Hu Hanwen, Liao Yiyan, Tan Shanshan, Li Chen, Tang Jun, Zheng Kun, Yang Lei
Beijing Key Laboratory of Microstructure and Properties of Solids, Beijing University of Technology, Beijing 100124, China.
School of Materials Science & Engineering, Sichuan University, Chengdu, 610064, China.
Nanoscale. 2024 Nov 21;16(45):21031-21038. doi: 10.1039/d4nr03962a.
AgSe has emerged as a promising n-type thermoelectric material; however, its application is limited mainly due to the strongly coupled charge carrier and phonon transport. Enhancing phonon scattering by constructing interfacial complexes often results in low carrier mobility due to its strong carrier scattering resulting from the high energy barrier at the multiphase interface. Inspired by the cell membrane with selective permeability, we construct bio-mimic grain boundaries with TiO and MoS co-decoration in AgSe to decouple electron scattering from strong phonon scattering. The nanostructured TiO with a high dielectric constant screens the interfacial Coulomb potential, ensuring efficient carrier transport and reducing the grain boundary barriers, while the few-layer MoS provides significant phonon scattering to further reduce the thermal conductivity. This method effectively enhances the value of AgSe by as much as 60% and also can significantly enhance the theoretical output performance of the thermoelectric device, which highlights the effectiveness of the bio-mimic grain boundary engineering strategy.
硒化银已成为一种很有前景的n型热电材料;然而,其应用主要受到电荷载流子与声子传输强耦合的限制。通过构建界面复合物来增强声子散射,由于多相界面处的高能垒导致强烈的载流子散射,常常会导致低载流子迁移率。受具有选择性渗透性的细胞膜启发,我们在硒化银中构建了TiO和MoS共修饰的仿生晶界,以使电子散射与强声子散射解耦。具有高介电常数的纳米结构TiO屏蔽了界面库仑势,确保了高效的载流子传输并降低了晶界势垒,而几层MoS提供了显著的声子散射,进一步降低了热导率。该方法有效地将硒化银的 值提高了多达60%,还能显著提高热电装置的理论输出性能,这突出了仿生晶界工程策略的有效性。