加速老化
电容
材料科学
内阻
电压
电容器
复合材料
高压
电气工程
电阻和电导
开路电压
等效串联电阻
低压
光电子学
自行车
分析化学(期刊)
作者
Seiji Kumagai,Yugo Kanamoto,Cheng Jie Chng,Yusuke Abe,Mahmudul Kabir,Takuya Eguchi,Daisuke Tashima
标识
DOI:10.1016/j.est.2025.118522
摘要
Electric double-layer capacitors (EDLCs) have promising automotive applications owing to their high power density, long cycle life, and enhanced safety. To meet the stringent requirements for severe conditions and long lifetimes, their aging behavior under increased applied voltage and operating temperature should be explored. Herein, EDLC cells were evaluated by cycling and floating tests to determine the accelerated aging factors for aging indices (specific capacitance decrease and internal resistance increase) under increased voltage and temperature. The cells were assembled using well-known materials, namely YP-50F activated carbon, polytetrafluoroethylene binder, tetraethylammonium tetrafluoroborate/propylene carbonate non-aqueous electrolyte, and a paper-based separator. The aging tests were performed under standard (3.0 V/25 °C), high-voltage (3.5 V/25 °C), and high-temperature (3.0 V/60 °C) conditions. The specific decrease in specific capacitance and specific increase in internal resistance were proportional to the square roots of the number of cycles and floating time in the early stage of aging (>80 % capacitance decrease and <1.5-fold internal resistance increase). Through linear regression analyses of these relationships, the accelerated aging factors under increased voltage and temperature were determined. The cell voltage increase from 3.0 to 3.5 V accelerated the specific capacitance decrease and internal resistance increase 2.8 and 13.6 times, respectively, in the cycling test and 16.2 and 17.3 times, respectively, in the floating test. Accelerated aging induced by the temperature increase from 25 to 60 °C was moderate in comparison. The floating test under the high-voltage (3.5 V) condition at 25 °C shortened the testing time by ∼1/16. • Aging of EDLCs was accelerated under increased operating voltage and temperature. • EDLC cells made of well-known materials were assessed by cycling and floating tests. • Capacitance and resistance related to square root of cycle number and floating time. • Floating voltage increase from 3.0 to 3.5 V at 25 °C shortened the EDLC lifetime. • Floating voltage increase also reduced the testing time by 1/16.
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