Conjugated polymer nanostructures for energy conversion and storage applications:
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Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Weinheim, Germany
Wiley-VCH
[2021]
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Online-Zugang: | http://www.wiley-vch.de/publish/dt/books/ISBN978-3-527-34557-1/ Inhaltsverzeichnis |
Beschreibung: | xv, 512 Seiten Illustrationen, Diagramme 24.4 cm x 17 cm |
ISBN: | 9783527345571 3527345574 |
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020 | |a 3527345574 |9 3-527-34557-4 | ||
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245 | 1 | 0 | |a Conjugated polymer nanostructures for energy conversion and storage applications |c edited by Srabanti Ghosh |
264 | 1 | |a Weinheim, Germany |b Wiley-VCH |c [2021] | |
300 | |a xv, 512 Seiten |b Illustrationen, Diagramme |c 24.4 cm x 17 cm | ||
336 | |b txt |2 rdacontent | ||
337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
650 | 0 | 7 | |a Energiespeicherung |0 (DE-588)4014722-8 |2 gnd |9 rswk-swf |
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650 | 0 | 7 | |a Nanostrukturiertes Material |0 (DE-588)4342626-8 |2 gnd |9 rswk-swf |
653 | |a Chemie | ||
653 | |a Chemistry | ||
653 | |a Energie | ||
653 | |a Energy | ||
653 | |a Nanomaterial | ||
653 | |a Nanomaterialien | ||
653 | |a Nanomaterials | ||
653 | |a Nanostrukturiertes Material | ||
653 | |a Nanotechnologie | ||
653 | |a Nanotechnology | ||
653 | |a Physical Chemistry | ||
653 | |a Physikalische Chemie | ||
653 | |a Solar Energy & Photovoltaics | ||
653 | |a Solarenergie | ||
653 | |a Solarenergie u. Photovoltaik | ||
653 | |a CH90: Physikalische Chemie | ||
653 | |a EG34: Solarenergie u. Photovoltaik | ||
653 | |a NT10: Nanomaterialien | ||
655 | 7 | |0 (DE-588)4143413-4 |a Aufsatzsammlung |2 gnd-content | |
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689 | 0 | |5 DE-604 | |
700 | 1 | |a Ghosh, Srabanti |0 (DE-588)116479843X |4 edt | |
710 | 2 | |a Wiley-VCH |0 (DE-588)16179388-5 |4 pbl | |
776 | 0 | 8 | |i Erscheint auch als |n Online-Ausgabe, PDF |z 978-3-527-82010-8 |
776 | 0 | 8 | |i Erscheint auch als |n Online-Ausgabe, EPUB |z 978-3-527-82012-2 |
776 | 0 | 8 | |i Erscheint auch als |n Online-Ausgabe |z 978-3-527-82011-5 |
856 | 4 | 2 | |m X:MVB |u http://www.wiley-vch.de/publish/dt/books/ISBN978-3-527-34557-1/ |
