Literature DB >> 16421085

Monodisperse structured multi-vesicle microencapsulation using flow-focusing and controlled disturbance.

Rodrigo Bocanegra1, José Luis Sampedro, Alfonso Gañán-Calvo, Manuel Marquez.   

Abstract

A method to produce monodisperse structured microcapsules in the diameter range from 10-100 microm is here presented. Flow-focusing is a well known technique whereby a steady capillary micro-jet is generated by the action of a highly accelerated co-flowing stream forced through a small orifice. The micro-jet breaks up owing to capillary instability, giving rise to droplets with a narrow size distribution. In the present study, flow-focusing gives rise not to simple but to compound capillary jets. At break-up, under suitable control parameters, such jets give rise to microcapsules where an outer liquid (shell liquid) surrounds a core liquid integrated by one or more vesicles. Furthermore, under adequate stimulation combining a sinusoidal signal with intermittent pulses, the jet break-up can be controlled. Highly monodisperse microcapsules are produced; fundamental geometric parameters (main diameter, shell thickness or number of cores) are reliably controlled. Rather than using a gas flow to focus the concentric stream of two immiscible liquids, this study has investigated in some detail the evolution of a concentric stream of three immiscible liquids forced through a small orifice. The selection of the surface tension coefficients between the three phases ensures the robust production of a microcapsule structure involving a plurality of vesicles homogeneously distributed in the capsule bulk, the number of cores being a freely chosen parameter. Such composite microcapsules find a broad field of technological applications in the pharmaceutical, food or biotechnology industries.

Mesh:

Year:  2005        PMID: 16421085     DOI: 10.1080/02652040500273639

Source DB:  PubMed          Journal:  J Microencapsul        ISSN: 0265-2048            Impact factor:   3.142


  2 in total

1.  Methodology for the Evaluation of Double-Layered Microcapsule Formability Zone in Compound Nozzle Jetting Based on Growth Rate Ratio.

Authors:  Wei Wang; C Leigh Herran; Nicole Coutris; Yong Huang; Vladimir Mironov; Roger Markwald
Journal:  J Fluids Eng       Date:  2013-04-08       Impact factor: 1.995

2.  Fabrication of Microbeads with a Controllable Hollow Interior and Porous Wall Using a Capillary Fluidic Device.

Authors:  Sung-Wook Choi; Yu Zhang; Younan Xia
Journal:  Adv Funct Mater       Date:  2009-09-23       Impact factor: 18.808

  2 in total

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