Language:
English
繁體中文
Help
圖資館首頁
Login
Back
Switch To:
Labeled
|
MARC Mode
|
ISBD
Manipulation of multiphase materials...
~
Coppola, Sara.
Manipulation of multiphase materials for touch-less nanobiotechnologya pyrofluidic platform /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Manipulation of multiphase materials for touch-less nanobiotechnologyby Sara Coppola.
Reminder of title:
a pyrofluidic platform /
Author:
Coppola, Sara.
Published:
Cham :Springer International Publishing :2016.
Description:
xv, 109 p. :ill. (some col.), digital ;24 cm.
Contained By:
Springer eBooks
Subject:
Nanobiotechnology.
Online resource:
http://dx.doi.org/10.1007/978-3-319-31059-6
ISBN:
9783319310596$q(electronic bk.)
Manipulation of multiphase materials for touch-less nanobiotechnologya pyrofluidic platform /
Coppola, Sara.
Manipulation of multiphase materials for touch-less nanobiotechnology
a pyrofluidic platform /[electronic resource] :by Sara Coppola. - Cham :Springer International Publishing :2016. - xv, 109 p. :ill. (some col.), digital ;24 cm. - Springer theses,2190-5053. - Springer theses..
Introduction -- Pyro-electric effect and polymers self-assembling -- Pyro-Electrohydrodynamic printing and multi jets Dispenser -- Pyro-EHD lithography, fabrication and employment of 3D microstructures -- High resolution patterning of biomaterials for tissue engineering -- Biodegradable microneedles for transdermal drug delivery -- Conclusions and perspectives.
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.
ISBN: 9783319310596$q(electronic bk.)
Standard No.: 10.1007/978-3-319-31059-6doiSubjects--Topical Terms:
679667
Nanobiotechnology.
LC Class. No.: TP248.25.N35
Dewey Class. No.: 620.115
Manipulation of multiphase materials for touch-less nanobiotechnologya pyrofluidic platform /
LDR
:03307nmm a2200337 a 4500
001
486474
003
DE-He213
005
20160930163754.0
006
m d
007
cr nn 008maaau
008
161116s2016 gw s 0 eng d
020
$a
9783319310596$q(electronic bk.)
020
$a
9783319310589$q(paper)
024
7
$a
10.1007/978-3-319-31059-6
$2
doi
035
$a
978-3-319-31059-6
040
$a
GP
$c
GP
041
0
$a
eng
050
4
$a
TP248.25.N35
072
7
$a
TGM
$2
bicssc
072
7
$a
PNRX
$2
bicssc
072
7
$a
TEC021000
$2
bisacsh
082
0 4
$a
620.115
$2
23
090
$a
TP248.25.N35
$b
C785 2016
100
1
$a
Coppola, Sara.
$3
744427
245
1 0
$a
Manipulation of multiphase materials for touch-less nanobiotechnology
$h
[electronic resource] :
$b
a pyrofluidic platform /
$c
by Sara Coppola.
260
$a
Cham :
$b
Springer International Publishing :
$b
Imprint: Springer,
$c
2016.
300
$a
xv, 109 p. :
$b
ill. (some col.), digital ;
$c
24 cm.
490
1
$a
Springer theses,
$x
2190-5053
505
0
$a
Introduction -- Pyro-electric effect and polymers self-assembling -- Pyro-Electrohydrodynamic printing and multi jets Dispenser -- Pyro-EHD lithography, fabrication and employment of 3D microstructures -- High resolution patterning of biomaterials for tissue engineering -- Biodegradable microneedles for transdermal drug delivery -- Conclusions and perspectives.
520
$a
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.
650
0
$a
Nanobiotechnology.
$3
679667
650
0
$a
Composite materials.
$3
196714
650
1 4
$a
Materials Science.
$3
273697
650
2 4
$a
Surfaces and Interfaces, Thin Films.
$3
274441
650
2 4
$a
Nanotechnology and Microengineering.
$3
348421
650
2 4
$a
Microengineering.
$3
484493
710
2
$a
SpringerLink (Online service)
$3
273601
773
0
$t
Springer eBooks
830
0
$a
Springer theses.
$3
557607
856
4 0
$u
http://dx.doi.org/10.1007/978-3-319-31059-6
950
$a
Chemistry and Materials Science (Springer-11644)
based on 0 review(s)
ALL
電子館藏
Items
1 records • Pages 1 •
1
Inventory Number
Location Name
Item Class
Material type
Call number
Usage Class
Loan Status
No. of reservations
Opac note
Attachments
000000125021
電子館藏
1圖書
電子書
EB TP248.25.N35 C785 2016
一般使用(Normal)
On shelf
0
1 records • Pages 1 •
1
Multimedia
Multimedia file
http://dx.doi.org/10.1007/978-3-319-31059-6
Reviews
Add a review
and share your thoughts with other readers
Export
pickup library
Processing
...
Change password
Login