0
Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Sign in to save

Controlled surface acetylation of cellulosics to tune biodegradability while expanding their use towards common petrochemical-based plastics

2024 2 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Alistair W. T. King, Hannes Orelma, Amalie Solberg, Elisa Spönla, Hannes Orelma, Hannes Orelma, Antti Paajanen, Mikko Mäkelä, Hannes Orelma, Ali Harlin Ella Mahlamäki, Hannes Orelma, Kristin Syverud, Mikko Mäkelä, Antti Korpela, Paavo A. Penttilä, Ali Harlin Hannes Orelma, Mari Leino, Antti Korpela, Antti Korpela, Mari Leino, Mikko Mäkelä, Ali Harlin Kristin Syverud, Elisa Spönla, Mariitta Svanberg, Mariitta Svanberg, Tetyana V. Koso, A. Tanaka, Vuokko Liukkonen, Vuokko Liukkonen, Amalie Solberg, Anniina Savolainen, Hannes Orelma, Antti Korpela, Kristin Syverud, Ali Harlin

Summary

Not relevant to microplastics — this study demonstrates surface acetylation of cellulose paper fibers to improve wet strength and moisture resistance while maintaining biodegradability, positioned as an alternative to petrochemical plastics.

The European Commissions single-use plastics directive has put major restrictions on the use of chemically modified cellulosics for different material applications, e.g., as films, fibres, foams and other shaped objects. In addition, the wet strength and barrier properties of some of these materials are lacking, in comparison to petrochemical-based plastics. In the current study we demonstrate that it is possible to carry out surface selective acetylation of kraft fibre paper and nano-paper to create materials that maintain biodegradability. This is shown to be highly dependent on the degree of bulk acetylation, with those materials with modification restricted to fibril surface monoacetylation offering fine control over enzymatic digestibility. Materials which show the formation of cellulose triacetate were much less degradable in the timeframe of our assessment methods. However, the wet strength and extensibility of these materials was significantly improved, pushing the envelope for application towards moisture-rich environments. The mechanistic component of our study shows acetylation occurs down to the fibril surface level, and not just on the macrofibre level. We believe that this study offers a strong basis for widening the application scope of cellulosics towards traditionally petrochemical-based plastics

Sign in to start a discussion.

Share this paper