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Production of High-Solid-Content Fire-Retardant Phosphorylated Cellulose Microfibrils

Year of publication

2021

Authors

Khakalo, Alexey; Jaiswal, Aayush Kumar; Kumar, Vinay; Gestranius, Marie; Kangas, Heli; Tammelin, Tekla

Abstract

Phosphorylated cellulosic micro(nano)fibrillated materials are increasingly considered for flame-retardant applica tions as a biobased alternative to their halogen-based counterparts. Most of the reported cellulose functionalization strategies, however, are realized at low solids contents and/or involve energy-intensive fiber disintegration methods. In this perspective, we propose an alternative concept of phosphorylated micro fibrillated cellulose production with notably high (25 wt %) solids content and low (0.6 MWh/t) energy consumption. Here, an enzyme-aided pulp disintegration upon mild mechanical treatment was combined with an effective mixing of the fibrillated material with (NH4)2HPO4 in the presence of urea. Subsequently, the obtained slurry was cured at elevated temperature to enable cellulose phosphorylation, which was redispersed afterward in water. The morphology of the obtained phosphorylated micro(nano)fibrillated cellulose materials was extensively characterized by optical microscopy, a fiber analyzer, SEM, and AFM. The presence of phosphate groups in the cellulose structure was validated by ATR-FTIR as well as 31P and 13C NMR spectroscopy. The casted films prepared from phosphorylated cellulose bearing a charge of 1540 µmol/g, which was the highest among the prepared samples, demonstrated noticeably improved flame retardancy, leaving ∼89% of the material after burning as well as self extinguishing properties when the samples were subjected to a butane flame for 3 s.
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Organizations and authors

VTT Technical Research Centre of Finland Ltd

Jaiswal Aayush Kumar Orcid -palvelun logo

Khakalo Alexey Orcid -palvelun logo

Kangas Heli Orcid -palvelun logo

Gestranius Marie Orcid -palvelun logo

Tammelin Tekla Orcid -palvelun logo

Kumar Vinay Orcid -palvelun logo

Publication type

Publication format

Article

Parent publication type

Journal

Article type

Original article

Audience

Scientific

Peer-reviewed

Peer-Reviewed

MINEDU's publication type classification code

A1 Journal article (refereed), original research

Publication channel information

Volume

9

Issue

36

Pages

12365-12375

​Publication forum

75010

​Publication forum level

1

Open access

Open access in the publisher’s service

Yes

Open access of publication channel

Partially open publication channel

License of the publisher’s version

CC BY

Self-archived

No

Other information

Fields of science

Chemical sciences; Chemical engineering; Materials engineering

Keywords

[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]

Language

English

International co-publication

No

Co-publication with a company

No

DOI

10.1021/acssuschemeng.1c04403

The publication is included in the Ministry of Education and Culture’s Publication data collection

Yes