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The development of a novel polymer-based micro robotic gripper that can be actuated in a fluidic medium is presented in this paper. Our current work is to explore new materials and designs for thermal actuators to achieve micromanipulation of live biological cells. We used parylene C to encapsulate a metal heater, resulting in effectively a tri-layered thermal actuator. Parylene C is a bio-compatible dielectric polymer that can serve as a barrier to various gases and chemicals.Therefore, it is suitable to serve as a thermal/electrical/chemical isolation material for protecting the metal heater from exposing to an aqueous environment. We have demonstrated parylene actuators (2 mm × 100μm × 0.5μm) to operate in an aqueous environment using 10 to 80 mW input power. The temperature of these actuators at full deflection was estimated to be ~ 60℃, which is much lower than the typical requirement of > 100℃ to actuate other conventional MEMS actuators. Danio rerio follicles in fluidic medium were captured successfully using these actuators. Moreover, these actuators were found to be responsive to moderate rise in environmental temperature, and hence, we could vary the fluidic medium temperature to actuate trimorphs on a chip without any input of electrical energy,i.e., raising the fluidic temperature from 23℃ to 60℃ could actuate the trimorphs to grasp follicles of ~ 1 mm size in diameter. At 60℃, the embryos inside the follicles were observed to be alive, i.e., they were still moving in the biological fluid isolated by the follicle membrane. The smallest follicles grasped were ~500μm in diameter using 800μm × 130μm × 0.6μm actuators. The fabrication process, modeling,and optimization of the trimorph actuators are presented. Based on the successful operation of these polymer-based actuators, we are currently developing multiflnger thermal microgrippers for cellular grasping and manipulation, which can potentially be hybridly integrated with circuits for computer control.
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篇名 DESIGN AND FABRICATION OF A MICRO THERMAL ACTUATOR FOR CELLULAR GRASPING
来源期刊 力学学报(英文版) 学科
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年,卷(期) 2004,(2) 所属期刊栏目
研究方向 页码范围 132-139
页数 8页 分类号
字数 语种 英文
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相关学者/机构
期刊影响力
力学学报(英文版)
双月刊
0567-7718
11-2063/O3
16开
北京中关村15号中科院力学所内
1985
eng
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1876
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0
总被引数(次)
7565
相关基金
香港研究资助局资助项目
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官方网址:http://www.ugc.edu.hk/eng/rgc/about/method/operation.htm
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