Completed Materials & Manufacturing Plants, Animals & Ecology

Realising Functional Cellulosic Bio-based Composites

In plain English

AI plain-English summary

Plastic bottles, food packaging, and car parts could one day be made from plant fibres that are as strong as glass but fully biodegradable. This fellowship aims to unlock the secrets of cellulose—the tough polymer that gives wood its strength—so that engineers can finally replicate nature’s composite performance in manufactured materials. For 20 years, the researcher has studied how cellulose’s structure determines its properties. Despite cellulose being the most abundant polymer on Earth, every attempt to match the structural performance of natural wood has fallen short. The problem is that synthetic composites lose the intrinsic strength that plant fibres possess in their natural arrangement. This project will investigate how to preserve and harness that strength while adding new functionality—such as water resistance or flame retardancy—to the final composite. If successful, the work could accelerate the shift from oil-based plastics to renewable, plant-derived alternatives. The impact would be felt across manufacturing, packaging, construction, and transport—industries that currently rely on glass fibres and petroleum feedstocks. The research also addresses sustainability credentials directly, ensuring that the materials are not just strong but genuinely renewable from source to disposal.

View original technical description
The worldwide transition from the use of oil-based to more sustainable feedstocks for plastics is underway. This transition is due to dwindling oil stocks and a realisation that current levels of the use of this resource is no longer sustainable. More sustainable sources for materials use exist in the form of cellulose from plants. This material is a very versatile polymer and is in fact the most utilised material worldwide. For the last 20+ years I have been researching the structure-property relationships of cellulose and am ideally placed to play a key role in the transition to renewable materials. Nature makes use of cellulose to good effect. Being intrinsically strong and stiff means that cellulose fibres, per weight, can compete mechanically with most synthetic alternatives such as glass. In nature's most prevalent natural composite - wood - cellulose forms the basis of its outstanding structural performance. All our attempts to replicate the composite performance of wood and plants have fallen short, and this fellowship seeks to address these issues, while also using the intrinsic properties of plant fibres and wood themselves. The proposed research aims to do this in the context of both natural and synthetic materials, adding functionality to the composites, while also addressing in a cross-cutting sense the sustainability credentials of the materials and structures proposed.

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Researchers

SJ Eichhorn (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

High bio-content fibre composites
Cellulose "nanopaper" as building blocks for sustainable materials
Manufacturing Bio-inspired "Artificial Wood" from (Low-Cost) Ionic Liquids
Bio-augmented Concrete
Supramolecular interactions on nanocrystals (e.g. cellulose) to improve mechanical properties of polymers

Original classification

Fellowship

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