超级电容器
材料科学
电容
电解质
电极
电泳沉积
碳纤维
剥脱关节
化学工程
电化学
环境友好型
石墨烯
制作
电流密度
纳米技术
纳米材料
功率密度
碳纳米管
泥浆
复合数
镍
活性炭
作者
Barun Kumar Chakrabarti,Koray Bahadır Dönmez,Züleyha Kudaş,Zehra Çobandede,Reza Afshar Ghotli,Kamal Asadi-Pakdel,Shamik Chaudhuri,Farouq Sabri Mjalli,Lewis W. Le Fevre,Andrew John Forsyth,Robert A. W. Dryfe,Mustafa K. Bayazit,Chee Tong John Low
标识
DOI:10.1002/ente.202501601
摘要
This study explores sustainable alternatives for supercapacitor fabrication by integrating environmentally friendly carbon materials and efficient electrode processing techniques. Traditional supercapacitors rely heavily on expensive, nonrenewable, chemically synthesized carbon nanomaterials and are typically fabricated via time‐intensive N ‐methyl‐2‐pyrrolidone (NMP)‐based slurry casting. To address these limitations, two complementary approaches are presented. First, high‐performance graphene‐like carbon is synthesized from commercial AC (YEC‐8B), using electrochemical exfoliation (EEG). Second, electrophoretic deposition (EPD) is demonstrated as a scalable method for depositing biomass‐based (derived from waste hazelnut shells) activated carbon (BAC) or composites of BAC and EEG onto nickel foam current collectors, achieving a specific capacitance of 150 F g −1 and a power density of 21 kW kg −1 . These electrodes are tested with both pure and hybrid water‐in‐salt electrolytes in A7 pouch cell supercapacitors. The pouch cell configuration that is equipped with commercially sourced composite AC and EEG electrodes shows superior capacitance retention, with 10% improvements at 10–40 A g −1 during cycling, compared to the counterparts prepared from waste biomass.
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