Chen Li, Jie Huang, Yujie Zhang, Hao Yang, Haorui Hua, Dan Feng, Zhen-Hua Ge, Ming Huang, Xiyang Wang, Dan Zhang, Liangwei Fu
Zintl phases are crucial for Te-free power generation and electrical cooling modules, which are considered next-generation thermoelectric (TE) technology. While n-type Zintl materials, such as Mg3Sb2, have achieved remarkable performance, their p-type counterparts are restricted by electron-phonon coupling. This work demonstrates a cost-effective p-type CdSb-based Zintl material with high TE performance. We find that applying entropy engineering can sharply enhance the solid solubility of Cu in CdSb. Cu doping in entropy-engineered Cd0.5Zn0.5Sb raises carrier concentration. More importantly, Cu boosts carrier mobility to about 222 cm2 V-1 s-1 by screening ionized impurity scattering and enhancing covalent bonding across the cleavage plane along the [1 0 0] direction. Additionally, Cu doping induces dislocation scattering and lattice softening, significantly reducing lattice thermal conductivity. As a result, the Cd0.46Cu0.04Zn0.5Sb material achieves a high ZT of 1.5 at 573 K. Its high performance is verified by integrated TE devices. This work validates Cd1- xZnxSb Zintl phases as highly efficient p-type TE materials for practical applications.