A1 Refereed original research article in a scientific journal

Highly Charged Cellulose Nanocrystals via Electrochemical Oxidation




AuthorsYousefi, Neptun; Hannonen, Jenna; Fliri, Lukas; Peljo, Pekka; Kontturi, Eero

PublisherAMER CHEMICAL SOC

Publishing placeWASHINGTON

Publication year2024

JournalNano Letters

Journal name in sourceNANO LETTERS

Journal acronymNANO LETT

Volume24

Issue46

First page 14541

Last page14908

Number of pages5

ISSN1530-6984

eISSN1530-6992

DOIhttps://doi.org/10.1021/acs.nanolett.4c02918

Web address https://doi.org/10.1021/acs.nanolett.4c02918

Self-archived copy’s web addresshttps://research.utu.fi/converis/portal/detail/Publication/470854225


Abstract
Due to their exceptional properties, cellulose nanocrystals (CNCs) have been proposed for various applications in sustainable materials science. However, state-of-the-art production methods suffer from low yields and rely on hazardous and environmentally harmful chemicals, representing a bottleneck for more widespread utilization of CNCs. In this study, we present a novel two-step approach that combines previously established HCl gas hydrolysis with electrochemical TEMPO oxidation. This unique method allows the collection of easily dispersible CNCs with high carboxylate contents in excellent overall yields of 71%. The electromediated oxidation was conducted in aqueous conditions without the usually required cocatalysts, simplifying the purification of the materials. Moreover, the proposed process is designed for facile recycling of the used reagents in both steps. To evaluate the sustainability and scalability, the environmental impact factor was calculated, and a cost analysis was conducted.

Downloadable publication

This is an electronic reprint of the original article.
This reprint may differ from the original in pagination and typographic detail. Please cite the original version.




Funding information in the publication
This study is part of the FinnCERES Bioeconomy cluster, and we are grateful to the European Innovation Council for funding (project number 101070788 – DualFlow).


Last updated on 2025-24-02 at 13:25