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MEMS-based micropumps in drug delivery and biomedical applications

机译:基于MEMS的微泵在药物输送和生物医学应用中的应用

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This paper briefly overviews progress on the development of MEMS-based micropumps and their applications in drug delivery and other biomedical applications such as micrototal analysis systems (μTAS) or lab-on-a-chip and point of care testing systems (POCT). The focus of the review is to present key features of micropumps such as actuation methods, working principles, construction, fabrication methods, performance parameters and their medical applications. Micropumps have been categorized as mechanical or non-mechanical based on the method by which actuation energy is obtained to drive fluid flow. The survey attempts to provide a comprehensive reference for researchers working on design and development of MEMS-based micropumps and a source for those outside the field who wish to select the best available micropump for a specific drug delivery or biomedical application. Micropumps for transdermal insulin delivery, artificial sphincter prosthesis, antithrombogenic micropumps for blood transportation, micropump for injection of glucose for diabetes patients and administration of neurotransmitters to neurons and micropumps for chemical and biological sensing have been reported. Various performance parameters such as flow rate, pressure generated and size of the micropump have been compared to facilitate selection of appropriate micropump for a particular application. Electrowetting, electrochemical and ion conductive polymer film (ICPF) actuator micropumps appear to be the most promising ones which provide adequate flow rates at very low applied voltage. Electroosmotic micropumps consume high voltages but exhibit high pressures and are intended for applications where compactness in terms of small size is required along with high-pressure generation. Bimetallic and electrostatic micropumps are smaller in size but exhibit high self-pumping frequency and further research on their design could improve their performance. Micropumps based on piezoelectric actuation require relatively high-applied voltage but exhibit high flow rates and have grown to be the dominant type of micropumps in drug delivery systems and other biomedical applications. Although a lot of progress has been made in micropump research and performance of micropumps has been continuously increasing, there is still a need to incorporate various categories of micropumps in practical drug delivery and biomedical devices and this will continue to provide a substantial stimulus for micropump research and development in future.
机译:本文简要概述了基于MEMS的微泵的开发及其在药物输送和其他生物医学应用中的应用,例如微总分析系统(μTAS)或芯片实验室和即时检验系统(POCT)。审查的重点是介绍微型泵的关键特性,例如致动方法,工作原理,构造,制造方法,性能参数及其医疗应用。基于获得致动能量来驱动流体流动的方法,微型泵被分为机械式或非机械式。该调查旨在为从事基于MEMS的微型泵设计和开发的研究人员提供全面的参考,并为那些希望为特定的药物输送或生物医学应用选择最佳的微型泵的领域外人士提供参考。据报道,用于经皮胰岛素输送的微型泵,人工括约肌假体,用于血液运输的抗血栓形成微型泵,用于糖尿病患者注射葡萄糖的微型泵以及用于神经元的神经递质的给药和用于化学和生物传感的微型泵。已经比较了各种性能参数,例如流速,产生的压力和微型泵的尺寸,以便于为特定应用选择合适的微型泵。电润湿,电化学和离子导电聚合物薄膜(ICPF)致动器微型泵似乎是最有前途的微型泵,它们可在非常低的施加电压下提供足够的流量。电渗微泵消耗高电压但表现出高压,并且旨在用于需要小尺寸紧凑和高压产生的应用。双金属和静电微型泵的尺寸较小,但具有较高的自泵频率,因此对其设计进行进一步的研究可以提高其性能。基于压电致动的微型泵需要较高的施加电压,但显示出高流速,并且已成为药物输送系统和其他生物医学应用中微型泵的主要类型。尽管微型泵的研究已经取得了很大的进步,并且微型泵的性能一直在不断提高,但是仍然需要在实际的药物输送和生物医学装置中纳入各种类型的微型泵,这将继续为微型泵的研究提供实质​​性的刺激。和未来的发展。

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