Recreating Silk's Fibrillar Nanostructure by Spinning Solubilized, Undegummed Silk

M Martin Zaki (Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia) R Rangam Rajkhowa (Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia) C Chris Holland (School of Chemical Materials and Biological Engineering University of Sheffield Sir Robert Hadfield Building, Mappin Street Sheffield S1 3JD UK) J Joselito Macabuhay Razal (Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia) D Dylan Yalmar Hegh (Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia) P Pablo Mota‐Santiago (Australian Synchrotron ANSTO 800 Blackburn Road Clayton VIC 3168 Australia) P Peter Lynch (Institute for Frontier Materials, Deakin University) B Benjamin James Allardyce (Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia)

Abstract

Abstract The remarkable toughness (>70 MJ m −3 ) of silkworm silk is largely attributed to its hierarchically arranged nanofibrillar nanostructure. Recreating such tough fibers through artificial spinning is often challenging, in part because degummed, dissolved silk is drastically different to the unspun native feedstock found in the spinning gland. The present work demonstrates a method to dissolve silk without degumming to produce a solution containing undegraded fibroin and sericin. This solution exhibits liquid‐liquid phase separation above 10% (wt/wt), a behavior observed in the silk gland but not in degummed silk solutions to date. This partitioning enhances the stability of the undegummed solution, delaying gelation two‐fold compared with degummed silk at the same concentration. When spun under identical conditions, undegummed solutions produces fibers 8× stronger and 218× tougher than degummed silk feedstocks. Through ultrasonication, undegummed wet spun fibers are seen to possess hierarchical structure of densely packed ≈20 nm nanofibrils, similar to native silks, although completely absent from fibers wet‐spun from degummed silk solutions. This work demonstrates that the preservation of molecular weight, presence of sericin and stimulation of liquid‐liquid phase separation underpin a new pathway to recreate a hierarchical fiber with structures akin to native silk.

Article Details

Volume / Issue Vol. 37, Issue 15
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

M

Martin Zaki

Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia

R

Rangam Rajkhowa

Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia

C

Chris Holland

School of Chemical Materials and Biological Engineering University of Sheffield Sir Robert Hadfield Building, Mappin Street Sheffield S1 3JD UK

J

Joselito Macabuhay Razal

Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia

D

Dylan Yalmar Hegh

Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia

P

Pablo Mota‐Santiago

Australian Synchrotron ANSTO 800 Blackburn Road Clayton VIC 3168 Australia

P

Peter Lynch

Institute for Frontier Materials, Deakin University

B

Benjamin James Allardyce

Institute for Frontier Materials Deakin University Geelong Waurn Ponds Campus, Pigdons Road Geelong VIC 3216 Australia