High performance supercapacitors based on wood-derived thick carbon electrodes synthesized via green activation process

Electrical double-layer supercapacitors are a type of electrochemical energy devices that are promising for next-generation energy storage, while they still suffer from great challenges of inferior energy density and poor tolerance to harsh conditions toward practical applications. Herein, by design...

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Veröffentlicht in:Inorganic chemistry frontiers 2022-11, Vol.9 (23), p.6108-6123
Hauptverfasser: Yan, Bing, Feng, Li, Zheng, Jiaojiao, Zhang, Qian, Jiang, Shaohua, Zhang, Chunmei, Ding, Yichun, Han, Jingquan, Chen, Wei, He, Shuijian
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Sprache:eng
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Zusammenfassung:Electrical double-layer supercapacitors are a type of electrochemical energy devices that are promising for next-generation energy storage, while they still suffer from great challenges of inferior energy density and poor tolerance to harsh conditions toward practical applications. Herein, by designing a thick carbon electrode with an ultrahigh mass loading (∼40 mg cm −2 ) from carbonization and activation of basswood, a supercapacitor is able to operate under harsh conditions such as fast charge/discharge rates (100 mA cm −2 ), ultralong cycle life (≥50 000 cycles), and ultralow temperature (−40 °C). The carbon electrodes inherit the vertical channels of basswood, which enhance the penetration and mass transport of electrolyte ions; they also possess rational micro/meso-sized pores and oxygen-containing functional groups induced by H 2 O 2 activation, which improve the ion transport kinetics of electrodes. As a consequence, the assembled supercapacitor achieves appreciable capacitive performance even with ultrahigh mass loading and at ultralow temperatures, which delivers a specific capacitance of 6205.7 mF cm −2 (221.6 F g −1 and 77.6 F cm −3 ) and 4886.4 mF cm −2 (174.5 F g −1 , 61.1 F cm −3 ) at ambient temperature and −40 °C, respectively. In addition, the device presents an ultralong working lifetime in harsh environments evidenced by a capacitance retention of 90.6% even after 70 000 cycles at −40 °C. Benefiting from the renewable precursor, green activation process, and encouraging capacitive performances, the H 2 O 2 -activated wood-derived carbon monoliths will be promising high mass-loading electrodes for developing supercapacitors working at ultralow temperatures.
ISSN:2052-1553
2052-1545
2052-1553
DOI:10.1039/D2QI01914K