Literature DB >> 22860633

Emulsion templating of poly(lactic acid) particles: droplet formation behavior.

Goran T Vladisavljević1, Wynter J Duncanson, Ho Cheung Shum, David A Weitz.   

Abstract

Monodisperse poly(DL-lactic acid) (PLA) particles of diameters between 11 and 121 μm were fabricated in flow focusing glass microcapillary devices by evaporation of dichloromethane (DCM) from emulsion droplets at room temperature. The dispersed phase was 5% (w/w) PLA in DCM containing 0.1-2 mM Nile Red and the continuous phase was 5% (w/w) poly(vinyl alcohol) in reverse osmosis water. Particle diameter was 2.7 times smaller than the diameter of the emulsion droplet template, indicating very low particle porosity. Monodisperse droplets have only been produced under dripping regime using a wide range of dispersed phase flow rates (0.002-7.2 cm(3)·h(-1)), continuous phase flow rates (0.3-30 cm(3)·h(-1)), and orifice diameters (50-237 μm). In the dripping regime, the ratio of droplet diameter to orifice diameter was inversely proportional to the 0.39 power of the ratio of the continuous phase flow rate to dispersed phase flow rate. Highly uniform droplets with a coefficient of variation (CV) below 2% and a ratio of the droplet diameter to orifice diameter of 0.5-1 were obtained at flow rate ratios of 4-25. Under jetting regime, polydisperse droplets (CV > 6%) were formed by detachment from relatively long jets (between 4 and 10 times longer than droplet diameter) and a ratio of the droplet size to orifice size of 2-5.

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Year:  2012        PMID: 22860633     DOI: 10.1021/la302092f

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  6 in total

1.  An "off-the-shelf" capillary microfluidic device that enables tuning of the droplet breakup regime at constant flow rates.

Authors:  Bryan R Benson; Howard A Stone; Robert K Prud'homme
Journal:  Lab Chip       Date:  2013-12-07       Impact factor: 6.799

2.  Production of Fluconazole-Loaded Polymeric Micelles Using Membrane and Microfluidic Dispersion Devices.

Authors:  Yu Lu; Danial Chowdhury; Goran T Vladisavljević; Konstantinos Koutroumanis; Stella Georgiadou
Journal:  Membranes (Basel)       Date:  2016-05-25

Review 3.  Microfluidic Applications in Drug Development: Fabrication of Drug Carriers and Drug Toxicity Screening.

Authors:  Pei Zhao; Jianchun Wang; Chengmin Chen; Jianmei Wang; Guangxia Liu; Krishnaswamy Nandakumar; Yan Li; Liqiu Wang
Journal:  Micromachines (Basel)       Date:  2022-01-27       Impact factor: 2.891

4.  Facile Microfluidic Fabrication of Biocompatible Hydrogel Microspheres in a Novel Microfluidic Device.

Authors:  Minjun Chen; Ruqaiya Aluunmani; Guido Bolognesi; Goran T Vladisavljević
Journal:  Molecules       Date:  2022-06-22       Impact factor: 4.927

5.  Silymarin-loaded solid nanoparticles provide excellent hepatic protection: physicochemical characterization and in vivo evaluation.

Authors:  Kwan Yeol Yang; Du Hyeong Hwang; Abid Mehmood Yousaf; Dong Wuk Kim; Young-Jun Shin; Ok-Nam Bae; Yong-Il Kim; Jong Oh Kim; Chul Soon Yong; Han-Gon Choi
Journal:  Int J Nanomedicine       Date:  2013-08-28

6.  Microencapsulation of Clostridium difficile specific bacteriophages using microfluidic glass capillary devices for colon delivery using pH triggered release.

Authors:  Gurinder K Vinner; Goran T Vladisavljević; Martha R J Clokie; Danish J Malik
Journal:  PLoS One       Date:  2017-10-12       Impact factor: 3.240

  6 in total

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