In the biological realm, light can act as a powerful stimulus, promoting both positive and negative phototaxis. Using computational modeling, we attempt to design systems that display analogous biomimetic behavior by exhibiting directed, autonomous motion in response to light. We specifically focus on polymer gels that undergo the oscillating Belousov–Zhabotinsky (BZ) reaction and thus manifest periodic chemomechanical pulsations, which can be modulated with light. Reviewing our recent computational studies, we describe how long, rectangular samples of BZ gels, or “worms”, can perform self-sustained movement and via a distinct form of negative phototaxis migrate along complex paths under nonuniform illumination. When the ends of multiple re...
The previously reported gel and polymer actuators require external inputs, such as batteries, circui...
In this paper, we introduce autonomous gel actuators driven by chemical energy. The polymer gels pre...
Microorganisms move in challenging environments by periodic changes in body shape. In contrast, curr...
Stimuli-responsive gels are vital components in the next generation of smart devices, which can sens...
Using computational modeling, we show that self-oscillating Belousov–Zhabotinsky (BZ) gels can both ...
Species ranging from single-cell organisms to social insects can undergo auto-chemotaxis, where the ...
Species ranging from single-cell organisms to social insects can undergo auto-chemotaxis, where the ...
Species ranging from single-cell organisms to social insects can undergo auto-chemotaxis, where the ...
Use of chemo-mechanical transduction to produce locomotion is one of the significant characteristics...
Species ranging from single-cell organisms to social insects can undergo auto-chemotaxis, where the ...
Living cilia stir, sweep and steer via swirling strokes of complex bending and twisting, paired with...
Living cilia stir, sweep and steer via swirling strokes of complex bending and twisting, paired with...
Bioinspired material research aims at learning from the sophisticated design principles of nature, i...
Oscillations are widely found in living organisms to generate propulsion-based locomotion often driv...
As a novel biomimetic polymer, we have developed polymer gels with an autonomous self-oscillating fu...
The previously reported gel and polymer actuators require external inputs, such as batteries, circui...
In this paper, we introduce autonomous gel actuators driven by chemical energy. The polymer gels pre...
Microorganisms move in challenging environments by periodic changes in body shape. In contrast, curr...
Stimuli-responsive gels are vital components in the next generation of smart devices, which can sens...
Using computational modeling, we show that self-oscillating Belousov–Zhabotinsky (BZ) gels can both ...
Species ranging from single-cell organisms to social insects can undergo auto-chemotaxis, where the ...
Species ranging from single-cell organisms to social insects can undergo auto-chemotaxis, where the ...
Species ranging from single-cell organisms to social insects can undergo auto-chemotaxis, where the ...
Use of chemo-mechanical transduction to produce locomotion is one of the significant characteristics...
Species ranging from single-cell organisms to social insects can undergo auto-chemotaxis, where the ...
Living cilia stir, sweep and steer via swirling strokes of complex bending and twisting, paired with...
Living cilia stir, sweep and steer via swirling strokes of complex bending and twisting, paired with...
Bioinspired material research aims at learning from the sophisticated design principles of nature, i...
Oscillations are widely found in living organisms to generate propulsion-based locomotion often driv...
As a novel biomimetic polymer, we have developed polymer gels with an autonomous self-oscillating fu...
The previously reported gel and polymer actuators require external inputs, such as batteries, circui...
In this paper, we introduce autonomous gel actuators driven by chemical energy. The polymer gels pre...
Microorganisms move in challenging environments by periodic changes in body shape. In contrast, curr...