Ren Wuyang, Xue Wenhua, Guo Shuping, He Ran, Deng Liangzi, Song Shaowei, Sotnikov Andrei, Nielsch Kornelius, van den Brink Jeroen, Gao Guanhui, Chen Shuo, Han Yimo, Wu Jiang, Chu Ching-Wu, Wang Zhiming, Wang Yumei, Ren Zhifeng
Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu, 610054, People's Republic of China.
Department of Physics and Texas Center for Superconductivity at the University of Houston (TcSUH), Houston, TX, 77204, USA.
Nat Commun. 2023 Aug 5;14(1):4722. doi: 10.1038/s41467-023-40492-7.
Studies of vacancy-mediated anomalous transport properties have flourished in diverse fields since these properties endow solid materials with fascinating photoelectric, ferroelectric, and spin-electric behaviors. Although phononic and electronic transport underpin the physical origin of thermoelectrics, vacancy has only played a stereotyped role as a scattering center. Here we reveal the multifunctionality of vacancy in tailoring the transport properties of an emerging thermoelectric material, defective n-type ZrNiBi. The phonon kinetic process is mediated in both propagating velocity and relaxation time: vacancy-induced local soft bonds lower the phonon velocity while acoustic-optical phonon coupling, anisotropic vibrations, and point-defect scattering induced by vacancy shorten the relaxation time. Consequently, defective ZrNiBi exhibits the lowest lattice thermal conductivity among the half-Heusler family. In addition, a vacancy-induced flat band features prominently in its electronic band structure, which is not only desirable for electron-sufficient thermoelectric materials but also interesting for driving other novel physical phenomena. Finally, better thermoelectric performance is established in a ZrNiBi-based compound. Our findings not only demonstrate a promising thermoelectric material but also promote the fascinating vacancy-mediated anomalous transport properties for multidisciplinary explorations.
自从空位介导的反常输运特性赋予固体材料引人入胜的光电、铁电和自旋电行为以来,相关研究在多个领域蓬勃发展。尽管声子和电子输运是热电学物理起源的基础,但空位仅作为散射中心发挥了传统作用。在此,我们揭示了空位在调控一种新兴热电材料——缺陷n型ZrNiBi的输运特性方面的多功能性。声子动力学过程在传播速度和弛豫时间两方面都受到介导:空位诱导的局部软键降低了声子速度,而空位引起的声光声子耦合、各向异性振动和点缺陷散射缩短了弛豫时间。因此,缺陷ZrNiBi在半赫斯勒家族中表现出最低的晶格热导率。此外,空位诱导的平带在其电子能带结构中显著存在,这不仅对电子充足的热电材料是理想的,而且对于驱动其他新颖物理现象也很有趣。最后,在一种基于ZrNiBi的化合物中实现了更好的热电性能。我们的发现不仅展示了一种有前景的热电材料,还推动了空位介导的反常输运特性在多学科探索中的应用。