Electrochemical and structural performances of carbon and glass fiber-reinforced structural supercapacitor composite at elevated temperatures

被引:2
|
作者
Anurangi, Jayani [1 ,2 ,3 ]
Herath, Madhubhashitha [1 ,4 ]
Galhena, Dona T. L. [5 ]
Epaarachchi, Jayantha [1 ,2 ]
机构
[1] Univ Southern Queensland, Sch Engn, Fac Hlth Engn & Sci, Toowoomba, Australia
[2] Univ Southern Queensland, Inst Adv Engn & Space Sci, Ctr Future Mat, Toowoomba, Australia
[3] Uva Wellassa Univ Sri Lanka, Fac Technol Studies, Dept Biosyst Technol, Passara Rd, Badulla, Sri Lanka
[4] Uva Wellassa Univ Sri Lanka, Fac Technol Studies, Dept Engn Technol, Passara Rd, Badulla, Sri Lanka
[5] Univ Cambridge, Churchill Coll, Storeys Way, Cambridge CB3 0DS, England
来源
关键词
structural energy storage; structural supercapacitor composite; electrochemical performance; structural properties; elevated temperatures; IONIC LIQUID;
D O I
10.1088/2631-6331/ad5e32
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The structural supercapacitor can store electrical energy and withstand structural loads while saving substantial weight in many structural applications. This study investigated the development of a structural supercapacitor with a fiber-reinforced polymer composite system and explored the operating temperature's influence on its performance. The electrochemical and mechanical properties of structural supercapacitors beyond the ambient temperature have not yet been studied; hence, evaluating parameters such as specific capacitance, energy density, cycle life, and structural performance at elevated temperatures are highly desired. We have designed and manufactured single and parallelly connected multilayer structural supercapacitor composites in this research. Carbon fibers were used as a bifunctional component, acting both as a current collector while acting as a mechanical reinforcement. In addition, glass fibers were added as the separator which is also acting as an integral reinforcement. The electrochemical and mechanical behavior of structural supercapacitors at elevated temperatures up to 85 degrees C were experimentally investigated. The test results revealed that at room temperature, the developed double-cell structural supercapacitor, which demonstrated an area-specific capacitance of 1.16 mF cm-2 and energy density of 0.36 mWh cm-2 at 0.24 mA cm-2, which are comparable to current achievements in structural supercapacitor research. The structural supercapacitor's tensile, flexural, and compression strengths were measured as 109.5 MPa, 47.0 MPa, and 50.4 MPa, respectively. The specific capacitance and energy density reached 2.58 mF cm-2 and 0.81 mWh cm-2, while tensile, flexural, and compression strengths were reduced to 70.9 MPa, 14.2 MPa, and 8.8 MPa, respectively, at 85 degrees C. These findings provide new comprehensive knowledge on structural supercapacitor devices suitable for applications operating within a temperature range from ambient conditions to 85 degrees C.
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页数:17
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