Liquid Crystal Elastomer‐Based Haptic Pixel Arrays at Your Fingertips for Advanced Human–Machine Interfaces

T Tom Bruining (Human Interactive Materials (HIM), Department of Chemical Engineering and Chemistry Eindhoven University of Technology Eindhoven The Netherlands) E Enjun Lin Y Yu Zou M Meike Heldoorn (Human‐Technology Interaction (HTI), Department of Industrial Engineering & Innovation Sciences Eindhoven University of Technology Eindhoven The Netherlands) P Pengrong Lyu (School of Materials and Energy Guangdong University of Technology Guangzhou China) S Samuël A. M. Weima (Human Interactive Materials (HIM), Department of Chemical Engineering and Chemistry Eindhoven University of Technology Eindhoven The Netherlands) A Astrid M. L. Kappers M Myrthe A. Plaisier (Human‐Technology Interaction (HTI), Department of Industrial Engineering & Innovation Sciences Eindhoven University of Technology Eindhoven The Netherlands) S Satoshi Aya D Danqing Liu (School of Material Science and Chemical Engineering, Key Laboratory of Green Chemical Engineering and Technology of College of Heilongjiang Province, Harbin University of Science and Technology 3 , Harbin 150040,)

Abstract

ABSTRACT The sense of touch is underutilized in our digital lives, especially when compared to the prevalence and complexity of information transfer through our visual and auditory interactions with devices; the impact of this is profound as touch plays a major role in our perception of our world, and its omission in our commonly used devices limits our accessibility to the digital space, particularly for blind and visually impaired users. Fortunately, the stimuli‐responsive shape‐morphing properties of liquid crystal elastomers (LCEs) promise a solution: in our work, we mechanically program an LCE bilayer coating to achieve durable, high‐amplitude switchable surface protrusions, or tactile pixels, which we assemble into a digital platform for generating tactile images and haptic feedback. We further characterize and describe our tactile pixel design by microscopy techniques and simulations that use the neo‐classical theory of rubber elasticity. We demonstrate safe and effective electronically addressable activation of individual LCE pixels within seconds, accompanied by a psychophysical evaluation of tactile line orientation discrimination in which the performance of our LCE tactile pixels is comparable to swell paper, a standard tactile graphic medium. Thereby, we establish LCEs as a contender for the next‐generation dynamic tactile displays.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 09, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

T

Tom Bruining

Human Interactive Materials (HIM), Department of Chemical Engineering and Chemistry Eindhoven University of Technology Eindhoven The Netherlands

E

Enjun Lin

Y

Yu Zou

M

Meike Heldoorn

Human‐Technology Interaction (HTI), Department of Industrial Engineering & Innovation Sciences Eindhoven University of Technology Eindhoven The Netherlands

P

Pengrong Lyu

School of Materials and Energy Guangdong University of Technology Guangzhou China

S

Samuël A. M. Weima

Human Interactive Materials (HIM), Department of Chemical Engineering and Chemistry Eindhoven University of Technology Eindhoven The Netherlands

A

Astrid M. L. Kappers

M

Myrthe A. Plaisier

Human‐Technology Interaction (HTI), Department of Industrial Engineering & Innovation Sciences Eindhoven University of Technology Eindhoven The Netherlands

S

Satoshi Aya

D

Danqing Liu

School of Material Science and Chemical Engineering, Key Laboratory of Green Chemical Engineering and Technology of College of Heilongjiang Province, Harbin University of Science and Technology 3 , Harbin 150040,