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1.
Lab Chip ; 13(9): 1803-9, 2013 May 07.
Artigo em Inglês | MEDLINE | ID: mdl-23493956

RESUMO

We have demonstrated a microfluidic device that can not only achieve three-dimensional flow focusing but also confine particles to the center stream along the channel. The device has a sample channel of smaller height and two sheath flow channels of greater height, merged into the downstream main channel where 3D focusing effects occur. We have demonstrated that both beads and cells in our device display significantly lower CVs in velocity and position distributions as well as reduced probability of coincidental events than they do in conventional 2D-confined microfluidic channels. The improved particle confinement in the microfluidic channel is highly desirable for microfluidic flow cytometers and in fluorescence-activated cell sorting (FACS). We have also reported a novel method to measure the velocity of each individual particle in the microfluidic channel. The method is compatible with the flow cytometer setup and requires no sophisticated visualization equipment. The principles and methods of device design and characterization can be applicable to many types of microfluidic systems.


Assuntos
Citometria de Fluxo/instrumentação , Microfluídica , Microfluídica/instrumentação , Microfluídica/métodos
2.
Lab Chip ; 7(10): 1352-6, 2007 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-17896021

RESUMO

We demonstrate an integrated microfluidic flow sensor with ultra-wide dynamic range, suitable for high throughput applications such as flow cytometry and particle sorting/counting. A fiber-tip cantilever transduces flow rates to optical signal readout, and we demonstrate a dynamic range from 0 to 1500 microL min(-1) for operation in water. Fiber-optic sensor alignment is guided by preformed microfluidic channels, and the dynamic range can be adjusted in a one-step chemical etch. An overall non-linear response is attributed to the far-field angular distribution of single-mode fiber output.


Assuntos
Desenho Assistido por Computador , Tecnologia de Fibra Óptica/instrumentação , Técnicas Analíticas Microfluídicas/instrumentação , Modelos Teóricos , Refratometria/instrumentação , Simulação por Computador , Tecnologia de Fibra Óptica/métodos , Técnicas Analíticas Microfluídicas/métodos , Fibras Ópticas , Refratometria/métodos , Integração de Sistemas
3.
Appl Opt ; 43(4): 783-7, 2004 Feb 01.
Artigo em Inglês | MEDLINE | ID: mdl-14960070

RESUMO

High-performance fluidic lenses with an adjustable focal length spanning a very wide range (30 mm to infinite) are demonstrated. We show that the focal length, F-number, and numerical aperture can be dynamically controlled by changing the shape of the fluidic adaptive lens without moving the lens position mechanically. The shortest focal length demonstrated is less than 30 mm for a 20-mm lens aperture. The fluidic adaptive lens has a nearly perfect spherical profile and shows a resolution better than 40 line pairs/mm in a plano-convex structure and 57 line pairs/mm in a biconvex structure.

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