Human-muscle-inspired single fibre actuator with reversible percolation.
In Ho KimSubi ChoiJieun LeeJiyoung JungJinwook YeoJun Tae KimSeunghwa RyuSuk-Kyun AhnJiheong KangPhilippe PoulinSang Ouk KimPublished in: Nature nanotechnology (2022)
Artificial muscles are indispensable components for next-generation robotics capable of mimicking sophisticated movements of living systems. However, an optimal combination of actuation parameters, including strain, stress, energy density and high mechanical strength, is required for their practical applications. Here we report mammalian-skeletal-muscle-inspired single fibres and bundles with large and strong contractive actuation. The use of exfoliated graphene fillers within a uniaxial liquid crystalline matrix enables photothermal actuation with large work capacity and rapid response. Moreover, the reversible percolation of graphene fillers induced by the thermodynamic conformational transition of mesoscale structures can be in situ monitored by electrical switching. Such a dynamic percolation behaviour effectively strengthens the mechanical properties of the actuator fibres, particularly in the contracted actuation state, enabling mammalian-muscle-like reliable reversible actuation. Taking advantage of a mechanically compliant fibre structure, smart actuators are readily integrated into strong bundles as well as high-power soft robotics with light-driven remote control.
Keyphrases
- skeletal muscle
- room temperature
- endothelial cells
- insulin resistance
- hyaluronic acid
- photodynamic therapy
- molecular dynamics
- drug delivery
- high resolution
- cancer therapy
- type diabetes
- single molecule
- ionic liquid
- carbon nanotubes
- metabolic syndrome
- induced pluripotent stem cells
- stress induced
- loop mediated isothermal amplification
- aqueous solution