The integration of smart stimulus-responsive polymers as functional elements within microfluidic devices has greatly improved the performance capabilities of controlled fluid delivery. For their use as actuators in microfluidic systems, reversible expansion and shrinking are unique mechanisms which can be utilized as both passive and active fluid control elements to establish gate and valve functions (passive) and pumping elements (active). Various constituents in microfluidic glass channels based on stimulus-responsive elements have been reported based on pH-responsive, thermoresponsive and photoresponsive coatings. Fluid control and robust performance have been demonstrated in microfluidic devices in a number of studies. Here we give a br...
New generations of chemical sensors require both innovative (evolutionary) engineering concepts and ...
Our capacity to create and characterise structures with 3D spatial control ranging from molecular sc...
Responsive polymeric, micron-sized materials are described that can locally manipulate fluids by rev...
The integration of smart stimulus-responsive polymers as functional elements within microfluidic dev...
In this Thesis, the development and the characterization of polymeric films with the ultimate goal o...
Abstract: Responsive polymers attached to the inside of nano/micro-pores have attracted great intere...
In microfluidics, valves and pumps that can combine specifications like precise flow control, provis...
The requirement of significant off-chip fluid manipulation using high-cost mechanical components has...
Microfluidics refers to devices and methods for controlling and manipulating fluid flows at length s...
Integration of stimuli-responsive materials into microfluidic systems provides a means to locally ma...
Microfluidic devices have not yet evolved into commercial off-the-shelf products. Although highly in...
\u3cp\u3eWhile the microfluidic device itself may be small, often the equipment required to control ...
The ultimate success of micron/nanofluidic bioanalytical systems heavily hinges on new micro/nanoflu...
This thesis investigates the synthesis and performance of various stimuli-responsive materials with ...
Microfluidics covers the science of manipulating small quantities of fluids using microscale devices...
New generations of chemical sensors require both innovative (evolutionary) engineering concepts and ...
Our capacity to create and characterise structures with 3D spatial control ranging from molecular sc...
Responsive polymeric, micron-sized materials are described that can locally manipulate fluids by rev...
The integration of smart stimulus-responsive polymers as functional elements within microfluidic dev...
In this Thesis, the development and the characterization of polymeric films with the ultimate goal o...
Abstract: Responsive polymers attached to the inside of nano/micro-pores have attracted great intere...
In microfluidics, valves and pumps that can combine specifications like precise flow control, provis...
The requirement of significant off-chip fluid manipulation using high-cost mechanical components has...
Microfluidics refers to devices and methods for controlling and manipulating fluid flows at length s...
Integration of stimuli-responsive materials into microfluidic systems provides a means to locally ma...
Microfluidic devices have not yet evolved into commercial off-the-shelf products. Although highly in...
\u3cp\u3eWhile the microfluidic device itself may be small, often the equipment required to control ...
The ultimate success of micron/nanofluidic bioanalytical systems heavily hinges on new micro/nanoflu...
This thesis investigates the synthesis and performance of various stimuli-responsive materials with ...
Microfluidics covers the science of manipulating small quantities of fluids using microscale devices...
New generations of chemical sensors require both innovative (evolutionary) engineering concepts and ...
Our capacity to create and characterise structures with 3D spatial control ranging from molecular sc...
Responsive polymeric, micron-sized materials are described that can locally manipulate fluids by rev...