2023
DOI: 10.1002/admt.202202201
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Acoustofluidics: A Versatile Tool for Micro/Nano Separation at the Cellular, Subcellular, and Biomolecular Levels

Abstract: Separation of micro/nanoparticles, such as cellular, subcellular and biomolecular, has attracted increasing attention because of their remarkable potential applications in various fields, including chemistry, physics, medicine, etc. Among different micro/nanoparticle separation methods, acoustofluidics, which combines acoustics and microfluidics, has drawn the interest of researchers due to its biocompatibility, high efficiency and free labeling. In this review, the basic constitutions, mechanisms, and materia… Show more

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Cited by 3 publications
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“…In general, continuous particle/cell sorting techniques using microfluidics exploit differences in particle mobility in the lateral direction in laminar flow systems. Some of these techniques exert physical forces on cells as the driving forces for cell migration, as represented by dielectrophoresis, acoustophoresis, magnetophoresis, and particle inertia raised by the flow, including Dean flow fractionation, inertial sorting, multiorifice fractionation, and centrifugation-assisted methods. , Purely hydrodynamic sorting techniques have also been studied, include pinched flow fractionation (PFF), , deterministic lateral displacement (DLD), , hydrodynamic filtration (HDF), , hydrodynamic migration-based separation, , and lattice-channel-based sorting. These hydrodynamic mechanisms utilize branching channels or periodically arranged obstacles to selectively separate large and/or less deformable particles from the original flow of the particle suspension. A crucial requirement common to most of these methods for effective particle sorting is the introduction of sheath flow.…”
Section: Introductionmentioning
confidence: 99%
“…In general, continuous particle/cell sorting techniques using microfluidics exploit differences in particle mobility in the lateral direction in laminar flow systems. Some of these techniques exert physical forces on cells as the driving forces for cell migration, as represented by dielectrophoresis, acoustophoresis, magnetophoresis, and particle inertia raised by the flow, including Dean flow fractionation, inertial sorting, multiorifice fractionation, and centrifugation-assisted methods. , Purely hydrodynamic sorting techniques have also been studied, include pinched flow fractionation (PFF), , deterministic lateral displacement (DLD), , hydrodynamic filtration (HDF), , hydrodynamic migration-based separation, , and lattice-channel-based sorting. These hydrodynamic mechanisms utilize branching channels or periodically arranged obstacles to selectively separate large and/or less deformable particles from the original flow of the particle suspension. A crucial requirement common to most of these methods for effective particle sorting is the introduction of sheath flow.…”
Section: Introductionmentioning
confidence: 99%