Chimerad Mohammadreza, Borjian Pouya, Pathak Pawan, Fasano Jack, Cho Hyoung J
Department of Mechanical & Aerospace Engineering, College of Engineering & Computer Science, University of Central Florida, Orlando, FL 32816, USA.
Micromachines (Basel). 2024 Sep 29;15(10):1208. doi: 10.3390/mi15101208.
We present a novel miniaturized, gear-shaped, fuel-free actuator capable of autonomously propelling itself in an aquatic environment to absorb heavy metals, such as copper ions. While hydrogel-based absorbents are promising solutions for cationic pollutant remediation, their stationary nature limits their effectiveness in areas where contaminants are unevenly distributed. To address this, we developed a bio-inspired soft actuator that mimics natural propulsion mechanisms. The Marangoni effect, driven by its inherent chemical properties, demonstrated a self-propelled motion without requiring external fuel. The proof-of-concept actuator generated a plane motion lasting up to 2 h and swept over an area approximately 400 times bigger than its size. By harnessing the chemical and optical properties of the hydrogel, we efficiently removed and quantitatively analyzed copper ions through a colorimetric method. This innovative integration of self-propelled movement and efficient copper ion absorption underscores its potential for advancing miniaturized devices in environmental remediation, paving the way for more active and efficient pollutant removal systems in challenging aquatic environments.
我们展示了一种新型的小型化、齿轮形状、无需燃料的致动器,它能够在水生环境中自主推进以吸收重金属,如铜离子。虽然基于水凝胶的吸附剂是阳离子污染物修复的有前景的解决方案,但其静止的性质限制了它们在污染物分布不均匀地区的有效性。为了解决这个问题,我们开发了一种模仿自然推进机制的受生物启发的软致动器。由其固有化学性质驱动的马兰戈尼效应展示了无需外部燃料的自推进运动。概念验证致动器产生了持续长达2小时的平面运动,并扫过了一个比其尺寸大大约400倍的区域。通过利用水凝胶的化学和光学性质,我们通过比色法有效地去除并定量分析了铜离子。这种自推进运动与高效铜离子吸收的创新整合突出了其在推进环境修复中的小型化设备方面的潜力,为在具有挑战性的水生环境中开发更主动、高效的污染物去除系统铺平了道路。