nanophases (10-30 nm), constructing multiscale defect structures that enable full-spectrum phonon scattering and suppress the lattice thermal conductivity of the Ge0.885Sb0.1Ni0.015Te sample to approximately ~0.8 W m-1 K-1 at 323 K. Leveraging this cooperative optimization, Ge0.885Sb0.1Ni0.015Te attains a peak ZT value of 2.15 at 773 K and an average ZTavg of ~1.45 (323–773 K). A fabricated single-leg device achieves a conversion efficiency of approximately ~10% under ∆T = 420 K, ranking among the top performances in the field. This work establishes a solid foundation for enhancing the performance and expanding the applications of GeTe-based TE materials.