Mechanochromic, Low‐Cost, and Structurally Colored Displays Using Biodegradable Hydroxypropyl Cellulose

C Charles H. Barty‐King (Institute for Manufacturing Department of Engineering University of Cambridge 17 Charles Babbage Road Cambridge CB3 0FS UK) M Maxime Burgonse (Institute for Manufacturing Department of Engineering University of Cambridge 17 Charles Babbage Road Cambridge CB3 0FS UK) S Silvia Vignolini (Department of Sustainable and Bio-inspired Materials, Max Planck Institute of Colloids and Interfaces) J Jeremy Baumberg (NanoPhotonics Centre Department of Physics Cavendish Laboratory University of Cambridge Cambridge CB3 0US UK) M Michael De Volder

Abstract

Abstract Mechanochromic materials have garnered significant interest over the past decade due to their ability to change color in response to mechanical cues. While it is known that hydroxypropyl cellulose (HPC) self‐assembles into biodegradable and low‐cost mechanochromic materials, with a wide range of applications from edible colorants to optical strain sensors, mechanochromic HPC displays themselves are not reported. Here we address this challenge by combining thin mechanochromic HPC films with microfluidic arrays of inflatable microactuators that exert controlled forces. With these devices, the mechanochromic strain sensitivity, color resolution, response times, and operating frequencies of photonic aqueous HPC films are measured at decreasing length scales for the first time. Various pixel sizes, geometry, and input frequencies are also assessed to investigate mechanochromic HPC as a potential low‐cost, biodegradable display. Potential applications range from dynamic color pixels for soft robotics to more environmentally responsible RGB display technology.

Article Details

Volume / Issue Vol. 37, Issue 29
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (5)

C

Charles H. Barty‐King

Institute for Manufacturing Department of Engineering University of Cambridge 17 Charles Babbage Road Cambridge CB3 0FS UK

M

Maxime Burgonse

Institute for Manufacturing Department of Engineering University of Cambridge 17 Charles Babbage Road Cambridge CB3 0FS UK

S

Silvia Vignolini

Department of Sustainable and Bio-inspired Materials, Max Planck Institute of Colloids and Interfaces

J

Jeremy Baumberg

NanoPhotonics Centre Department of Physics Cavendish Laboratory University of Cambridge Cambridge CB3 0US UK

M

Michael De Volder