Light-driven biohybrid microrobots for contact-enhanced photoenzymatic degradation of plastic debris

Abstract Light-driven self-propelled microrobots offer opportunities for active environmental remediation by enabling controllable interactions with dispersed pollutants in aqueous environments. Here, we report biohybrid microrobots, composed of enzyme-functionalized, Au-decorated cubic hematite, that reversibly switch between clustered and dispersed states to enhance microrobot-substrate interactions and photoenzymatic degradation. In the dark, microrobots spontaneously assemble into interconnected filamentous clusters. Under blue-light irradiation, these clusters disassemble into self-propelled microrobots, increasing catalyst exposure and promoting broader microrobot-substrate interactions. Applied to polylactic acid (PLA) plastics, this collective-to-individual transition increases repeated microrobot-substrate contacts and promotes ester-bond hydrolysis at the polymer-water interface. Mass spectrometry identifies soluble PLA-derived oligomers, while electron microscopy reveals localized surface erosion after photoenzymatic treatment. By dynamically redistributing enzyme-functionalized microrobots across the polymer surface, reversible light-controlled switching enhances transient catalytic interactions and surface exploration. This strategy provides a general approach for optimizing photoenzymatic degradation by coupling collective organization, active motion, and catalyst accessibility in aqueous environments, while preserving reversible control over their spatial organization and activity.

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Publication Details

Journal
Communications Materials
Published
2026-10-09
DOI
https://doi.org/10.1038/s43246-026-01398-1
Primary Topic
Micro and Nano Robotics
Type
article
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article

Light-driven biohybrid microrobots for contact-enhanced photoenzymatic degradation of plastic debris

V. Privitera, Libera Vitiello, Martina Ussia, Sabrina Carola Carroccio et al.
Communications Materials
Micro and Nano Robotics
article

Light-driven biohybrid microrobots for contact-enhanced photoenzymatic degradation of plastic debris

V. Privitera, Libera Vitiello, Martina Ussia, Sabrina Carola Carroccio, Silvia Scalese
article en

Abstract

Abstract Light-driven self-propelled microrobots offer opportunities for active environmental remediation by enabling controllable interactions with dispersed pollutants in aqueous environments. Here, we report biohybrid microrobots, composed of enzyme-functionalized, Au-decorated cubic hematite, that reversibly switch between clustered and dispersed states to enhance microrobot-substrate interactions and photoenzymatic degradation. In the dark, microrobots spontaneously assemble into interconnected filamentous clusters. Under blue-light irradiation, these clusters disassemble into self-propelled microrobots, increasing catalyst exposure and promoting broader microrobot-substrate interactions. Applied to polylactic acid (PLA) plastics, this collective-to-individual transition increases repeated microrobot-substrate contacts and promotes ester-bond hydrolysis at the polymer-water interface. Mass spectrometry identifies soluble PLA-derived oligomers, while electron microscopy reveals localized surface erosion after photoenzymatic treatment. By dynamically redistributing enzyme-functionalized microrobots across the polymer surface, reversible light-controlled switching enhances transient catalytic interactions and surface exploration. This strategy provides a general approach for optimizing photoenzymatic degradation by coupling collective organization, active motion, and catalyst accessibility in aqueous environments, while preserving reversible control over their spatial organization and activity.

Communications Materials
Institute of Polymers, Composites and Biomaterials (IT), Institute for Microelectronics and Microsystems (IT)
Openalex Percentile: Top 23%
Micro and Nano Robotics
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Light-driven biohybrid microrobots for contact-enhanced photoenzymatic degradation of plastic debris — V. Privitera, Libera Vitiello, et al. · Communications Materials (2026) | TGRS Research Map | TGRS