Soft Robotic Engines with Non‐Reciprocal Motion by Physical Intelligence

O Oliver Skarsetz (Life‐Like Materials and Systems Department of Chemistry University of Mainz Mainz Germany) P Piet J.M. Swinkels (Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany) J Jacqueline Figueiredo da Silva (Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany) G Giulia Vozzolo (POLYMAT Joxe Mari Korta Center University of the Basque Country UPV/EHU Avda. Tolosa 72 Donostia–San Sebastián 20018 Spain) M Marcos Masukawa (Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany) G Giorgio Fusi (Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany) B Brigitta Dúzs (Life‐Like Materials and Systems Department of Chemistry University of Mainz Mainz Germany) Y Yanis Lassiat (Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany) C Christoph Drees V Viacheslav Slesarenko (Cluster of Excellence livMatS @ FIT—Freiburg Center for Interactive Materials and Bioinspired Technologies University of Freiburg Georges‐Köhler‐Allee 105 79110 Freiburg im Breisgau Germany) A Andreas Walther (Life-Like Materials and Systems, University of Mainz, Duesbergweg 10-14, 55128 Mainz, Germany)

Abstract

Abstract Movement is essential for living systems, enabling access to food, habitats, or escape from threats. Across scales, a key unifying principle is symmetry breaking to achieve non‐reciprocal motion and accumulate work. In soft robotics, many actuators mimic biological responsiveness, but they typically exhibit reciprocal motion, where forward work is canceled in the return stroke – preventing work accumulation in cyclic operation. Here, a simple and broadly applicable hydrogel engine concept is presented that overcomes this limitation by encoding kinetic asymmetry into swelling and deswelling transitions. This hard‐coded asymmetry yields non‐reciprocal motion trajectories, enabling continuous mechanical work extraction under a single, uniform stimulus – without complex external control. The strategy embodies a material‐based ratchet mechanism rooted in physical intelligence, independent of geometry or scale, and generalizable across stimuli. This hydrogel engine is implemented in soft robotic systems, including artificial cilia for fluid pumping and conveyor belts for object transport. Starting from macroscopic thermoresponsive systems, the design is extended to microscale formats via 3D printing and to other stimuli‐responsive materials. This approach shifts the paradigm in soft robotics – from increasing chemical complexity to leveraging intrinsic material properties for emergent function – paving the way for scalable, autonomous systems driven by physical intelligence.

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 (11)

O

Oliver Skarsetz

Life‐Like Materials and Systems Department of Chemistry University of Mainz Mainz Germany

P

Piet J.M. Swinkels

Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany

J

Jacqueline Figueiredo da Silva

Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany

G

Giulia Vozzolo

POLYMAT Joxe Mari Korta Center University of the Basque Country UPV/EHU Avda. Tolosa 72 Donostia–San Sebastián 20018 Spain

M

Marcos Masukawa

Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany

G

Giorgio Fusi

Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany

B

Brigitta Dúzs

Life‐Like Materials and Systems Department of Chemistry University of Mainz Mainz Germany

Y

Yanis Lassiat

Life‐Like Materials and Systems, Department of Chemistry University of Mainz Duesbergweg 10‐14 55128 Mainz Germany

C

Christoph Drees

V

Viacheslav Slesarenko

Cluster of Excellence livMatS @ FIT—Freiburg Center for Interactive Materials and Bioinspired Technologies University of Freiburg Georges‐Köhler‐Allee 105 79110 Freiburg im Breisgau Germany

A

Andreas Walther

Life-Like Materials and Systems, University of Mainz, Duesbergweg 10-14, 55128 Mainz, Germany