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999 | |a oai:aleph.bib-bvb.de:BVB01-032962330 |
Datensatz im Suchindex
_version_ | 1804182926973206528 |
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adam_text | CONTENTS
PREFACE
XIII
ACKNOWLEDGMENT
XV
PART
I
DESIGN
AND
CHARACTERIZATION
OF
CONJUGATED
POLYMER
NANOSTRUCTURES
1
1
FUNDAMENTALS
OF
CONJUGATED
POLYMER
NANOSTRUCTURES
3
THANH-HAI
LE
AND
HYEONSEOK
YOON
1.1
INTRODUCTION
3
1.2
ELECTRONIC
AND
ELECTRICAL
PROPERTIES
4
1.2.1
CONDUCTIVE
MECHANISM
4
1.2.1.1
INHERENT
MOLECULAR
STRUCTURE
4
1.2.1.2
DOPING
AND
BAND
STRUCTURE
EVOLUTION
5
1.2.2
CHARGE
CARRIER
TRANSPORT
MODELS
9
1.2.3
TEMPERATURE
DEPENDENCE
13
1.3
ELECTROCHEMICAL
PROPERTIES
16
1.3.1
REVERSIBLE
OXIDATION/REDUCTION
PROCESS
AND
CHARGE
STORAGE
BEHAVIOR
16
1.3.2
SWELLING
AND
DE-SWELLING
BEHAVIOR
20
1.3.3
ELECTROCHROMISM
22
1.4
OPTICAL
PROPERTIES
23
1.4.1
BAND
GAP
OF
CONJUGATED
POLYMERS
23
1.4.2
ABSORPTION
AND
EMISSION
27
1.4.3
COHERENT
EXCITON
DIFFUSION
AND
ENERGY
TRANSFER
30
1.5
UNIQUE
PROPERTIES
AT
THE
NANOSCALE
33
1.6
CONCLUSION
34
REFERENCES
35
2
CHEMICAL
SYNTHESIS
OF
CONDUCTING
POLYMERS
NANOSTRUCTURES
43
SRABANTI
GHOSH
AND
DIPANWITA
MAJUMDAR
2.1
INTRODUCTION
43
VI
CONTENTS
2.2
2.2.1
2.2.2
2.3
2.3.1
2.3.2
2.3.3
2.3.4
2.3.5
2.3.6
2.3.7
2.3.8
2.3.9
2.3.10
2.4
2.5
2.5.1
2.5.2
2.6
TEMPLATE-BASED
SYNTHESIS
44
HARD-TEMPLATE
METHOD
44
SOFT-TEMPLATE
METHOD
46
TEMPLATE-FREE
SYNTHESIS
53
SELF
ASSEMBLY
VIA
INTERFACIAL
POLYMERIZATION
54
POST-SYNTHETIC
SELF-ASSEMBLY
PROCESS
57
WET
SPINNING
PROCESS
58
MELT
SPINNING
59
DRY
SPINNING
59
ELECTROSPINNING
60
SEEDING
APPROACH
61
WHISKER
METHOD
OF
POLYMER
SYNTHESIS
63
MIXED-SOLVENT
TECHNIQUE
64
REPRECIPITATION
TECHNIQUE
64
CONDUCTING
POLYMER
HYDROGELS
64
NANOLITHOGRAPHY
67
DIP-PEN
NANOLITHOGRAPHY
(DPN)
67
NANOIMPRINT
LITHOGRAPHY
69
CONCLUSION
AND
FUTURE
PROSPECTS
71
REFERENCES
72
3
TEMPLATE-FREE
SYNTHESIS
OF
NANOSTRUCTURED
CONJUGATED
POLYMER
FILMS
85
GABRIELA
RAMOS
CHAGAS,
THIERRY
DARMANIN,
AND
FREDERIC
GUITTARD
3.1
3.2
3.2.1
3.2.2
3.2.3
3.2.4
3.3
INTRODUCTION
85
TEMPLATE-FREE
SYNTHESIS
86
ELECTROCHEMICAL
POLYMERIZATION
86
ELECTROSPINNING
96
VAPOR
PHASE
POLYMERIZATION
100
PLASMA
POLYMERIZATION
103
CONCLUSIONS
105
REFERENCES
106
4
USE
OF
HIGH
ENERGY
RADIATION
FOR
SYNTHESIS
AND
KINETIC
STUDY
OF
CONJUGATED
POLYMERS
117
TESEER
BAHRY,
ZHENPENG
CUI,
AND
SAMY
REMITA
4.1
RECENT
