Photodriven Aquatic Locomotion in Liquid Crystalline Elastomer Composites with Tunable Wettability
Abstract
Abstract Photodriven liquid crystalline elastomer (LCE) composites with thiol‐functionalized Ti₃C₂T x MXene nanosheets are introduced as a versatile material system for achieving controlled aquatic locomotion. By incorporating superhydrophobic or superhydrophilic coatings, these composites demonstrate distinct modalities at the air–water interface and underwater. The stimuli‐responsive behavior of the LCE nanocomposites is enhanced through the homogeneous dispersion of MXene platelets within the LCE matrix, facilitated by thiol‐functionalization. Superhydrophobic coatings increase buoyancy and reduce drag, enabling locomotion akin to water striders at the air–water interface. Conversely, superhydrophilic coatings submerse the composites to allow photomechanical actuation to drive underwater locomotion against gravity. By combining tunable wettability with robust photothermal performance, these MXene‐LCE composites open new opportunities for designing and integrating stimuli‐responsive materials in aquatic actuation systems.
Article Details
Authors (5)
Avijit Das
Department of Chemistry
Joselle M. McCracken
Department of Chemical and Biological Engineering University of Colorado Boulder 596 UCB Boulder CO 80309 USA
Mohsin Hassan Saeed
Department of Chemical and Biological Engineering University of Colorado Boulder 596 UCB Boulder CO 80309 USA
Dhriti Nepal
Air Force Research Laboratory Composite Materials Branch 2941 Hobson Way Wright‐Patterson AFB OH 4543–7750 USA
Timothy J. White
Department of Chemical and Biological Engineering University of Colorado Boulder 596 UCB Boulder CO 80309 USA