MEMS-based micropumps in drug delivery and biomedical applications

被引:461
|
作者
Nisar, A. [1 ]
AftuIpurkar, Nitin [1 ]
Mahaisavariya, Banchong [1 ]
Tuantranont, Adisom [1 ]
机构
[1] Asian Inst Technol, Sch Engn & Technol, Ind Syst Engn, Klongluang 12120, Pathumthani, Thailand
关键词
MEMS; microfluidics; micropump; drug delivery; micrototal analysis systems (mu TAS); point of care testing (POCT); insulin delivery; artificial sphincter prosthesis; antithrombogenic micropump; ion conductive polymer film (ICPF); electrochemical; evaporation type micropump;
D O I
10.1016/j.snb.2007.10.064
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
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 (mu TAS) 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. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:917 / 942
页数:26
相关论文
共 50 条
  • [41] Dynamic simulation of thermopneumatic micropumps for biomedical applications
    Bardaweel, Hamzeh K.
    Bardaweel, Sanaa K.
    MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2013, 19 (12): : 2017 - 2024
  • [42] Starch-Based Hydrogels as a Drug Delivery System in Biomedical Applications
    Lee, Chung-Sung
    Hwang, Hee Sook
    GELS, 2023, 9 (12)
  • [43] Biomedical Applications of Natural Polymers for Drug Delivery
    Chifiriuc, Mariana Carmen
    Grumezescu, Alexandru Mihai
    Grumezescu, Valentina
    Bezirtzoglou, Eugenia
    Lazar, Veronica
    Bolocan, Alexandra
    CURRENT ORGANIC CHEMISTRY, 2014, 18 (02) : 152 - 164
  • [44] Oral drug delivery platforms for biomedical applications
    Ouyang, Jiang
    Zhang, Zhongyang
    Deng, Bo
    Liu, Jinggong
    Wang, Liqiang
    Liu, Haijun
    Koo, Seyoung
    Chen, Shuying
    Li, Yongjiang
    V. Yaremenko, Alexey
    Huang, Xiangang
    Chen, Wei
    Lee, Yuhan
    Tao, Wei
    MATERIALS TODAY, 2023, 62 : 296 - 326
  • [45] Pectin in biomedical and drug delivery applications: A review
    Li, De-qiang
    Li, Jun
    Dong, Hui-lin
    Li, Xin
    Zhang, Jia-qi
    Ramaswamy, Shri
    Xu, Feng
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2021, 185 : 49 - 65
  • [46] Miniaturized Drug Delivery System for Biomedical Applications
    Moussi, Khalil
    AlDajani, Mohammed
    Kosel, Jurgen
    2019 14TH ANNUAL IEEE INTERNATIONAL CONFERENCE ON NANO/MICRO ENGINEERED AND MOLECULAR SYSTEMS (IEEE-NEMS 2019), 2019, : 97 - 100
  • [47] Editorial for the Special Issue on Biosensors and MEMS-Based Diagnostic Applications
    Altintas, Zeynep
    MICROMACHINES, 2021, 12 (03) : 1 - 2
  • [48] COMPUTATIONAL SIMULATION OF A MEMS-BASED MICROACTUATOR FOR TISSUE ENGINEERING APPLICATIONS
    Keyes, Joseph
    Junkin, Michael
    Wong, Pak Kin
    Geest, Jonathan P. Vande
    PROCEEDINGS OF THE ASME SUMMER BIOENGINEERING CONFERENCE 2008, PTS A AND B, 2009, : 571 - 572
  • [49] Performance analysis of MEMS-based inertial sensors for positioning applications
    Abdel-Hamid, A
    Noureldin, A
    El-Sheimy, N
    Lachapellee, G
    SYSTEM-ON-CHIP FOR REAL-TIME APPLICATIONS, 2003, : 440 - 450
  • [50] Fast Configuration of MEMS-Based Storage Devices for Streaming Applications
    Khatib, Mohammed G.
    van Dijk, Hylke W.
    2009 IEEE/ACM/IFIP 7TH WORKSHOP ON EMBEDDED SYSTEMS FOR REAL-TIME MULTIMEDIA, 2009, : 55 - 63