A flexible quasi-solid-state thermoelectrochemical cell with high stretchability as an energy-autonomous strain sensor

被引:106
作者
Liang, Lirong [1 ]
Lv, Haicai [2 ]
Shi, Xiao-Lei [3 ]
Liu, Zhuoxin [2 ]
Chen, Guangming [2 ]
Chen, Zhi-Gang [3 ]
Sun, Guoxing [1 ]
机构
[1] Univ Macau, Inst Appl Phys & Mat Engn, Minist Educ, Joint Key Lab, Ave Univ, Taipa, Macao, Peoples R China
[2] Shenzhen Univ, Coll Mat Sci & Engn, Shenzhen 518055, Peoples R China
[3] Univ Southern Queensland, Ctr Future Mat, Springfield Cent, Qld 4300, Australia
关键词
CARBON-NANOTUBE; HEAT; HYDROGELS; COMPOSITES; CONVERSION; SYSTEMS; FILMS;
D O I
10.1039/d1mh00775k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The design of effective energy systems is crucial for the development of flexible and wearable electronics. Regarding the direct conversion of heat into electricity, thermoelectrochemical cells (TECs) are particularly suitable for low-grade heat harvesting to enable flexible and wearable applications, despite the fact that the electrolyte leakage and complex packaging issues of conventional liquid-based TECs await to be further addressed. Herein, a quasi-solid-state TEC is assembled using the polyacrylamide/acidified-single-walled carbon nanotube (PAAm/a-SWCNT) composite hydrogel, developed via a facile in situ free-radical polymerization route with tin(iv) chloride/tin(ii) chloride (Sn4+/Sn2+) as the redox couple. The as-fabricated TEC with a 0.6 wt% a-SWCNT content presents a large thermoelectrochemical Seebeck coefficient of 1.59 +/- 0.07 mV K-1 and exhibits excellent stability in thermoelectrochemical performance against large mechanical stretching and deformation. Owing to this superior stretchability, the as-fabricated TEC is further assembled into an energy-autonomous strain sensor, which shows high sensitivity. The strategy of utilizing a quasi-solid-state TEC for energy-autonomous strain sensing unveils the great potential of heat-to-electricity conversion in flexible and wearable electronics.
引用
收藏
页码:2750 / 2760
页数:11
相关论文
共 52 条
[1]   High Seebeck coefficient redox ionic liquid electrolytes for thermal energy harvesting [J].
Abraham, Theodore J. ;
MacFarlane, Douglas R. ;
Pringle, Jennifer M. .
ENERGY & ENVIRONMENTAL SCIENCE, 2013, 6 (09) :2639-2645
[2]   Seebeck coefficients in ionic liquids -prospects for thermo-electrochemical cells [J].
Abraham, Theodore J. ;
MacFarlane, Douglas R. ;
Pringle, Jennifer M. .
CHEMICAL COMMUNICATIONS, 2011, 47 (22) :6260-6262
[3]   Stretchable, Skin-Mountable, and Wearable Strain Sensors and Their Potential Applications: A Review [J].
Amjadi, Morteza ;
Kyung, Ki-Uk ;
Park, Inkyu ;
Sitti, Metin .
ADVANCED FUNCTIONAL MATERIALS, 2016, 26 (11) :1678-1698
[4]   Extremely Stretchable Strain Sensors Based on Conductive Self-Healing Dynamic Cross-Links Hydrogels for Human-Motion Detection [J].
Cai, Guofa ;
Wang, Jiangxin ;
Qian, Kai ;
Chen, Jingwei ;
Li, Shaohui ;
Lee, Pooi See .
ADVANCED SCIENCE, 2017, 4 (02)
[5]   Diameter-dependent ion transport through the interior of isolated single-walled carbon nanotubes [J].
Choi, Wonjoon ;
Ulissi, Zachary W. ;
Shimizu, Steven F. E. ;
Bellisario, Darin O. ;
Ellison, Mark D. ;
Strano, Michael S. .
NATURE COMMUNICATIONS, 2013, 4
[6]   A semi-interpenetrating network ionic composite hydrogel with low modulus, fast self-recoverability and high conductivity as flexible sensor [J].
Ding, Hongyao ;
Liang, Xiaoxu ;
Wang, Qiao ;
Wang, Miaomiao ;
Li, Zongjin ;
Sun, Guoxing .
CARBOHYDRATE POLYMERS, 2020, 248
[7]   Modeling the effects of pH and ionic strength on swelling of anionic polyelectrolyte gels [J].
Drozdov, A. D. ;
Christiansen, J. deClaville .
MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2015, 23 (05)
[8]   P-N conversion in thermogalvanic cells induced by thermo-sensitive nanogels for body heat harvesting [J].
Duan, Jiangjiang ;
Yu, Boyang ;
Liu, Kang ;
Li, Jia ;
Yang, Peihua ;
Xie, Wenke ;
Xue, Guobin ;
Liu, Rong ;
Wang, Hui ;
Zhou, Jun .
NANO ENERGY, 2019, 57 :473-479
[9]   Aqueous thermogalvanic cells with a high Seebeck coefficient for low-grade heat harvest [J].
Duan, Jiangjiang ;
Feng, Guang ;
Yu, Boyang ;
Li, Jia ;
Chen, Ming ;
Yang, Peihua ;
Feng, Jiamao ;
Liu, Kang ;
Zhou, Jun .
NATURE COMMUNICATIONS, 2018, 9
[10]   Thermo-electrochemical cells for waste heat harvesting - progress and perspectives [J].
Dupont, M. F. ;
MacFarlane, D. R. ;
Pringle, J. M. .
CHEMICAL COMMUNICATIONS, 2017, 53 (47) :6288-6302