Flax Composites With Improved Interfacial Strength Through Microbially Induced Mineral Precipitation

D Deniz Sayinbas (Shaping Matter Lab Faculty of Aerospace Engineering Delft University of Technology Delft Netherlands) I Ingo Nettersheim (Shaping Matter Lab Faculty of Aerospace Engineering Delft University of Technology Delft Netherlands) J Jeong‐Joo Oh (Department of Bionanoscience, Kavli Institute of Nanoscience Faculty of Applied Sciences Delft University of Technology Delft Netherlands) M Marie‐Eve Aubin‐Tam (Department of Bionanoscience, Kavli Institute of Nanoscience Faculty of Applied Sciences Delft University of Technology Delft Netherlands) J Julie Teuwen (Aerospace Structures and Materials Faculty of Aerospace Engineering Delft University of Technology Delft Netherlands) K Kunal Masania (Shaping Matter Lab Faculty of Aerospace Engineering Delft University of Technology Delft Netherlands)

Abstract

ABSTRACT Driven by the needs of modern transportation and the clean energy transition, the demand for sustainable and lightweight materials is increasing. Composite materials incorporating natural fibers such as flax fibers have gained attention due to their carbon‐capturing potential and good specific mechanical properties. However, when embedded in hydrophobic polymer matrices, flax fibers exhibit inferior mechanical performance primarily due to their hydrophilic composition and discontinuous fiber architecture. Biological materials such as nacre have developed useful strategies through mineralization to distribute localized stresses and develop extrinsic toughness that could inspire a solution to enhance stress transfer in natural fiber composites. Here, we report a biomineralization strategy to introduce an additional hierarchy to flax composites. By tuning salt concentrations in the process, we achieve controlled deposition of microbe‐mediated mineral particles on flax yarns. With controlled biomineralization, we show that the minerals can enhance the compressive toughness by 178% and compressive strength by 30%. The findings highlight a novel bio‐inspired pathway for tailoring composite performance through sustainable processing, offering a scalable and environmentally friendly approach to enhance natural fiber composites for structural applications.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 08, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (6)

D

Deniz Sayinbas

Shaping Matter Lab Faculty of Aerospace Engineering Delft University of Technology Delft Netherlands

I

Ingo Nettersheim

Shaping Matter Lab Faculty of Aerospace Engineering Delft University of Technology Delft Netherlands

J

Jeong‐Joo Oh

Department of Bionanoscience, Kavli Institute of Nanoscience Faculty of Applied Sciences Delft University of Technology Delft Netherlands

M

Marie‐Eve Aubin‐Tam

Department of Bionanoscience, Kavli Institute of Nanoscience Faculty of Applied Sciences Delft University of Technology Delft Netherlands

J

Julie Teuwen

Aerospace Structures and Materials Faculty of Aerospace Engineering Delft University of Technology Delft Netherlands

K

Kunal Masania

Shaping Matter Lab Faculty of Aerospace Engineering Delft University of Technology Delft Netherlands