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Flexible films with three-dimensional ion transport channels: Carbon nanotubes@MnO2 as interlayer spacers in porous graphene electrodes for high-performance supercapacitors
Flexible supercapacitors have a high potential for application in wearable electronics and microdevices, but their commercial appeal is limited because of low energy density. To overcoming this challenge, this paper proposes a strategy to fabricate dense films with high specific capacitance. A compo...
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Published in: | Journal of alloys and compounds 2024-06, Vol.990, p.174455, Article 174455 |
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Main Authors: | , , , , , , , , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites |
Online Access: | Get full text |
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Summary: | Flexible supercapacitors have a high potential for application in wearable electronics and microdevices, but their commercial appeal is limited because of low energy density. To overcoming this challenge, this paper proposes a strategy to fabricate dense films with high specific capacitance. A composite film with rapid ion diffusion channels and a high density of 0.86 g cm–3 was synthesized by combining porous graphene nanosheets (PGNs), carbon nanotubes (CNTs), and MnO2 nanosheets. The incorporation of CNTs@MnO2 between graphene layers effectively mitigated aggregation and enhanced electrolyte ion diffusion within the dense graphene structure. PGNs and CNTs synergistically established a three-dimensional pathway for efficient ion transport while optimizing electron dynamics. In 1 mol L–1 Na2SO4 electrolyte, the material exhibited a gravimetric capacitance of up to 320 F g–1 at 1 A g–1 and a volumetric capacitance reached 275 F cm–3. Furthermore, the assembled asymmetric supercapacitors, PGNs-CNTs@MnO2//PGNs-CNTs, exhibited a gravimetric energy density of up to 26.4 Wh kg–1 and a volumetric energy density of up to 22.7 Wh L–1. These findings offer insights into advancing flexible supercapacitor technology for diverse applications.
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•PGNs-CNTs@MnO2 possesses a three-dimensional pathway for ion transport.•PGNs-CNTs@MnO2 exhibits a remarkable gravimetric capacitance of up to 320 F g–1 at a current density of 1 A g–1.•PGNs-CNTs@MnO2//PGNs-CNTs ASC achieves a gravimetric energy density of 26.43 Wh kg–1 at 446 W kg–1.•All-solid supercapacitors can attain a gravimetric energy density of up to 29.9 Wh kg–1 at 119.7 W kg–1. |
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ISSN: | 0925-8388 1873-4669 |
DOI: | 10.1016/j.jallcom.2024.174455 |