ADVANCEMENTS
TOWARD
FACILE
PREPARATION
OF
PROCESSABLE
CPS
117
4.2
PREFACE
TO
RADIATION
INDUCED
OXIDATIVE
POLYMERIZATION
OF
CPS
NANOSTRUCTURES
IN
AQUEOUS
SOLUTIONS
118
4.2.1
STUDYING
KINETIC
MECHANISM
OF
HO INDUCED
EDOT
POLYMERIZATION
IN
AQUEOUS
SOLUTION
120
CONTENTS
VII
4.2.2
GAMMA-RADIATION
INDUCED
OXIDATIVE
POLYMERIZATION
OF
EDOT
IN
AERATED
AQUEOUS
SOLUTIONS
AT
NEUTRAL
PH
124
4.2.3
EFFECT
OF
OXIDIZING
SPECIES
ON
GAMMA-RADIATION-INDUCED
SYNTHESIS
OF
PEDOT
126
4.2.4
EXTENSION
OF
THE
RADIOLYTIC
PROCEDURE
TO
THE
SYNTHESIS
OF
POLYPYRROLE
(PPY)
NANOSTRUCTURES
131
4.2.5
EFFECT
OF
PH
ON
THE
POLYMERIZATION
OF
EDOT
MONOMERS
132
4.3
RADIATION-INDUCED
SYNTHESIS
OF
CPS
NANOSTRUCTURES
BY
REDUCTION-POLYMERIZATION
ROUTE
134
4.4
RADIATION-INDUCED
SYNTHESIS
OF
CPS/METAL
NANOCOMPOSITES
137
4.5
TOWARD
RADIATION-INDUCED
SYNTHESIS
OF
CPS
NANOSTRUCTURES
IN
ORGANIC
SOLVENTS
141
4.6
THE
ELECTRICAL
AND
PHYSICAL
PROPERTIES
OF
RADIOSYNTHESIZED
CPS
145
4.6.1
CPS
CHAIN
LENGTHS
146
4.6.2
OPTICAL
AND
ELECTRONIC
BAND
GAPS
OF
CPS
147
4.6.3
ELECTRICAL
CONDUCTIVITIES
OF
CPS
147
4.6.4
THERMAL
PROPERTIES
OF
CPS
148
4.7
COMPARATIVE
STUDIES
BETWEEN
RADIOLYTIC
METHODOLOGY
AND
CONVENTIONAL
METHODS
149
4.8
SUMMARY
150
REFERENCES
151
5
CONJUGATED
POLYMER
NANOSTRUCTURES:
CHARACTERIZATION
159
SAMIM
SARDAR
AND
SRABANTI
GHOSH
5.1
INTRODUCTION
159
5.2
MORPHOLOGICAL
CHARACTERIZATION
161
5.2.1
TRANSMISSION
ELECTRON
MICROSCOPY
(TEM)
161
5.2.1.1
CRYO-TEM
163
5.2.1.2
SCANNING
TRANSMISSION
ELECTRON
MICROSCOPY
(STEM)
166
5.2.1.3
SCANNING
TUNNELING
MICROSCOPY
(STM)
170
5.2.2
FIELD
EMISSION
SCANNING
ELECTRON
MICROSCOPY
(FESEM)
172
5.2.3
ATOMIC
FORCE
MICROSCOPY
(AFM)
173
5.3
SURFACE
CHARACTERIZATION
176
5.3.1
SCANNING
KELVIN
PROBE
MICROSCOPY
(SKPM)
AND
KELVIN
PROBE
FORCE
MICROSCOPY
(KPFM)
176
5.3.2
X-RAY
PHOTOELECTRON
SPECTROSCOPY
(XPS)
178
5.4
ELECTROCHEMICAL
CHARACTERIZATION
181
5.5
SPECTROSCOPIC
CHARACTERIZATION
185
5.5.1
UV-VIS
AND
PHOTOLUMINESCENCE
SPECTROSCOPY
185
5.5.2
FOURIER
TRANSFORM
INFRARED
SPECTROSCOPY
190
5.5.3
NUCLEAR
MAGNETIC
RESONANCE
SPECTROSCOPY
191
5.6
OTHER
TECHNIQUES
191
5.7
CONCLUSION
196
REFERENCES
196
VIII
CONTENTS
PART
II
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
SOLAR
ENERGY
CONVERSION
AND
ENVIRONMENTAL
PROTECTION
205
6
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
CATALYSTS
SUPPORT
IN
FUEL
CELLS
APPLICATION
207
SRABANTI
GHOSH
AND
RAJENDRA
N.
