Nanofluidics and Microfluidics

Nanofluidics and Microfluidics
Author: Shaurya Prakash
Publisher: William Andrew
Total Pages: 313
Release: 2014-01-16
Genre: Technology & Engineering
ISBN: 1437744702

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To provide an interdisciplinary readership with the necessary toolkit to work with micro- and nanofluidics, this book provides basic theory, fundamentals of microfabrication, advanced fabrication methods, device characterization methods and detailed examples of applications of nanofluidics devices and systems. Case studies describing fabrication of complex micro- and nanoscale systems help the reader gain a practical understanding of developing and fabricating such systems. The resulting work covers the fundamentals, processes and applied challenges of functional engineered nanofluidic systems for a variety of different applications, including discussions of lab-on-chip, bio-related applications and emerging technologies for energy and environmental engineering. The fundamentals of micro- and nanofluidic systems and micro- and nanofabrication techniques provide readers from a variety of academic backgrounds with the understanding required to develop new systems and applications. Case studies introduce and illustrate state-of-the-art applications across areas, including lab-on-chip, energy and bio-based applications. Prakash and Yeom provide readers with an essential toolkit to take micro- and nanofluidic applications out of the research lab and into commercial and laboratory applications.

Single Nanopore Transport of Synthetic and Biological Polyelectrolytes in Three-dimensional Hybrid Microfluidic/nanofluidic Devices

Single Nanopore Transport of Synthetic and Biological Polyelectrolytes in Three-dimensional Hybrid Microfluidic/nanofluidic Devices
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This paper presents a study of electrokinetic transport in single nanopores integrated into vertically-stacked three-dimensional hybrid microfluidic/nanofluidic structures. In these devices single nanopores, created by focused ion beam (FIB) milling in thin polymer films, provide fluidic connection between two vertically separated, perpendicular microfluidic channels. Experiments address both systems in which the nanoporous membrane is composed of the same (homojunction) or different (heterojunction) polymer as the microfluidic channels. These devices are then used to study the electrokinetic transport properties of synthetic (i.e., polystyrene sulfonate and polyallylamine) and biological (i.e., DNA) polyelectrolytes across these nanopores. Single nanopore transport of polyelectrolytes across these nanopores using both electrical current measurements and confocal microscopy. Both optical and electrical measurements indicate that electroosmotic transport is predominant over electrophoresis in single nanopores with d> 180 nm, consistent with results obtained under similar conditions for nanocapillary array membranes.

Electrokinetically-Driven Microfluidics and Nanofluidics

Electrokinetically-Driven Microfluidics and Nanofluidics
Author: Hsueh-Chia Chang
Publisher: Cambridge University Press
Total Pages: 526
Release: 2009-11-09
Genre: Technology & Engineering
ISBN: 9780521860253

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Electrokinetics is currently the mechanism of choice for fluid actuation and bioparticle manipulation at microscale and nanoscale dimensions. There has recently been widespread interest in the use of AC electric fields, given the many advantages it offers over DC electrokinetics. Nevertheless, a fundamental understanding of the governing mechanisms underlying the complex and nonlinear physicochemical hydrodynamics associated with these systems is required before practical microfluidic and nanofluidic devices can be engineered. This text aims to provide a comprehensive treatise on both classical equilibrium electrokinetic phenomena as well as the more recent non-equilibrium phenomena associated with both DC and AC electrokinetics in the context of their application to the design of microfluidic and nanofluidic technology. In particular, Leslie Yeo and Hsueh-Chia Chang discuss the linear and nonlinear theories underlying electroosmosis, electrophoresis, and dielectrophoresis pertaining to electrolytes as well as dielectric systems. Interfacial electrokinetic phenomena such as electrospraying, electrospinning, and electrowetting are also discussed.

3D Printed Microfluidic Devices

3D Printed Microfluidic Devices
Author: Savas Tasoglu
Publisher: MDPI
Total Pages: 213
Release: 2019-01-10
Genre: Botanical chemistry
ISBN: 3038974676

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This book is a printed edition of the Special Issue "3D Printed Microfluidic Devices" that was published in Micromachines

Microfluidic Devices in Nanotechnology

Microfluidic Devices in Nanotechnology
Author: Challa S. S. R. Kumar
Publisher: John Wiley & Sons
Total Pages: 561
Release: 2010-11-29
Genre: Technology & Engineering
ISBN: 111802933X

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Explores the latest applications arising from the intersection of nanotechnology and microfluidics In the past two decades, microfluidics research has seen phenomenal growth, with many new and emerging applications in fields ranging from chemistry, physics, and biology to engineering. With the emergence of nanotechnology, microfluidics is currently undergoing dramatic changes, embracing the rising field of nanofluidics. This volume reviews the latest devices and applications stemming from the merging of nanotechnology with microfludics in such areas as drug discovery, bio-sensing, catalysis, electrophoresis, enzymatic reactions, and nanomaterial synthesis. Each of the ten chapters is written by a leading pioneer at the intersection of nanotechnology and microfluidics. Readers not only learn about new applications, but also discover which futuristic devices and applications are likely to be developed. Topics explored in this volume include: New lab-on-a-chip systems for drug delivery Integration of microfluidics with nanoneuroscience to study the nervous system at the single-cell level Recent applications of nanoparticles within microfluidic channels for electrochemical and optical affinity biosensing Novel microfluidic approaches for the synthesis of nanomaterials Next-generation alternative energy portable power devices References in each chapter guide readers to the primary literature for further investigation of individual topics. Overall, scientists, researchers, engineers, and students will not only gain a new perspective on what has been done, but also the nanotechnology tools they need to develop the next generation of microfluidic devices and applications. Microfluidic Devices for Nanotechnology is a two-volume publication, the first ever to explore the synergies between microfluidics and nanotechnology. The first volume covers fundamental concepts; this second volume examines applications.

