Abstract
Self-propelled micromotors have shown promise for applications in environmental remediation, sensing, and biomedicine. However, assessing their performance in realistic, 3D microenvironments with dynamic boundaries and complex topography remains a key challenge. Achieving controlled motion and enhanced reactivity under such confinement is critical for both technological applications and fundamental studies on active matter. Here, the integration of light-driven micromotors with liquid marbles is presented, which are gas-permeable droplets encased by hydrophobic particles that act as dynamic, flow-active microreactors. By tuning the coverage of the particulate shell, partially covered liquid marbles are developed that exhibit robust evaporation-induced flows, increasing the average micromotor velocity by approximately threefold compared to sessile droplets. Under illumination, photocatalytic self-propulsion provides an additional velocity component and promotes micromotor dispersion. The combined circulation enhances mass transfer, guiding micromotor accumulation and transport while providing an optical transparent, soft-confinement platform for studying active particles and confined catalytic reactions.
Author supplied keywords
Cite
CITATION STYLE
Martínez, A. J., Basharat, M., Chen, S., Sánchez, S., & Villa, K. (2025). Flow-Active Liquid Marbles as Microreactors for Photocatalytic Micromotors. Small, 21(43). https://doi.org/10.1002/smll.202505439
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.