BASU
6.1
INTRODUCTION
207
6.2
CONDUCTING
POLYMER
NANOSTRUCTURES
FOR
ELECTROCATALYSTS
SUPPORT
209
6.2.1
METAL
CATALYSTS DEPOSITED
ON
CONDUCTING
POLYMER
NANOSTRUCTURES
211
6.2.2
METAL
CATALYSTS DEPOSITED
ON
MODIFIED
CONDUCTING
POLYMER
NANOSTRUCTURES
219
6.3
CONCLUSION
224
REFERENCES
225
7
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
PHOTOCATALYSIS
233
SRABANTI
GHOSH
7.1
INTRODUCTION
233
7.2
APPLICATION
OF
CONJUGATED
POLYMER
NANOSTRUCTURES
AS
PHOTOCATALYSTS
235
7.2.1
PHOTOCATALYSIS
FOR
ENVIRONMENTAL
PROTECTION
AND
ORGANIC
POLLUTANT
DEGRADATION
235
7.2.2
PHOTOCATALYSIS
FOR
WATER SPLITTING
AND
H
2
GENERATION
248
7.2.3
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
CO
2
PHOTO
REDUCTION
254
7.3
CONCLUSION
256
REFERENCES
256
8
CONJUGATED
POLYMER-BASED
NANOCOMPOSITES
AS
PHOTOCATALYSTS
267
RITUPORN
GOGOI,
SUNIL
DUTT,
AND
PREM
F.
SIRIL
8.1
INTRODUCTION
267
8.2
GENERAL
METHODS
OF
SYNTHESIS
OF
CONJUGATED
POLYMER
NANOCOMPOSITES
268
8.3
CLASSIFICATION
OF
THE
APPROACHES
FOR
THE
SYNTHESIS
OF
CONJUGATED
POLYMER
NANOCOMPOSITES
269
8.3.1
TEMPLATE ASSISTED
METHODS
270
8.3.2
TEMPLATE
FREE
METHOD
270
8.4
FUNDAMENTAL
PRINCIPLES
OF
PHOTOCATALYSIS
271
8.5
CONJUGATED
POLYMER
NANOCOMPOSITES
AND
CURRENT
CHALLENGES
IN
THEIR
PHOTOCATALYSIS
272
8.6
BAND
STRUCTURE
ENGINEERING
IN
CONJUGATED
POLYMER
NANOCOMPOSITES
273
8.6.1
SOLID-SOLID (S-S)
INTERFACE
274
8.6.1.1
SC-SC
HETEROJUNCTION
274
8.6.1.2
SEMICONDUCTOR-METAL
(SC-M)
HETEROJUNCTION
279
8.6.2
SOLID-LIQUID
INTERFACE
281
CONTENTS
IX
8.7
PHOTOCATALYTIC
APPLICATIONS
OF
CONDUCTING
POLYMER
NANOCOMPOSITES
283
8.7.1
WATER
REMEDIATION
USING
CPNCS
284
8.7.1.1
INORGANIC
SEMICONDUCTOR
BASED
CP
NANOCOMPOSITES
AS
PHOTOCATALYSTS
FOR
WATER
REMEDIATION
284
8.7.1.2
PLASMONIC
METAL-BASED
CPNCS
286
8.7.1.3
CONJUGATED
POLYMER-CONJUGATED
POLYMER-BASED
NANOCOMPOSITES
286
8.7.2
HYDROGEN
GENERATION
APPLICATION
287
8.7.3
OTHER
APPLICATIONS
OF
CP
NANOCOMPOSITES
289
8.8
CONCLUSION
290
REFERENCES
290
9
NANOSTRUCTURED
CONJUGATED
POLYMER
