Manipulation of Multiphase Materials for Touch-less Nanobiotechnology

A Pyrofluidic Platform

Nonfiction, Science & Nature, Technology, Nanotechnology, Material Science
Cover of the book Manipulation of Multiphase Materials for Touch-less Nanobiotechnology by Sara Coppola, Springer International Publishing
View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart
Author: Sara Coppola ISBN: 9783319310596
Publisher: Springer International Publishing Publication: April 3, 2016
Imprint: Springer Language: English
Author: Sara Coppola
ISBN: 9783319310596
Publisher: Springer International Publishing
Publication: April 3, 2016
Imprint: Springer
Language: English

The thesis presents an original and smart way to manipulate liquid and polymeric materials using a “pyro-fluidic platform” which exploits the pyro-electric effect activated onto a ferroelectric crystal. It describes a great variety of functionalities of the pyro-electrohydrodynamic platform, such as droplet self-assembling and dispensing, for manipulating multiphase liquids at the micro- and nanoscale. The thesis demonstrates the feasibility of non-contact self-assembling of liquids in plane (1D) using a micro engineered crystal, improving the dispensing capability and the smart transfer of material between two different planes (2D) and controlling and fabricating three-dimensional structures (3D).

The thesis present the fabrication of highly integrated and automated ‘lab-on-a-chip’ systems based on microfluidics. The pyro-platform presented herein offers the great advantage of enabling the actuation of liquids in contact with a polar dielectric crystal through an electrode-less configuration. The simplicity and flexibility of the method for fabricating 3D polymer microstructures shows the great potential of the pyro-platform functionalities, exploitable in many fields, from optics to biosensing. In particular, this thesis reports the fabrication of optically active elements, such as nanodroplets, microlenses and microstructures, which have many potential applications in photonics.

The capability for manipulating the samples of interest in a touch-less modality is very attractive for biological and chemical assays. Besides controlling cell growth and fate, smart micro-elements could deliver optical stimuli from and to cells monitoring their growth in real time, opening interesting perspectives for the realization of optically active scaffolds made of nanoengineered functional elements, thus paving the way to fascinating Optogenesis Studies.

View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart

The thesis presents an original and smart way to manipulate liquid and polymeric materials using a “pyro-fluidic platform” which exploits the pyro-electric effect activated onto a ferroelectric crystal. It describes a great variety of functionalities of the pyro-electrohydrodynamic platform, such as droplet self-assembling and dispensing, for manipulating multiphase liquids at the micro- and nanoscale. The thesis demonstrates the feasibility of non-contact self-assembling of liquids in plane (1D) using a micro engineered crystal, improving the dispensing capability and the smart transfer of material between two different planes (2D) and controlling and fabricating three-dimensional structures (3D).

The thesis present the fabrication of highly integrated and automated ‘lab-on-a-chip’ systems based on microfluidics. The pyro-platform presented herein offers the great advantage of enabling the actuation of liquids in contact with a polar dielectric crystal through an electrode-less configuration. The simplicity and flexibility of the method for fabricating 3D polymer microstructures shows the great potential of the pyro-platform functionalities, exploitable in many fields, from optics to biosensing. In particular, this thesis reports the fabrication of optically active elements, such as nanodroplets, microlenses and microstructures, which have many potential applications in photonics.

The capability for manipulating the samples of interest in a touch-less modality is very attractive for biological and chemical assays. Besides controlling cell growth and fate, smart micro-elements could deliver optical stimuli from and to cells monitoring their growth in real time, opening interesting perspectives for the realization of optically active scaffolds made of nanoengineered functional elements, thus paving the way to fascinating Optogenesis Studies.

More books from Springer International Publishing

Cover of the book Theory and Practice of Natural Computing by Sara Coppola
Cover of the book Biofilm-based Healthcare-associated Infections by Sara Coppola
Cover of the book Combinatorial Algorithms by Sara Coppola
Cover of the book Electrical Design of a 400 kV Composite Tower by Sara Coppola
Cover of the book Transfusion in the Intensive Care Unit by Sara Coppola
Cover of the book Breaking Down Barriers by Sara Coppola
Cover of the book From Partisan Banking to Open Access by Sara Coppola
Cover of the book Employee Engagement in Media Management by Sara Coppola
Cover of the book Carbon Nanomaterials as Adsorbents for Environmental and Biological Applications by Sara Coppola
Cover of the book Optically Active Charge Traps and Chemical Defects in Semiconducting Nanocrystals Probed by Pulsed Optically Detected Magnetic Resonance by Sara Coppola
Cover of the book Rethinking Taxation in Latin America by Sara Coppola
Cover of the book Operations Research, Engineering, and Cyber Security by Sara Coppola
Cover of the book Laser Scanning Systems in Highway and Safety Assessment by Sara Coppola
Cover of the book Educational Technologies in Medical and Health Sciences Education by Sara Coppola
Cover of the book Introduction to Morphogenetic Computing by Sara Coppola
We use our own "cookies" and third party cookies to improve services and to see statistical information. By using this website, you agree to our Privacy Policy