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Title:Electrochemical capacitance of CNF–Ti3C2Tx MXene-based composite cryogels in different electrolyte solutions for an eco-friendly supercapacitor
Authors:ID Kokol, Vanja (Author)
ID Lakshmanan, Subramanian (Author)
ID Vivod, Vera (Author)
Files:.pdf gels-11-00265.pdf (7,94 MB)
MD5: BCA1F5CCCE95C56B9FBF7984453C765C
 
URL https://www.mdpi.com/2310-2861/11/4/265
 
Language:English
Work type:Article
Typology:1.01 - Original Scientific Article
Organization:FS - Faculty of Mechanical Engineering
Abstract:Cellulose nanofibrils (CNFs) are promising materials for flexible and green supercapacitor electrodes, while Ti3C2Tx MXene exhibits high specific capacitance. However, the diffusion limitation of ions and chemical instability in the generally used highly basic (KOH, MXene oxidation) or acidic (H2SO4, CNF degradation) electrolytes limits their performance and durability. Herein, freestanding CNF/MXene cryogel membranes were prepared by deep freeze-casting (at −50 and −80 ◦C), using different weight percentages of components (10, 50, 90), and evaluated for their structural and physico-chemical stability in other less aggressive aqueous electrolyte solutions (Na2/Mg/Mn/K2-SO4, Na2CO3), to examine the influence of the ions transport on their pseudocapacitive properties. While the membrane prepared with 50 wt% (2.5 mg/cm2 ) of MXene loading at −80 ◦C shrank in a basic Na2CO3 electrolyte, the capacitance was performed via the forming of an electroactive layer on its interface, giving it high stability (90% after 3 days of cycling) but lower capacitance (8 F/g at 2 mV/s) than in H2SO4 (25 F/g). On the contrary, slightly acidic electrolytes extended the cations’ transport path due to excessive but still size-limited diffusion of the hydrated ions (SO4 2− > Na+ > Mn2+ > Mg2+) during membrane swelling, which blocked it, reducing the electroactive surface area and lowering conductivities (<3 F/g).
Keywords:cellulose nanofibrils, Ti3C2Tx MXene, freeze-casting, aqueous electrolytes, physico-chemical properties, electric double layer, pseudocapacitance
Publication status:Published
Publication version:Version of Record
Submitted for review:18.02.2025
Article acceptance date:31.03.2025
Publication date:03.04.2025
Publisher:MDPI
Year of publishing:2025
Number of pages:24 str.
Numbering:Vol. 11, iss. 4, [article no.] 265
PID:20.500.12556/DKUM-92414 New window
UDC:677.46:620.3
ISSN on article:2310-2861
COBISS.SI-ID:231603459 New window
DOI:10.3390/gels11040265 New window
Copyright:© 2025 by the authors
Publication date in DKUM:07.04.2025
Views:192
Downloads:10
Metadata:XML DC-XML DC-RDF
Categories:Misc.
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Record is a part of a journal

Title:Gels
Shortened title:Gels
Publisher:MDPI AG
ISSN:2310-2861
COBISS.SI-ID:525301529 New window

Document is financed by a project

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:P2-0424-2022
Name:Dizajn novih lastnosti (nano)materialov & aplikacije

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:J2-3053-2021
Name:Razvoj visokozmogljivih piezoelektričnih premazov za samodejno napajanje netkanin tekstilij uporabnih v e-mobilnosti

Licences

License:CC BY 4.0, Creative Commons Attribution 4.0 International
Link:http://creativecommons.org/licenses/by/4.0/
Description:This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.

Secondary language

Language:Slovenian
Keywords:nanofibrilirana celuloza, zamrzovanje-ulivanje, vodni elektroliti, fizikalno-kemijske lastnosti, električna dvojna plast, psevdokapacitivnost


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