Bismuth telluride-based thermoelectric generators: Advances in synthesis, performance enhancement, and device applications

碲化铋 热电效应 材料科学 热电发电机 光电子学 热电材料 碲化物 纳米技术 工程物理 电气工程 工程类 物理 冶金 热力学
作者
Weng Pin Wong,George Elsa,Muhammad Norhaffis Mustafa,Rashmi Walvekar,Arshid Numan,Mohammad Khalid,Phei Li Lau
出处
期刊:Journal of Power Sources [Elsevier BV]
卷期号:653: 237722-237722 被引量:6
标识
DOI:10.1016/j.jpowsour.2025.237722
摘要

Thermoelectric (TE) devices are increasingly recognised for their ability to convert waste heat into electricity, offering a sustainable solution for low-power energy harvesting. Among TE materials, bismuth telluride (Bi 2 Te 3 )-based compounds demonstrate outstanding performance at room temperature (RT), making them ideal candidates for thermoelectric generators (TEGs). Recent research has focused on enhancing the TE properties of Bi 2 Te 3 -based materials, particularly through doping strategies, although the mechanisms underlying these improvements remain underexplored. Additionally, the mechanical performance of Bi 2 Te 3 -based materials, which is vital for practical applications, has only recently received attention. This review summarises the developments in Bi 2 Te 3 -based TE materials over the past decade, including general synthesis techniques for bulk and thin-film materials, as well as doping and other methods to enhance the TE performance. It also assesses the mechanical and TE performance of Bi 2 Te 3 -based devices, highlighting their novel designs, durability, flexibility and efficiency in various application ranging from the energy harvesting, thermal management and sensing applications. Strategies such as material doping and thermal annealing have been discussed for their potential to optimise TE properties. The TE conversion efficiencies of Bi 2 Te 3 -based TEGs generally range from 6 % to 7 %. Future research should focus on refining these methods, exploring combined strategies and optimisation of each preparation steps, and improving design parameters to boost performance while ensuring device sustainability and long-term flexibility under thermal and mechanical cycles. • Bi 2 Te 3 -based TE devices convert waste heat into electricity efficiently. • Bi 2 Te 3 excels in room-temp TE performance. • Doping and annealing strategies enhance the TE properties of Bi 2 Te 3 materials. • Mechanical performance of Bi 2 Te 3 devices is crucial for practical applications. • TE conversion efficiencies of Bi 2 Te 3 -based TEGs range from 6 %–7 %.
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