热电材料
材料科学
热电效应
纳米技术
灵活性(工程)
工程物理
沉积(地质)
热电发电机
光电子学
工作(物理)
功率密度
柔性电子器件
脆性
试验台
纳米尺度
功率(物理)
可再生能源
弯曲
灵活的显示器
机械工程
光伏
航程(航空)
石墨
二极管
能量收集
梁(结构)
制作
作者
Zhao Hu,Airan Li,Naoki Sato,Xinzhi Wu,Longquan Wang,Xinyuan Wang,T. Aizawa,Toshiki Mori
标识
DOI:10.1038/s41467-026-69451-8
摘要
Flexible thermoelectric materials hold great promise for sustainable energy supply in flexible electronics. However, beyond the long-standing champion Bi2Te3-based flexible films, high-performance alternatives remain scarce. Here, we report a promising flexible thermoelectric material based on eco-friendly MgAgSb, a bulk-proven high-performance system whose development in flexible form has long been hindered by its intrinsic brittleness and phase complexity. Using molecular beam deposition, we manage to precisely stabilize MgAgSb within its α-phase range and finely control its stoichiometry. As a result, we successfully fabricate the α-MgAgSb film with exceptional performance, achieving a room temperature zT of 0.8 and a peak power factor of 19.3 μW cm-1 K-2, ranking among the promising flexible thermoelectric materials developed. Moreover, the α-MgAgSb film is revealed to exhibit notable flexibility and stability under repeated bending and heating. Leveraging this high-performance stable α-MgAgSb film, the flexible thermoelectric device delivers a maximum normalized power density of 4.9 μW cm-2 K-2. This work opens a pathway for flexible MgAgSb applications and offers strong potential for realizing self-powered flexible technologies.
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