Language:
English
繁體中文
Help
Login
Back
Switch To:
Labeled
|
MARC Mode
|
ISBD
Lithium Intercalation in Bilayer Gra...
~
SpringerLink (Online service)
Lithium Intercalation in Bilayer Graphene Devices
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Lithium Intercalation in Bilayer Graphene Devices/ by Matthias Kühne.
Author:
Kühne, Matthias.
Description:
XVI, 116 p. 64 illus., 60 illus. in color.online resource. :
Contained By:
Springer Nature eBook
Subject:
Solid state physics. -
Online resource:
https://doi.org/10.1007/978-3-030-02366-9
ISBN:
9783030023669
Lithium Intercalation in Bilayer Graphene Devices
Kühne, Matthias.
Lithium Intercalation in Bilayer Graphene Devices
[electronic resource] /by Matthias Kühne. - 1st ed. 2018. - XVI, 116 p. 64 illus., 60 illus. in color.online resource. - Springer Theses, Recognizing Outstanding Ph.D. Research,2190-5053. - Springer Theses, Recognizing Outstanding Ph.D. Research,.
Introduction -- Electronic Properties -- Electrochemical Device Setup and Fabrication -- Lithiation Studies -- Conductivity Corrections from Quantum Interferences -- Intercalate Diffusion Pathways -- Intercalate Diffusion Kinetics -- Summary.
This book reports on the successful implementation of an innovative, miniaturized galvanic cell that offers unprecedented control over and access to ionic transport. It represents a milestone in fundamental studies on the diffusive transport of lithium ions between two atomically thin layers of carbon (graphene), a highly relevant aspect in electrodes for energy and mass storage in the context of batteries. Further, it is a beautiful example of how interdisciplinary work that combines expertise from two very distinct fields can significantly advance science. Machinery and tools common in the study of low-dimensional systems in condensed matter physics are combined with methods routinely employed in electrochemistry to enable truly unique and powerful experiments. The method developed here can easily be generalized and extended to other layered materials as well as other ionic species. Not only the method but also the outcome of its application to Li diffusion and intercalation in bilayer graphene is remarkable. A record chemical diffusion coefficient is demonstrated, exceeding even the diffusion of sodium chloride in water and surpassing any reported value of ion diffusion in single-phase mixed conducting materials. This finding may be indicative of the exceptional properties yet to be discovered in nanoscale derivatives of bulk insertion compounds.
ISBN: 9783030023669
Standard No.: 10.1007/978-3-030-02366-9doiSubjects--Topical Terms:
641431
Solid state physics.
LC Class. No.: QC176-176.9
Dewey Class. No.: 530.41
Lithium Intercalation in Bilayer Graphene Devices
LDR
:03001nam a22003975i 4500
001
990105
003
DE-He213
005
20200704041904.0
007
cr nn 008mamaa
008
201225s2018 gw | s |||| 0|eng d
020
$a
9783030023669
$9
978-3-030-02366-9
024
7
$a
10.1007/978-3-030-02366-9
$2
doi
035
$a
978-3-030-02366-9
050
4
$a
QC176-176.9
072
7
$a
PNFS
$2
bicssc
072
7
$a
SCI077000
$2
bisacsh
072
7
$a
PNFS
$2
thema
082
0 4
$a
530.41
$2
23
100
1
$a
Kühne, Matthias.
$e
author.
$4
aut
$4
http://id.loc.gov/vocabulary/relators/aut
$3
1281872
245
1 0
$a
Lithium Intercalation in Bilayer Graphene Devices
$h
[electronic resource] /
$c
by Matthias Kühne.
250
$a
1st ed. 2018.
264
1
$a
Cham :
$b
Springer International Publishing :
$b
Imprint: Springer,
$c
2018.
300
$a
XVI, 116 p. 64 illus., 60 illus. in color.
$b
online resource.
336
$a
text
$b
txt
$2
rdacontent
337
$a
computer
$b
c
$2
rdamedia
338
$a
online resource
$b
cr
$2
rdacarrier
347
$a
text file
$b
PDF
$2
rda
490
1
$a
Springer Theses, Recognizing Outstanding Ph.D. Research,
$x
2190-5053
505
0
$a
Introduction -- Electronic Properties -- Electrochemical Device Setup and Fabrication -- Lithiation Studies -- Conductivity Corrections from Quantum Interferences -- Intercalate Diffusion Pathways -- Intercalate Diffusion Kinetics -- Summary.
520
$a
This book reports on the successful implementation of an innovative, miniaturized galvanic cell that offers unprecedented control over and access to ionic transport. It represents a milestone in fundamental studies on the diffusive transport of lithium ions between two atomically thin layers of carbon (graphene), a highly relevant aspect in electrodes for energy and mass storage in the context of batteries. Further, it is a beautiful example of how interdisciplinary work that combines expertise from two very distinct fields can significantly advance science. Machinery and tools common in the study of low-dimensional systems in condensed matter physics are combined with methods routinely employed in electrochemistry to enable truly unique and powerful experiments. The method developed here can easily be generalized and extended to other layered materials as well as other ionic species. Not only the method but also the outcome of its application to Li diffusion and intercalation in bilayer graphene is remarkable. A record chemical diffusion coefficient is demonstrated, exceeding even the diffusion of sodium chloride in water and surpassing any reported value of ion diffusion in single-phase mixed conducting materials. This finding may be indicative of the exceptional properties yet to be discovered in nanoscale derivatives of bulk insertion compounds.
650
0
$a
Solid state physics.
$3
641431
650
0
$a
Materials science.
$3
557839
650
0
$a
Force and energy.
$3
671403
650
0
$a
Electrochemistry.
$3
591514
650
0
$a
Surfaces (Physics).
$3
716359
650
0
$a
Interfaces (Physical sciences).
$3
795468
650
0
$a
Thin films.
$3
560219
650
1 4
$a
Solid State Physics.
$3
768851
650
2 4
$a
Energy Materials.
$3
1139404
650
2 4
$a
Surface and Interface Science, Thin Films.
$3
782551
710
2
$a
SpringerLink (Online service)
$3
593884
773
0
$t
Springer Nature eBook
776
0 8
$i
Printed edition:
$z
9783030023652
776
0 8
$i
Printed edition:
$z
9783030023676
830
0
$a
Springer Theses, Recognizing Outstanding Ph.D. Research,
$x
2190-5053
$3
1253569
856
4 0
$u
https://doi.org/10.1007/978-3-030-02366-9
912
$a
ZDB-2-PHA
912
$a
ZDB-2-SXP
950
$a
Physics and Astronomy (SpringerNature-11651)
950
$a
Physics and Astronomy (R0) (SpringerNature-43715)
based on 0 review(s)
Multimedia
Reviews
Add a review
and share your thoughts with other readers
Export
pickup library
Processing
...
Change password
Login