Zhuang Hua-Lu, Yu Jincheng, Li Jing-Feng
State Key Laboratory of New Ceramics and Fine Processing School of Materials Science and Engineering Tsinghua University Beijing 100084 China.
Small Sci. 2024 Aug 8;5(3):2400284. doi: 10.1002/smsc.202400284. eCollection 2025 Mar.
Bismuth telluride-based thermoelectric (TE) materials have been commercially applied in near-room temperature refrigeration. However, enhancing their TE performance remains crucial for expanding their application fields. Nanocomposite strategy has been widely reported as an effective approach to improving the TE performance of bismuth telluride-based materials. In this review, the nanoinclusions are categorized into different groups, including nonmetallic hard nanoparticles, metallic nanoparticles, compounds with low thermal conductivity, and low-dimensional materials. A comprehensive overview of relevant researches and present typical cases and recent advancements is provided. It is worth noting that nonmetallic hard nanoparticles are most widely used for reinforcing bismuth telluride-based materials; the noticeable enhancement can be attributed to the interfaces that induce phonon scattering to reduce lattice thermal conductivity as well as multiple scattering effects along with energy filtering to increase the Seebeck coefficient. Although there exist challenges in terms of interface characterization and dispersion improvement for nanoinclusions, it is undeniable that the nanocomposite strategy offers a viable pathway to enhance the TE performance of bismuth telluride-based materials. Therefore, further exploration in this direction is warranted to promote the development and application of TE technology at near-room temperature.
碲化铋基热电(TE)材料已在近室温制冷领域得到商业应用。然而,提高其热电性能对于拓展其应用领域仍然至关重要。纳米复合策略已被广泛报道为提高碲化铋基材料热电性能的有效方法。在本综述中,纳米夹杂物被分为不同类别,包括非金属硬纳米颗粒、金属纳米颗粒、低导热率化合物和低维材料。本文提供了相关研究的全面概述,并介绍了典型案例和最新进展。值得注意的是,非金属硬纳米颗粒在增强碲化铋基材料方面应用最为广泛;显著的增强效果可归因于界面引起的声子散射降低晶格热导率,以及多重散射效应和能量过滤增加塞贝克系数。尽管纳米夹杂物在界面表征和分散性改善方面存在挑战,但不可否认的是,纳米复合策略为提高碲化铋基材料的热电性能提供了一条可行的途径。因此,有必要在这一方向上进一步探索,以推动近室温热电技术的发展和应用。