Stiffening Liquid Crystal Elastomers with Liquid Crystal Inclusions

S Sahad Vasanji (Department of Chemical Engineering Institute for Polymer Research Center for Bioengineering and Biotechnology Waterloo Institute for Nanotechnology Waterloo ON N2L 3G1 Canada) M Matthew Gene Scarfo (Department of Chemical Engineering University of Waterloo Waterloo Ontario Canada) A Arwa Alyami (Department of Physics and Advanced Materials and Liquid Crystal Institute Kent State University Kent OH 44242 USA) T Tizazu H. Mekonnen (Department of Chemical Engineering Institute for Polymer Research Center for Bioengineering and Biotechnology Waterloo Institute for Nanotechnology Waterloo ON N2L 3G1 Canada) P Parsin Hajireza (Department of Systems Design Engineering Center for Bioengineering and Biotechnology University of Waterloo Waterloo ON N2L 3G1 Canada) M Mohand O. Saed (Cavendish Laboratory University of Cambridge Cambridge CB3 0HE UK) A Antal Jákli (Department of Physics and Advanced Materials and Liquid Crystal Institute Kent State University Kent OH 44242 USA) H Hamed Shahsavan (Department of Chemical Engineering Waterloo Institute for Nanotechnology Institute for Polymer Research University of Waterloo Waterloo Ontario Canada)

Abstract

Abstract Liquid crystal elastomers (LCEs) are promising building blocks for soft robots, given their large, programmable, reversible, and stimuli‐responsive shape change. Enhancing LCEs’ stiffness and toughness has been a longstanding desire previously explored by reinforcing them with fillers, crystalline microdomains, and interpenetrating polymer networks. While promising, these methods adversely affect molecular order and thermal strain. Here, a significant enhancement of the stiffness of LCEs is reported by loading them with low molecular weight liquid crystals (LMWLCs) without sacrificing thermal strain and molecular order. While pristine LCEs rapidly transition to a soft elastic plateau when strained from poly‐ to monodomain, LC‐loaded samples (LC‐LCEs) first experience a pronounced linear elasticity, followed by a soft elastic plateau at higher stresses. Further thermomechanical and X‐ray analysis confirm the emergence of an additional mesophase in polydomain LC‐LCEs, which evolves to short‐range smectic (cybotactic) during the poly‐ to monodomain transition. Monodomain LC‐LCEs show between 6.5‐ and 9.0‐fold stiffness enhancement with improved molecular order and thermal strain. Their work densities are more than double that of pristine LCEs, with active thermal stroke of up to 25% under loads of over 2000 times their weight. Such remarkable behaviors are attributed to the interplay between post‐polymerization phase separation of LCs and their strain‐enhanced smectic ordering. The results suggest that LMWLC inclusion can be a simple yet robust method to significantly improve the mechanical properties of LCEs.

Article Details

Volume / Issue Vol. 37, Issue 45
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

S

Sahad Vasanji

Department of Chemical Engineering Institute for Polymer Research Center for Bioengineering and Biotechnology Waterloo Institute for Nanotechnology Waterloo ON N2L 3G1 Canada

M

Matthew Gene Scarfo

Department of Chemical Engineering University of Waterloo Waterloo Ontario Canada

A

Arwa Alyami

Department of Physics and Advanced Materials and Liquid Crystal Institute Kent State University Kent OH 44242 USA

T

Tizazu H. Mekonnen

Department of Chemical Engineering Institute for Polymer Research Center for Bioengineering and Biotechnology Waterloo Institute for Nanotechnology Waterloo ON N2L 3G1 Canada

P

Parsin Hajireza

Department of Systems Design Engineering Center for Bioengineering and Biotechnology University of Waterloo Waterloo ON N2L 3G1 Canada

M

Mohand O. Saed

Cavendish Laboratory University of Cambridge Cambridge CB3 0HE UK

A

Antal Jákli

Department of Physics and Advanced Materials and Liquid Crystal Institute Kent State University Kent OH 44242 USA

H

Hamed Shahsavan

Department of Chemical Engineering Waterloo Institute for Nanotechnology Institute for Polymer Research University of Waterloo Waterloo Ontario Canada