TY - JOUR
T1 - Light-fuelled freestyle self-oscillators
AU - Zeng, Hao
AU - Lahikainen, Markus Juhani
AU - Liu, Li
AU - Ahmed, Zafar
AU - Wani, Owies Mukhtar
AU - Wang, Meng
AU - Yang, Hong
AU - Priimägi, Arri
PY - 2019/11/7
Y1 - 2019/11/7
N2 - Self-oscillation is a phenomenon where an object sustains periodic motion upon non-periodic stimulus. It occurs commonly in nature, a few examples being heartbeat, sea waves and fluttering of leaves. Stimuli-responsive materials allow creating synthetic self-oscillators fuelled by different forms of energy, e.g. heat, light and chemicals, showing great potential for applications in power generation, autonomous mass transport, and self-propelled micro-robotics. However, most of the self-oscillators are based on bending deformation, thereby limiting their possibilities of being implemented in practical applications. Here, we report light-fuelled self-oscillators based on liquid crystal network actuators that can exhibit three basic oscillation modes: bending, twisting and contraction-expansion. We show that a time delay in material response dictates the self-oscillation dynamics, and realize a freestyle self-oscillator that combines numerous oscillation modes simultaneously by adjusting the excitation beam position. The results provide new insights into understanding of self-oscillation phenomenon and offer new designs for future self-propelling micro-robots.
AB - Self-oscillation is a phenomenon where an object sustains periodic motion upon non-periodic stimulus. It occurs commonly in nature, a few examples being heartbeat, sea waves and fluttering of leaves. Stimuli-responsive materials allow creating synthetic self-oscillators fuelled by different forms of energy, e.g. heat, light and chemicals, showing great potential for applications in power generation, autonomous mass transport, and self-propelled micro-robotics. However, most of the self-oscillators are based on bending deformation, thereby limiting their possibilities of being implemented in practical applications. Here, we report light-fuelled self-oscillators based on liquid crystal network actuators that can exhibit three basic oscillation modes: bending, twisting and contraction-expansion. We show that a time delay in material response dictates the self-oscillation dynamics, and realize a freestyle self-oscillator that combines numerous oscillation modes simultaneously by adjusting the excitation beam position. The results provide new insights into understanding of self-oscillation phenomenon and offer new designs for future self-propelling micro-robots.
UR - https://researchportal.tuni.fi/en/publications/6113c7fa-9ec6-43bd-bbd3-9a49827fd65d
U2 - 10.1038/s41467-019-13077-6
DO - 10.1038/s41467-019-13077-6
M3 - Article
C2 - 31700006
SN - 2041-1723
VL - 10
JO - Nature Communications
JF - Nature Communications
M1 - 5057
ER -