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High Throughput Single-cell and Multiple-cell Micro-encapsulation
Published on: June 15, 2012
Submerged electrosprays: a versatile approach for microencapsulation.
1Department of Mechanical Engineering, University College London. UK. s.jayasinghe@ucl.ac.uk
Journal of Microencapsulation
|June 21, 2007
Summary
Submerged electrosprays efficiently create microencapsulations containing gas or particles. This versatile technique offers precise control over size and generation rate for diverse applications.
Area of Science:
- Materials Science and Engineering
- Chemical Engineering
- Biomedical Engineering
Background:
- Microencapsulation is crucial for physical and life sciences, with applications in diagnostics, imaging, gene therapy, and drug delivery.
- Existing jet-based microencapsulation methods utilize capillary or channel techniques driven by aerodynamic/pressure gradients or piezoelectricity.
Purpose of the Study:
- To explore submerged electrosprays as a versatile, electric field-driven technique for producing near monodispersed microencapsulations.
- To demonstrate control over microencapsulation size and generation rate for potential biomedical and clinical applications.
Main Methods:
- Utilized submerged electrosprays, an electric field-driven jet-based technique, for microencapsulation.
- Investigated the formation of microencapsulations containing gas or micro/nanoparticulate suspensions.
Main Results:
- Successfully formed microencapsulations in the micrometer range: 65-80 µm for gas, 8-25 µm for microparticles, and 3-14 µm for nanoparticles.
- Demonstrated the ability to contain immiscible, high-viscosity particulate suspensions.
- Achieved facile control over encapsulation size and production rate.
Conclusions:
- Submerged electrosprays offer a promising route for microencapsulation, particularly for high-viscosity materials and precise size control.
- The technique's versatility and controllability suggest broad applications in materials science and biomedical fields, including the encapsulation of living organisms.
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