Tan Xian Yi, Dong Jinfeng, Liu Jiawei, Zhang Danwei, Solco Samantha Faye Duran, Sağlık Kıvanç, Jia Ning, You Ivan Joel Wen Jie, Chien Sheau Wei, Wang Xizu, Hu Lei, Luo Yubo, Zheng Yun, Soo Debbie Xiang Yun, Ji Rong, Goh Ken Choon Hwa, Jiang Yilin, Li Jing-Feng, Suwardi Ady, Zhu Qiang, Xu Jianwei, Yan Qingyu
Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis #08-03, Singapore, 138634, Republic of Singapore.
School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Ave, Block N4.1 #01-30, Singapore, 639798, Republic of Singapore.
Adv Sci (Weinh). 2024 Jun;11(23):e2400870. doi: 10.1002/advs.202400870. Epub 2024 Mar 29.
Thermoelectric materials are highly promising for waste heat harvesting. Although thermoelectric materials research has expanded over the years, bismuth telluride-based alloys are still the best for near-room-temperature applications. In this work, a ≈38% enhancement of the average ZT (300-473 K) to 1.21 is achieved by mixing BiSbTe with an emerging thermoelectric material SbSiTe, which is significantly higher than that of most BiSbTe-based composites. This enhancement is facilitated by the unique interface region between the BiSbTe matrix and SbSiTe-based precipitates with an orderly atomic arrangement, which promotes the transport of charge carriers with minimal scattering, overcoming a common factor that is limiting ZT enhancement in such composites. At the same time, high-density dislocations in the same region can effectively scatter the phonons, decoupling the electron-phonon transport. This results in a ≈56% enhancement of the thermoelectric quality factor at 373 K, from 0.41 for the pristine sample to 0.64 for the composite sample. A single-leg device is fabricated with a high efficiency of 5.4% at ΔT = 164 K further demonstrating the efficacy of the SbSiTe compositing strategy and the importance of the precipitate-matrix interface microstructure in improving the performance of materials for relatively low-temperature applications.
热电材料在废热回收方面极具潜力。尽管多年来热电材料研究不断拓展,但碲化铋基合金仍是近室温应用的最佳选择。在这项工作中,通过将BiSbTe与一种新兴热电材料SbSiTe混合,实现了平均ZT值(300 - 473 K)提高约38%,达到1.21,这显著高于大多数碲化铋基复合材料。这种提高得益于BiSbTe基体与具有有序原子排列的SbSiTe基析出物之间独特的界面区域,该区域促进了电荷载流子的传输,且散射极小,克服了限制此类复合材料ZT值提高的常见因素。同时,同一区域的高密度位错能有效散射声子,使电子 - 声子传输解耦。这导致在373 K时热电品质因数提高约56%,从原始样品的0.41提高到复合样品的0.64。制造了一个单腿器件,在ΔT = 164 K时效率高达5.4%,进一步证明了SbSiTe复合策略的有效性以及析出物 - 基体界面微观结构在提高相对低温应用材料性能方面的重要性。