Diffusion-guided 4D microprinting of soft microactuators

W Wei-Ting Hsu P Po-An Tsou H Hsin-Jung Chou T Tsung-Kai Lin Y Yu-Chieh Cheng

Abstract

Abstract Four-dimensional (4D) printing has emerged as a powerful strategy for creating reconfigurable soft actuators with applications in biomedical engineering and microrobotics. However, most existing methods, such as inkjet printing or photoalignment, are restricted to film-like or net-like architectures that only enable out-of-plane deformation and cannot be scaled to the microscale. Although two-photon polymerization provides submicron resolution and 3D microfabrication, its voxel-by-voxel laser scanning induces strong liquid crystal diffusion around each printed voxel, which cannot be effectively suppressed by external fields or laser-induced anchoring. Here, we harness this diffusion as a design principle for 4D microprinting of soft liquid crystal network microactuators, enabling hierarchical and volumetric alignment within complex 3D architectures. Diffusion-guided orientation emerges perpendicular to the printed surface profile, allowing programmed molecular alignment through controlled variation of the scanning direction. These microactuators incorporate volumetrically programmable 3D architectures and can be integrated into multi-jointed microarms and microgrippers, executing complex and coordinated actuations for advanced microrobotics.

Article Details

Volume / Issue Vol. 17, Issue 1
Published May 14, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (5)

W

Wei-Ting Hsu

P

Po-An Tsou

H

Hsin-Jung Chou

T

Tsung-Kai Lin

Y

Yu-Chieh Cheng