Active Oscillations of Elastic Membranes Arising from the Coupling with a Catalytic Reaction

ABSTRACT Soft fluidic machines increasingly rely on self‐sustained oscillations to accomplish tasks autonomously without electronics or software. Typically, these oscillations arise from mechanical nonlinearities in complex geometries or relatively involved fluidic circuitry, and are passive in that they require external power sources. Here, we show that, by harnessing the coupling with a catalytic reaction, active oscillations can arise even in flat elastic membranes without fluidic circuits or external power. We embed a silver catalyst in a flat elastic membrane suspended over a pool of liquid hydrogen peroxide as fuel. When the fuel contacts the catalyst, it decomposes, releasing gases and generating pressure. We observe an oscillation where the reaction activates and deactivates spontaneously, causing the membrane to cyclically inflate and deflate for hours consecutively. Using experiments and a lumped‐parameter model, we show that the oscillation arises from an interplay between catalyst capillarity, membrane stiffness, and venting resistance, which together induce negative feedback and separation of timescales. These results demonstrate an active oscillation in which the energy release is directly coupled to the oscillation dynamics. By embodying energy within the oscillation, we expand the library of phenomena to achieve self‐oscillation in autonomous soft machines, opening avenues for elasto‐chemical strategies for physical control.

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Publication Details

Journal
Advanced Science
Published
2026-10-08
DOI
https://doi.org/10.1002/advs.77877
Primary Topic
Advanced Materials and Mechanics
Type
article
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article

Active Oscillations of Elastic Membranes Arising from the Coupling with a Catalytic Reaction

Erik Steur, Ellen T. Roche, Johannes T. B. Overvelde, Samuel Dutra Gollob et al.
Advanced Science
Advanced Materials and Mechanics
article

Active Oscillations of Elastic Membranes Arising from the Coupling with a Catalytic Reaction

Erik Steur, Ellen T. Roche, Johannes T. B. Overvelde, Samuel Dutra Gollob, Kaitlyn P. Becker, Alberto Comoretto
article en

Abstract

ABSTRACT Soft fluidic machines increasingly rely on self‐sustained oscillations to accomplish tasks autonomously without electronics or software. Typically, these oscillations arise from mechanical nonlinearities in complex geometries or relatively involved fluidic circuitry, and are passive in that they require external power sources. Here, we show that, by harnessing the coupling with a catalytic reaction, active oscillations can arise even in flat elastic membranes without fluidic circuits or external power. We embed a silver catalyst in a flat elastic membrane suspended over a pool of liquid hydrogen peroxide as fuel. When the fuel contacts the catalyst, it decomposes, releasing gases and generating pressure. We observe an oscillation where the reaction activates and deactivates spontaneously, causing the membrane to cyclically inflate and deflate for hours consecutively. Using experiments and a lumped‐parameter model, we show that the oscillation arises from an interplay between catalyst capillarity, membrane stiffness, and venting resistance, which together induce negative feedback and separation of timescales. These results demonstrate an active oscillation in which the energy release is directly coupled to the oscillation dynamics. By embodying energy within the oscillation, we expand the library of phenomena to achieve self‐oscillation in autonomous soft machines, opening avenues for elasto‐chemical strategies for physical control.

Advanced Science
IIT@MIT (US), Massachusetts Institute of Technology (US), Eindhoven University of Technology (NL)
Openalex Percentile: Top 22%
Advanced Materials and Mechanics
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Active Oscillations of Elastic Membranes Arising from the Coupling with a Catalytic Reaction — Erik Steur, Ellen T. Roche, et al. · Advanced Science (2026) | TGRS Research Map | TGRS