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Trapping and Driving Individual Charged Micro-particles in Fluid with an Electrostatic Device

Trapping and Driving Individual Charged Micro-particles in Fluid with an Electrostatic Device
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摘要 A variety of micro-tweezers techniques, such as optical tweezers, magnetic tweezers, and dielectrophoresis technique, have been applied intensively in precise characterization of micro/nanoparticles and bio-molecules. They have contributed remarkably in better understanding of working mechanisms of individual sub-cell organelles, proteins, and DNA. In this paper, we present a controllable electrostatic device embedded in a microchannel, which is capable of driving,trapping, and releasing charged micro-particles suspended in microfluid, demonstrating the basic concepts of electrostatic tweezers. Such a device is scalable to smaller size and offers an alternative to currently used micro-tweezers for application in sorting, selecting, manipulating, and analyzing individual micro/nanoparticles. Furthermore, the system offers the potential in being combined with dielectrophoresis and other techniques to create hybrid micro-manipulation systems. A variety of micro-tweezers techniques, such as optical tweezers, magnetic tweezers, and dielectrophoresis technique, have been applied intensively in precise characterization of micro/nanoparticles and bio-molecules. They have contributed remarkably in better understanding of working mechanisms of individual sub-cell organelles, proteins, and DNA. In this paper, we present a controllable electrostatic device embedded in a microchannel, which is capable of driving, trapping, and releasing charged micro-particles suspended in microfluid, demonstrating the basic concepts of electrostatic tweezers. Such a device is scalable to smaller size and offers an alternative to currently used micro-tweezers for application in sorting, selecting, manipulating, and analyzing individual micro/nanoparticles. Furthermore, the system offers the potential in being combined with dielectrophoresis and other techniques to create hybrid micro-manipulation systems.
出处 《Nano-Micro Letters》 SCIE EI CAS 2016年第3期270-281,共12页 纳微快报(英文版)
基金 financially supported by National Natural Science Foundation of China (NSFC Grants No.11374016) MOST of China (Grant 2012CB932702, 2011CB933002)
关键词 ELECTROSTATIC TWEEZERS CHARGED particles COULOMB potential well Manipulation TRAP Electrostatic tweezers Charged particles Coulomb potential well Manipulation Trap
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