Scalable fabrication of flexible thermoelectric generator with non-toxic Ga: ZnO and PEDOT:PSS thermoelements for wearable energy harvesting

被引:0
作者
Lemine, Aicha S. [1 ,2 ]
Bhadra, Jolly [2 ,3 ]
Maurya, Muni Raj [3 ]
Sadasivuni, Kishor Kumar [3 ]
Ahmad, Zubair [2 ,3 ]
Al-Thani, Noora J. [2 ]
Hasan, Anwarul [1 ,4 ]
机构
[1] Qatar Univ, Coll Engn, Dept Mech & Ind Engn, Doha 2713, Qatar
[2] Qatar Univ, Qatar Univ Young Scientists Ctr QUYSC, Doha 2713, Qatar
[3] Qatar Univ, Ctr Adv Mat CAM, Doha 2713, Qatar
[4] Qatar Univ, Biomed Res Ctr BRC, Doha 2713, Qatar
来源
MATERIALS TODAY COMMUNICATIONS | 2025年 / 42卷
关键词
Wearable; Thermoelectric; Generator; Ga:ZnO; PEDOT:PSS; Energy harvesting; THIN-FILMS; PERFORMANCE; TRANSPARENT; ENHANCEMENT; COMPOSITES;
D O I
10.1016/j.mtcomm.2024.111225
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study presents a lightweight, flexible thermoelectric generator (TEG) designed for sustainable energy harvesting in wearable electronics. The TEG integrates p-type PEDOT:PSS and n-type Ga:ZnO thermoelements, utilizing scalable drop-casting and 3D-printing techniques to address key concerns of sustainability, scalability, and safety. Unlike conventional TEGs that rely on toxic or rare-earth materials, this device employs predominantly earth-abundant, non-toxic components, offering a more cost-effective and environmentally friendly alternative. Structural analysis using FE-SEM and EDX revealed a relatively dense microstructure with uniform elemental distribution in the free-standing thermoelements, contributing to the device's mechanical flexibility and performance stability. The TEG, consisting of five thermoelement pairs, achieved a peak open-circuit voltage of 0.111 mV and a power output of 0.123 nW at a temperature difference (Delta T) of 10 K, demonstrating performance competitive with TEGs fabricated using more complex and expensive methods. When tested on a human wrist, the TEG generated 0.230 nW at a Delta T of 17 K, outperforming other wearable TEGs, with power increases observed during body movement. Additionally, the device maintained stable resistance at a 90(degrees )bending angle, enhancing its ability to conform to the body's shape for improved energy harvesting and efficiency. While the power output can be further improved, this TEG represents a notable advancement in flexibility, scalability, and the use of eco-friendly, cost-effective materials and fabrication methods. Addressing these critical challenges in wearable thermoelectrics paves the way for future self-powered health monitoring, fitness tracking, and environmental sensing applications.
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页数:9
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