中文版 | English
题名

Anionic entanglement-induced giant thermopower in ionic thermoelectric material Gelatin-CF3SO3K–CH3SO3K

作者
通讯作者Liu,Weishu
共同第一作者Li,Qikai; Han,Cheng Gong
发表日期
2023-10
DOI
发表期刊
EISSN
2667-1417
卷号3期号:5页码:100169
摘要

Ionic thermoelectric (i-TE) technologies can power Internet of Things (IoT) sensors by harvesting thermal energy from the environment because of their large thermopowers. Present research focuses mostly on using the interactions between ions and matrices to enhance i-TE performance, but i-TE materials can benefit from utilizing different methods to control ion transport. Here, we introduced a new strategy that employs an ion entanglement effect. A giant thermopower of 28 ​mV ​K was obtained in a quasi-solid-state i-TE Gelatin-CFSOK–CHSOK gel via entanglement between CFSO and CHSO anions. The anionic entanglement effect involves complex interactions between these two anions, slowing anionic thermodiffusion and thus suppressing bipolar effects and boosting p-type thermopower. A Au@Cu | Gelatin-CFSOK–CHSOK | Au@Cu i-TE device with a generator mode delivers a specific output energy density of 67.2 ​mJ ​m K during 2 ​h of discharging. Long-term operation of the i-TE generator for 10 days shows that the harvested energy density offers an average of 2 ​J ​m per day in a cyclic working-reactivation model at a temperature difference of 6 ​K. The results demonstrate that anionic entanglement is an effective strategy for achieving giant thermopower with i-TE gels, so they have excellent potential for powering IoT sensors.

关键词
相关链接[Scopus记录]
收录类别
语种
英语
学校署名
第一 ; 共同第一 ; 通讯
资助项目
Shenzhen Natural Science Funds for Distinguished Young Scholar[RCJC20210706091949018] ; Shenzhen Sci-Tech Fund[KYTDPT20181011104007] ; Shenzhen DRC project[[2018] 1433] ; Guangdong Innovative and Entrepreneurial Research Team Program Project[2016ZT06G587]
WOS研究方向
Electrochemistry ; Materials Science
WOS类目
Electrochemistry ; Materials Science, Multidisciplinary
WOS记录号
WOS:001106931700001
出版者
Scopus记录号
2-s2.0-85170415117
来源库
Scopus
出版状态
在线出版
引用统计
被引频次[WOS]:4
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/560042
专题工学院_材料科学与工程系
作者单位
1.Department of Materials Science and Engineering,Southern University of Science and Technology,Shenzhen,Guangdong,518055,China
2.Shenzhen Engineering Research Center for Novel Electronic Information Materials and Devices,Southern University of Science and Technology,Shenzhen,518055,China
3.Department of Mechanical Engineering,The University of Hong Kong,Pokfulam Road, Hong Kong,999077,Hong Kong
4.Center for Advanced Analytical Science,Guangzhou Key Laboratory of Sensing Materials and Devices,Guangdong Engineering Technology Research Center for Photoelectric Sensing Materials and Devices,School of Chemistry and Chemical Engineering,Guangzhou University,Guangzhou,510006,China
第一作者单位材料科学与工程系;  南方科技大学
通讯作者单位材料科学与工程系;  南方科技大学
第一作者的第一单位材料科学与工程系
推荐引用方式
GB/T 7714
Li,Qikai,Han,Cheng Gong,Wang,Shuaihua,等. Anionic entanglement-induced giant thermopower in ionic thermoelectric material Gelatin-CF3SO3K–CH3SO3K[J]. eScience,2023,3(5):100169.
APA
Li,Qikai.,Han,Cheng Gong.,Wang,Shuaihua.,Ye,Cai Chao.,Zhang,Xinbo.,...&Liu,Weishu.(2023).Anionic entanglement-induced giant thermopower in ionic thermoelectric material Gelatin-CF3SO3K–CH3SO3K.eScience,3(5),100169.
MLA
Li,Qikai,et al."Anionic entanglement-induced giant thermopower in ionic thermoelectric material Gelatin-CF3SO3K–CH3SO3K".eScience 3.5(2023):100169.
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57. eScience-4作.pdf(1977KB)----限制开放--
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