FOR
SOLAR
CELL
APPLICATIONS
297
EMILIE
DAUZON,
GUILLAUME
NOIRBENT,
CEDRIC
VANCAEYZEELE,
THANH-TUAN
BUI,
FREDERIC
DUMUR,
AND
FABRICE
GOUBARD
9.1
INTRODUCTION
297
9.2
ARCHITECTURES
OF
ORGANIC
CELLS
300
9.2.1
SCHOTTKY
CELL
300
9.2.2
BILAYER
STRUCTURE
300
9.2.3
BULK
HETEROJUNCTIONS
301
9.3
CHEMICAL
STRATEGY
FOR
DEVELOPING
THE
NANOSTRUCTURE
OF
THE
ACTIVE
LAYER
301
9.3.1
BLOCK
COPOLYMERS
301
9.3.2
POLYMER
NANOWIRES
305
9.3.3
POLYMER
NANOPARTICLES
(PNPS)
309
9.3.3.1
SYNTHESIS
OF
PNPS
VIA
PRECIPITATION
METHODS
309
9.3.4
POLYMER
NANOFIBER
(PNF)
311
9.4
PHYSICAL
STRATEGIES
FOR
FABRICATING
POLYMER
NANOSTRUCTURES
316
9.4.1
TEMPLATE
METHODS
316
9.4.1.1
MINIEMULSION
321
9.4.1.2
MICROEMULSION
332
9.4.2
POROUS
INORGANIC
MATERIALS
334
9.4.3
ELECTROPOLYMERIZATION
337
9.4.3.1
POLY(
THIOPHENES)
338
9.4.3.2
POLY(CARBAZOLE)
342
9.4.3.3
POLY(TRIPHENYLAMINE)
343
9.5
CONCLUSION
344
REFERENCES
344
PART
III
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
ENERGY
STORAGE
357
10
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
ELECTROCHEMICAL
CAPACITOR
AND
LITHIUM-ION
BATTERY
APPLICATIONS
359
THANH-HAI
LE
AND
HYEONSEOK
YOON
X
CONTENTS
10.1
10.2
10.3
10.3.1
10.3.2
10.3.2.1
10.3.2.2
10.3.3
10.4
10.4.1
10.4.2
10.4.2.1
10.4.2.2
10.4.2.3
INTRODUCTION
359
TERMINOLOGY
AND
DIFFERENCES
BETWEEN
ECS
AND
LIBS
360
CPNS
FOR
ECS
362
FUNDAMENTALS
OF
ECS
362
PSEUDOCAPACITIVE
CPNS
IN
ECS
366
CONVENTIONAL
HETEROCYCLIC
CPNS
366
MICROPOROUS
CONJUGATED
POLYMERS
372
CONJUGATED
POLYMER
NANOCOMPOSITES
374
CPNS
FOR
LIBS
379
FUNDAMENTALS
OF
LIBS
379
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
LIBS
381
CONJUGATED
POLYMERS
AS
FULLY
ACTIVE
ELECTRODE
MATERIALS
FOR
LIBS
382
CONJUGATED
POLYMERS
AS
PROTECTIVE/NETWORK
LAYERS
FOR
LIBS
384
HETEROCYCLIC
CONJUGATED
POLYMER
NANOSTRUCTURES AND
THEIR
COMPOSITES
FOR
LIBS
386
10.5
CONCLUSION
391
REFERENCES
392
11
CONJUGATED
POLYMER
BASED
NANOCOMPOSITES
AS
ELECTRODE
MATERIALS
401
SAPTARSHI
DHIBAR,
PUSPENDU
DAS,
SANJOY
MONDAL,
UTPAL
RANA,
AND