Driving Microfluidic Flows with Three Dimensional Electrodes

Driving Microfluidic Flows with Three Dimensional Electrodes
Author: Yehya Mohamed Senousy
Publisher:
Total Pages: 0
Release: 2012
Genre: Fluid dynamics
ISBN:

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Most of the structures in submillimeter-scale engineering are created from thin films, making them essentially two-dimensional (2D). Significant work has been done to fabricate 3D structures using self-folding, a deterministic form of self-assembly, and three dimensional lithographic and non-lithographic patterning. The objective of this work is to propose different fabrication and patterning strategies of 3D structures used as pumping electrodes for micro fluidic applications. 3D electrodes drive flows over the whole channel height while 2D electrodes stay near one wall. The first application of the 3D electrodes is mixing chemical or biological samples with reagents for chemical analysis which is one of the most time consuming operations in microfluidic platforms. The mixer used is based on the electrokinetic phenomenon of induced charge electro-osmosis (ICEO). ICEO creates microvortices around polarized posts with gold coated sidewalls, connected to embedded electrodes, by application of alternating current (AC) electric fields. These microvortices around posts help in mixing the two reagents very quickly. These vertical sidewall gold coated posts and embedded electrodes are fabricated using 3D photolithographic patterning and an ion milling fabrication technique. The second application is fast ac electro-osmotic (ACEO) pumps using 3D electrodes. These 3D electrodes dramatically improve the flow rate and frequency range of ACEO pumps over the planar electrodes. A non-photolithographic electrode patterning method is proposed to fabricate such electrodes. The method is based on shadowed evaporation of metal on an insulating substrate. This method is considered to be simple and cost effective compared to others used to create these stepped 3D electrodes. Finally, a self-folding technique is proposed to create out-of plane three dimensional electrodes for ACEO tube pumps. The technique depends on the strain mismatch between two different layered sheets of material. One layer usually has compressive stress, i.e. thermally grown Si02, and the other has relatively tensile stress, i.e. metals. The design is similar to the planar electrodes design in the literature, except as a 3D electrode it interacts with a larger volume of fluid for a more efficient pump.

An Integrated Microfluidic Platform for Chemical and Biological Sensing Employing Polymer-coated Piezoelectric Microcantilevers

An Integrated Microfluidic Platform for Chemical and Biological Sensing Employing Polymer-coated Piezoelectric Microcantilevers
Author: Masoud Khabiry
Publisher:
Total Pages: 141
Release: 2015
Genre: Biosensors
ISBN:

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Microfluidic integrated systems offer several advantages compared to macroscopic techniques. The ability to handle small sample volumes, portability, and the low cost of the devices are the most significant of these advantages. Microfluidic systems have substantially advanced the landscape of chemical and biological research. Microfluidic platforms hold great promise in manipulation and examination of single cells, single molecules, sensor integration, chemical synthesis, biochemical assays, bioanalysis, and high-throughput screening. In addition, microfluidic systems have great potential for integration of Micro/Nano electromechanical systems (MEMS/NEMS) and microcantilever-based sensors. In this work, an integrated microfluidic system with shear-protective regions that enables cell and particle immobilization, sensor integration, and nanoparticle synthesis is presented. Thus, a novel and simple microfluidic device for capturing small volume of cells by using sidewall microgroove containing channels and microposts is developed. The developed microfluidic system enabled the control of fluid flow and shear stress profiles. Furthermore, the shear stress variation and cell positioning in the sidewall microgrooves were investigated. Moreover, the histograms of cell locations in the microgrooves were provided and the most probable destination of the cells was presented. In the microfluidic device, further investigation on extracting cell information from image data was carried out. Hence, a cell segmentation technique was developed for cell counting and extracting the cell information from the microfluidic device. This platform also has the capability of integration of polymer coated piezoelectric microcantilevers which can be functionalized for analyte detection. Piezoelectric microcantilever-based sensors provide less complex system, eliminate the need for external optics and optical alignments, operate under larger gap distances, consume less power and generate less heat. Furthermore, piezoelectric microcantilever-based sensors can operate in the self-sensing manner where a piezoelectric layer embedded in the structure of the microcantilevers can be used for both sensing and actuating purposes. Moreover, an excellent way of enhancing and broadening the applicability and functionality of piezoelectric microcantilever-based sensors is to coat them with a layer of sensitive polymer. The data obtained from analyte detection by polymer coated piezoelectric microcantilever was presented. In addition, through a combined mathematical modeling the experimental findings were rationalized. Integration of microfluidic platform containing polymer coated piezoelectric microcantilever was presented. Utilization of three-dimensional (3D) printing method for developing of the microfluidic component of integrated system was discussed. Alternative physical set-up of the integrated microfluidic platform containing microcantilever array was presented. Microfluidic devices are also able to rapidly mix reagents, and provide homogenous reaction environments. These features make them an ideal platform for nanoparticle synthesis. In this work, capability of nanoparticle synthesis by our microfluidic platform was also presented. In particular, flow focusing microfluidic technique for continuous synthesis of nanoparticles was examined. There are some improvements that can be pursued for further investigation on the presented integrated platform such as using different shapes and angles of sidewall microgrooves. Overall, it is possible to use this simple and adaptable platform for a sensitive detection of a wide range of analytes.