Bansal Shubhi, Tokuda Yutaka, Peasley Jonathon, Subramanian Sriram
University College London, London WC1E 6BT, U.K.
City University of Hong Kong, Kowloon 518057, Hong Kong, China.
Langmuir. 2022 Jun 7;38(22):6996-7004. doi: 10.1021/acs.langmuir.2c00577. Epub 2022 May 26.
Liquid metals, including eutectic gallium-indium (EGaIn), have been explored for various planar droplet operations, including droplet splitting and merging, promoting their use in emerging areas such as flexible electronics and soft robotics. However, three-dimensional (3D) droplet operations, including droplet bouncing, have mostly been limited to nonmetallic liquids or aqueous solutions. This is the first study of liquid metal droplet bouncing using continuous AC electrowetting through an analytical model, computational fluid dynamics simulation, and empirical validation to the best of our knowledge. We achieved liquid metal droplet bouncing with a height greater than 5 mm with an actuation voltage of less than 10 V and a frequency of less than 5 Hz. We compared the bouncing trajectories of the liquid metal droplet for different actuation parameters. We found that the jumping height of the droplet increases as the frequency of the applied AC voltage decreases and its amplitude increases until the onset of instability. Furthermore, we model the attenuation dynamics of consecutive bouncing cycles of the underdamped droplet bouncing system. This study embarks on controlling liquid metal droplet bouncing electrically, thereby opening a plethora of new opportunities utilizing 3D liquid metal droplet operations for numerous applications such as energy harvesting, heat transfer, and radio frequency (RF) switching.
包括共晶镓铟(EGaIn)在内的液态金属已被用于各种平面液滴操作,包括液滴分裂和合并,推动了它们在柔性电子和软机器人等新兴领域的应用。然而,三维(3D)液滴操作,包括液滴弹跳,大多局限于非金属液体或水溶液。据我们所知,这是首次通过分析模型、计算流体动力学模拟和实验验证,利用连续交流电润湿对液态金属液滴弹跳进行的研究。我们在小于10 V的驱动电压和小于5 Hz的频率下实现了高度大于5 mm的液态金属液滴弹跳。我们比较了不同驱动参数下液态金属液滴的弹跳轨迹。我们发现,液滴的跳跃高度随着所施加交流电压频率的降低及其幅度的增加而增加,直到出现不稳定性。此外,我们对欠阻尼液滴弹跳系统连续弹跳周期的衰减动力学进行了建模。这项研究着手通过电控制液态金属液滴弹跳,从而为利用3D液态金属液滴操作在能量收集、热传递和射频(RF)开关等众多应用中开辟了大量新机会。