SUDIP
MALIK
11.1
11.1.1
11.1.2
11.1.3
11.2
11.2.1
11.2.1.1
11.2.1.2
11.2.1.3
11.2.2
11.2.2.1
11.2.2.2
11.2.2.3
11.2.2.4
11.2.3
11.2.3.1
11.2.3.2
11.2.3.3
11.3
INTRODUCTION
401
POLYPYRROLE
402
POLYANILINE
402
POLYTHIOPHENE
403
CONDUCTING
POLYMER
BASED
ELECTRODE
MATERIALS
405
POLYPYRROLE
407
DIFFERENT
NANO-ARCHITECTURES
OF
POLYPYRROLE
407
POLYPYRROLE
NANOSTRUCTURES
AS
ELECTRODE
MATERIALS
408
GRAPHENE
AND
CNT
BASED
POLYPYRROLE
NANOCOMPOSITES
409
POLYANILINE
416
DIFFERENT
NANO-ARCHITECTURES
OF
POLYANILINE
416
EFFECT
OF
DOPANT
SIZE
IN
NANOSTRUCTURE
420
POLYANILINE
NANOSTRUCTURES
AS
ELECTRODE
MATERIALS
420
GRAPHENE
AND
CNT
BASED
POLYANILINE
NANOCOMPOSITES
423
POLYTHIOPHENE
426
DIFFERENT
NANO-ARCHITECTURES
OF
POLYTHIOPHENE
430
POLYTHIOPHENE
NANOSTRUCTURES
AS
ELECTRODE
MATERIALS
430
GRAPHENE
AND
CNT
BASED
POLYTHIOPHENE
NANOCOMPOSITES
432
SUMMARY
433
ACKNOWLEDGMENT
435
REFERENCES
436
CONTENTS
XI
12
CONDUCTING
POLYMERS
NANOWIRES
WITH
CARBON
NANOTUBES
OR
GRAPHENE-BASED
NANOCOMPOSITES
FOR
SUPERCAPACITORS
APPLICATIONS
445
THUAN
NGUYEN
PHAM
TRUONG,
PHILIPPE
BANET,
AND
PIERRE-HENRI
AUBERT
12.1
INTRODUCTION
ON
ELECTROCHEMICAL
STORAGE
USING
ELECTRONIC
CONDUCTING
POLYMERS
(ECP)
445
12.1.1
ELECTRONIC
CONDUCTING
POLYMERS
(ECP)
446
12.1.2
SYNTHESIS
OF
ECPS
447
12.1.3
ELECTROCHEMICAL
STORAGE
PROPERTIES
OF
ECPS
448
12.1.4
MORPHOLOGY
AND
NANOSTRUCTURATION
OF
ECP
449
12.2
POROUS
CARBON-BASED
NANOCOMPOSITES
453
12.2.1
POLYPYRROLE/POROUS
CARBON
NANOCOMPOSITES
454
12.2.2
POLYANILINE/POROUS
CARBON
NANOCOMPOSITES
455
12.2.3
POLYETHYLENEDIOXYTHIOPHENE/POROUS
CARBON
NANOCOMPOSITES
456
12.3
CNT-BASED
NANOCOMPOSITES
457
12.3.1
ECP
WITH
ENTANGLED
CNT
COMPOSITES
458
12.3.2
ECP
WITH
VERTICALLY
ALIGNED
CNT
COMPOSITES
460
12.4
GRAPHENE-BASED
NANOCOMPOSITES
465
12.4.1
POLYMER/GRAPHENE
COMPOSITES
466
12.4.2
POLYANILINE/GRAPHENE
466
12.4.3
POLYPYRROLE/GRAPHENE
471
12.4.4
THIOPHENE-BASED
POLYMERS/GRAPHENE
478
12.5
CONCLUSION
AND
OUTLOOK
482
REFERENCES
485
INDEX
499
|
adam_txt |
CONTENTS
