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Inertial microfluidics

Lab on a Chip · 2009 · Vol. 9(21) · pp. 3038–3038
Dino Di Carlo

Abstract

Despite the common wisdom that inertia does not contribute to microfluidic phenomena, recent work has shown a variety of useful effects that depend on fluid inertia for applications in enhanced mixing, particle separation, and bioparticle focusing. Due to the robust, fault-tolerant physical effects employed and high rates of operation, inertial microfluidic systems are poised to have a critical impact on high-throughput separation applications in environmental cleanup and physiological fluids processing, as well as bioparticle focusing applications in clinical diagnostics. In this review I will discuss the recent accelerated progress in developing prototype inertial microfluidic systems for a variety of applications and attempt to clarify the fundamental fluid dynamic effects that are being exploited. Finally, since this a nascent area of research, I will suggest some future promising directions exploiting fluid inertia on the microscale.

Microfluidic and Bio-sensing TechnologiesMicrofluidic and Capillary Electrophoresis ApplicationsElectrowetting and Microfluidic TechnologiesMicroscale chemistryMicrofluidicsInertiaInertial frame of referenceNanotechnologyComputer scienceMechanical engineeringEngineeringBiochemical engineeringMaterials science

MeSH terms

Equipment DesignPhysicsMicrofluidicsMicrofluidic Analytical Techniques
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Inertial microfluidics · Scinovex