This work addresses novel means for controlled mixing and reaction initiation in biomimetic confined compartments having volume elements in the range of 10-12 to 10-15 L. The method is based on mixing fluids using a two-site injection scheme into growing surfactant vesicles. A solid-state injection needle is inserted into a micrometer-sized vesicle (radius 5−25 μm), and by pulling on the needle, we create a nanoscale surfactant channel connecting injection needle and the vesicle. Injection of a solvent A from the needle into the nanotube results in the formation of a growing daughter vesicle at the tip of the needle in which mixing takes place. The growth of the daughter vesicle requires a flow of surfactants in the nanotube that generates ...
Networks of nanotubes and vesicles offer a platform for construction of nanofluidic devicesoperating...
Methods for construction of surface-immobilized microscopic networks of phospholipid bilayer vesicle...
We demonstrate that microfluidic flow devices enable a rapid, continuous, well-reproducible and size...
This work addresses novel means for controlled mixing and reaction initiation in biomimetic confined...
This work addresses novel means for controlled mixing and reaction initiation in biomimetic confined...
We present a technique to initiate chemical reactions involving few reactants inside micrometer-scal...
Methods for construction of geometrically complex, fully connected surface-immobilized microscopic n...
Methods based on self-assembly and self-organization for construction of lipid bilayer networks, con...
Surfactant lipids are an essential element of living cells. They are the basis for the biomembranes ...
Development and application of a microfluidic system for generating drug delivery carriers are inves...
We present a microelectrofusion method for construction of fluid-state lipid bilayer networks of hig...
We describe micromanipulation and microinjection procedures for the fabrication of soft-matter netwo...
Methods based on self-assembly, self-organization, and forced shape transformations to form syntheti...
We describe a novel micropipet-assisted technique for the construction of complex, surface-immobiliz...
In this article we review the flow chemistry methodologies for the controlled synthesis of different...
Networks of nanotubes and vesicles offer a platform for construction of nanofluidic devicesoperating...
Methods for construction of surface-immobilized microscopic networks of phospholipid bilayer vesicle...
We demonstrate that microfluidic flow devices enable a rapid, continuous, well-reproducible and size...
This work addresses novel means for controlled mixing and reaction initiation in biomimetic confined...
This work addresses novel means for controlled mixing and reaction initiation in biomimetic confined...
We present a technique to initiate chemical reactions involving few reactants inside micrometer-scal...
Methods for construction of geometrically complex, fully connected surface-immobilized microscopic n...
Methods based on self-assembly and self-organization for construction of lipid bilayer networks, con...
Surfactant lipids are an essential element of living cells. They are the basis for the biomembranes ...
Development and application of a microfluidic system for generating drug delivery carriers are inves...
We present a microelectrofusion method for construction of fluid-state lipid bilayer networks of hig...
We describe micromanipulation and microinjection procedures for the fabrication of soft-matter netwo...
Methods based on self-assembly, self-organization, and forced shape transformations to form syntheti...
We describe a novel micropipet-assisted technique for the construction of complex, surface-immobiliz...
In this article we review the flow chemistry methodologies for the controlled synthesis of different...
Networks of nanotubes and vesicles offer a platform for construction of nanofluidic devicesoperating...
Methods for construction of surface-immobilized microscopic networks of phospholipid bilayer vesicle...
We demonstrate that microfluidic flow devices enable a rapid, continuous, well-reproducible and size...