PREFACE
XIII
ACKNOWLEDGMENT
XV
PART
I
DESIGN
AND
CHARACTERIZATION
OF
CONJUGATED
POLYMER
NANOSTRUCTURES
1
1
FUNDAMENTALS
OF
CONJUGATED
POLYMER
NANOSTRUCTURES
3
THANH-HAI
LE
AND
HYEONSEOK
YOON
1.1
INTRODUCTION
3
1.2
ELECTRONIC
AND
ELECTRICAL
PROPERTIES
4
1.2.1
CONDUCTIVE
MECHANISM
4
1.2.1.1
INHERENT
MOLECULAR
STRUCTURE
4
1.2.1.2
DOPING
AND
BAND
STRUCTURE
EVOLUTION
5
1.2.2
CHARGE
CARRIER
TRANSPORT
MODELS
9
1.2.3
TEMPERATURE
DEPENDENCE
13
1.3
ELECTROCHEMICAL
PROPERTIES
16
1.3.1
REVERSIBLE
OXIDATION/REDUCTION
PROCESS
AND
CHARGE
STORAGE
BEHAVIOR
16
1.3.2
SWELLING
AND
DE-SWELLING
BEHAVIOR
20
1.3.3
ELECTROCHROMISM
22
1.4
OPTICAL
PROPERTIES
23
1.4.1
BAND
GAP
OF
CONJUGATED
POLYMERS
23
1.4.2
ABSORPTION
AND
EMISSION
27
1.4.3
COHERENT
EXCITON
DIFFUSION
AND
ENERGY
TRANSFER
30
1.5
UNIQUE
PROPERTIES
AT
THE
NANOSCALE
33
1.6
CONCLUSION
34
REFERENCES
35
2
CHEMICAL
SYNTHESIS
OF
CONDUCTING
POLYMERS
NANOSTRUCTURES
43
SRABANTI
GHOSH
AND
DIPANWITA
MAJUMDAR
2.1
INTRODUCTION
43
VI
CONTENTS
2.2
2.2.1
2.2.2
2.3
2.3.1
2.3.2
2.3.3
2.3.4
2.3.5
2.3.6
2.3.7
2.3.8
2.3.9
2.3.10
2.4
2.5
2.5.1
2.5.2
2.6
TEMPLATE-BASED
SYNTHESIS
44
HARD-TEMPLATE
METHOD
44
SOFT-TEMPLATE
METHOD
46
TEMPLATE-FREE
SYNTHESIS
53
SELF
ASSEMBLY
VIA
INTERFACIAL
POLYMERIZATION
54
POST-SYNTHETIC
SELF-ASSEMBLY
PROCESS
57
WET
SPINNING
PROCESS
58
MELT
SPINNING
59
DRY
SPINNING
59
ELECTROSPINNING
60
SEEDING
APPROACH
61
WHISKER
METHOD
OF
POLYMER
SYNTHESIS
63
MIXED-SOLVENT
TECHNIQUE
64
REPRECIPITATION
TECHNIQUE
64
CONDUCTING
POLYMER
HYDROGELS
64
NANOLITHOGRAPHY
67
DIP-PEN
NANOLITHOGRAPHY
(DPN)
67
NANOIMPRINT
LITHOGRAPHY
69
CONCLUSION
AND
FUTURE
PROSPECTS
71
REFERENCES
72
3
TEMPLATE-FREE
SYNTHESIS
OF
NANOSTRUCTURED
CONJUGATED
POLYMER
FILMS
85
GABRIELA
RAMOS
CHAGAS,
THIERRY
DARMANIN,
AND
FREDERIC
GUITTARD
3.1
3.2
3.2.1
3.2.2
3.2.3
3.2.4
3.3
INTRODUCTION
85
TEMPLATE-FREE
SYNTHESIS
86
ELECTROCHEMICAL
POLYMERIZATION
86
ELECTROSPINNING
96
VAPOR
PHASE
POLYMERIZATION
100
PLASMA
POLYMERIZATION
103
CONCLUSIONS
105
