Kihoi Samuel Kimani, Yang Tae-Youl, Lee Ho Seong
Department of Materials Science and Engineering, Chungnam National University, Daejeon, 34134, Republic of Korea.
Department of Materials Science and Metallurgical Engineering, Kyungpook National University, 80 Daehak-ro, Buk-gu, Daegu, 41566, Republic of Korea.
Small. 2024 Nov 30:e2409315. doi: 10.1002/smll.202409315.
Recent advances in high-performance thermoelectric materials have sparked significant interest, particularly in SnTe, a mid-temperature group-IV chalcogenide that is both eco-friendly and cost-effective. However, compared to other group-IV chalcogenides, there remains a substantial scope for enhancing the thermoelectric performance of SnTe. In the past four years (since 2020), numerous compelling reports have proposed novel strategies to narrow this gap and boost the performance of SnTe-based materials, thereby building upon previous advancements. These recent advancements are comprehensively summarized in this timely review. This review reports three essential facets critical to the advancement of high-performance SnTe materials: electrical properties, thermal properties, and the overly overlooked mechanical properties. First, a brief theoretical exposition is presented, subsequently detailing empirically verified techniques for achieving superior SnTe-based materials. The intrinsic prevalence of tin vacancies (V) in SnTe classifies it as a p-type thermoelectric material. Here, it is unveiled for the first time, recent significant breakthroughs in the development of n-type SnTe. This advancement enables the development of an all-SnTe-based thermoelectric device. Additional attention is devoted to emerging trends that further amplify the performance of SnTe. With persistent efforts, achieving a ZT greater than 2 in SnTe-based materials is inevitable.
高性能热电材料的最新进展引发了广泛关注,尤其是在SnTe方面,它是一种中温IV族硫族化物,既环保又经济高效。然而,与其他IV族硫族化物相比,提高SnTe的热电性能仍有很大空间。在过去四年(自2020年以来),众多引人注目的报告提出了新的策略来缩小这一差距并提高基于SnTe的材料的性能,从而在以往进展的基础上更进一步。本及时综述全面总结了这些最新进展。本综述报告了高性能SnTe材料发展的三个关键方面:电学性质、热学性质以及被过度忽视的力学性质。首先进行简要的理论阐述,随后详细介绍经实验验证的制备优质SnTe基材料的技术。SnTe中锡空位(V)的固有存在使其归类为p型热电材料。在此,首次揭示了n型SnTe开发中的近期重大突破。这一进展使得全SnTe基热电装置的开发成为可能。还额外关注了进一步提升SnTe性能的新兴趋势。通过持续努力,在基于SnTe的材料中实现大于2的ZT值是必然的。