Reductive processing of single walled carbon nanotubes for high volumetric performance supercapacitors
Author(s)
Sirisinudomkit, Pichamon
Senokos, Evgeny
Rubio Carrero, Noelia
Shaffer, Milo
Type
Journal Article
Abstract
Intrinsically, single walled carbon nanotubes (SWCNTs) are excellent candidates for electrochemical double layer supercapacitor (EDLC) electrodes, owing to their high electrical conductivity, high accessible surface area, and high aspect ratio/connectivity, which provide exceptional intrinsic gravimetric energy and power densities. However, in practice, local bundling due to strong intertube van der Waals interactions reduces the effective surface area; at larger scales, the bundling also creates low density networks that limit the volumetric electrochemical performance of practical electrodes. In this study, reductive charging is used to dissolve individual SWCNTs and assemble them to form relatively dense (0.34 g cm−3), thick (38 μm) ‘buckypaper’ electrodes, with high electrical conductivity (>400 S cm−1). Intermediate charging ratios (C : Na = 10 : 1) and carbon concentrations (0.125 M) provide greater SWCNT solubilisation and individualisation, and correlate with maximum volumetric capacitance of 74 F cmelectrode−3 at 10 mV s−1 in 1 M H2SO4. These optimised half-cell electrodes were implemented in full symmetric cell devices, prepared in both aqueous and ionic liquid electrolytes, using a bespoke bacterial cellulose (BC) ultrathin separator (7 microns) to minimize parasitic mass/volume. The full cell performance in ionic liquid reached maximum energy and power densities of 2.6 Wh kg−1 (2.2 mWh cm−3), and 10.2 kW kg−1 (8.3 W cm−3), respectively, normalised by the total mass and volume of device (electrodes, electrolyte, and separator; no separate current collector is needed). The relatively effective transfer of half-cell to full-cell performance is encouraging but could be optimized further in future. Appropriate normalisations for supercapacitor electrodes and devices are discussed in detail. Thin BC-based separators have wide applicability to other electrochemical devices.
Date Issued
2021-03-21
Date Acceptance
2021-02-02
Citation
Materials Advances, 2021, 2 (6), pp.1981-1992
ISSN
2633-5409
Start Page
1981
End Page
1992
Journal / Book Title
Materials Advances
Volume
2
Issue
6
Copyright Statement
© 2021 The Author(s). Published by the Royal Society of Chemistry. This article is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported Licence. Material from this article can be used in other publications provided that the correct acknowledgement is given with the reproduced material and it is not used for commercial purposes.
License URL
Sponsor
Commission of the European Communities
Clean Sky Joint Undertaking
Engineering & Physical Science Research Council (EPSRC)
European Office Of Aerospace Research & Developmen
Identifier
https://pubs.rsc.org/en/content/articlelanding/2021/MA/D0MA00898B
Grant Number
881603
738085
EP/P007465/1
FA9550-17-1-0251
Publication Status
Published
Date Publish Online
2021-02-02