Composites from Self‐Assembled Protein Nanofibrils and Liquid Metal Gallium

Author:

Liu Li12,Rahim Md. Arifur123,Li Tianchen1,Kilani Mohamed2,He Yilin4,Shao Zeyu2,Zheng Jiewei2,Wang Chen1,Baharfar Mahroo2,Chiu Shih‐Hao12,Ireland Jake2,Sorenson Timothy L.1,Rawal Aditya5,Mousavi Maedehsadat2,Ghasemian Mohammad B.12,Zhang Chengchen6,Tang Jianbo2,Wong Edgar H. H.2,Zhang Jin4,Allioux Francois‐Marie12,Kalantar‐Zadeh Kourosh12ORCID,Shen Yi1

Affiliation:

1. School of Chemical and Biomolecular Engineering The University of Sydney Sydney NSW 2006 Australia

2. School of Chemical Engineering University of New South Wales (UNSW) Sydney NSW 2052 Australia

3. Department of Chemical and Biological Engineering Monash University Clayton VIC 3800 Australia

4. School of Mechanical and Manufacturing Engineering University of New South Wales (UNSW) Sydney NSW 2052 Australia

5. Nuclear Magnetic Resonance Facility Mark Wainwright Analytical Center The University of New South Wales Sydney NSW 2052 Australia

6. School of Electronics and Computer Science (ECS) The University of Southampton Southampton SO17 1BJ UK

Abstract

AbstractGallium (Ga), a low‐melting‐point liquid metal with soft, metallic, and biocompatible properties, offers many possibilities. However, the potential of composites that integrate Ga with biomacromolecules, combining their biocompatibility, elasticity, and conductivity, has not been thoroughly explored, which is a gap for advancing these composites in various applications. In parallel and independently, protein self‐assembled l.,;3bhnanofibrils have attracted great interest as building blocks for functional biomaterials. Here, composites of Ga droplets and nanofibrils are presented, self‐assembled from plant proteins of soy protein isolate (SPI). It is evidenced that in these composites self‐assembled SPI nanofibrils can effectively reduce the oxidation of Ga droplets. It is observed that the composites of β‐sheet nanofibrils and Ga droplets offer mechanical properties similar to only fibrils‐based films. Films of 32 wt% Ga in SPI showed enhanced electrical conductivity and well‐structured nanofibrils with multifunctional potential in gas‐sensing and electronically controlled antibacterial applications. It is illustrated that the 32 wt% Ga in SPI composite offered the best sensing performance for a diatomic molecule, CO, and electro‐stimulation of this composite effectively reduced bacterial growth. The Ga in SPI composite, combining the advantages of protein nanofibrils and Ga droplets, offers great potential in future biomedical applications.

Funder

Australian Research Council

Publisher

Wiley

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