REFERENCES
106
4
USE
OF
HIGH
ENERGY
RADIATION
FOR
SYNTHESIS
AND
KINETIC
STUDY
OF
CONJUGATED
POLYMERS
117
TESEER
BAHRY,
ZHENPENG
CUI,
AND
SAMY
REMITA
4.1
RECENT
ADVANCEMENTS
TOWARD
FACILE
PREPARATION
OF
PROCESSABLE
CPS
117
4.2
PREFACE
TO
RADIATION
INDUCED
OXIDATIVE
POLYMERIZATION
OF
CPS
NANOSTRUCTURES
IN
AQUEOUS
SOLUTIONS
118
4.2.1
STUDYING
KINETIC
MECHANISM
OF
HO'INDUCED
EDOT
POLYMERIZATION
IN
AQUEOUS
SOLUTION
120
CONTENTS
VII
4.2.2
GAMMA-RADIATION
INDUCED
OXIDATIVE
POLYMERIZATION
OF
EDOT
IN
AERATED
AQUEOUS
SOLUTIONS
AT
NEUTRAL
PH
124
4.2.3
EFFECT
OF
OXIDIZING
SPECIES
ON
GAMMA-RADIATION-INDUCED
SYNTHESIS
OF
PEDOT
126
4.2.4
EXTENSION
OF
THE
RADIOLYTIC
PROCEDURE
TO
THE
SYNTHESIS
OF
POLYPYRROLE
(PPY)
NANOSTRUCTURES
131
4.2.5
EFFECT
OF
PH
ON
THE
POLYMERIZATION
OF
EDOT
MONOMERS
132
4.3
RADIATION-INDUCED
SYNTHESIS
OF
CPS
NANOSTRUCTURES
BY
REDUCTION-POLYMERIZATION
ROUTE
134
4.4
RADIATION-INDUCED
SYNTHESIS
OF
CPS/METAL
NANOCOMPOSITES
137
4.5
TOWARD
RADIATION-INDUCED
SYNTHESIS
OF
CPS
NANOSTRUCTURES
IN
ORGANIC
SOLVENTS
141
4.6
THE
ELECTRICAL
AND
PHYSICAL
PROPERTIES
OF
RADIOSYNTHESIZED
CPS
145
4.6.1
CPS
CHAIN
LENGTHS
146
4.6.2
OPTICAL
AND
ELECTRONIC
BAND
GAPS
OF
CPS
147
4.6.3
ELECTRICAL
CONDUCTIVITIES
OF
CPS
147
4.6.4
THERMAL
PROPERTIES
OF
CPS
148
4.7
COMPARATIVE
STUDIES
BETWEEN
RADIOLYTIC
METHODOLOGY
AND
CONVENTIONAL
METHODS
149
4.8
SUMMARY
150
REFERENCES
151
5
CONJUGATED
POLYMER
NANOSTRUCTURES:
CHARACTERIZATION
159
SAMIM
SARDAR
AND
SRABANTI
GHOSH
5.1
INTRODUCTION
159
5.2
MORPHOLOGICAL
CHARACTERIZATION
161
5.2.1
TRANSMISSION
ELECTRON
MICROSCOPY
(TEM)
161
5.2.1.1
CRYO-TEM
163
5.2.1.2
SCANNING
TRANSMISSION
ELECTRON
MICROSCOPY
(STEM)
166
5.2.1.3
SCANNING
TUNNELING
MICROSCOPY
(STM)
170
5.2.2
FIELD
EMISSION
SCANNING
ELECTRON
MICROSCOPY
(FESEM)
172
5.2.3
ATOMIC
FORCE
MICROSCOPY
(AFM)
173
5.3
SURFACE
CHARACTERIZATION
176
5.3.1
SCANNING
KELVIN
PROBE
MICROSCOPY
(SKPM)
AND
KELVIN
PROBE
FORCE
MICROSCOPY
(KPFM)
176
5.3.2
X-RAY
PHOTOELECTRON
SPECTROSCOPY
(XPS)
178
5.4
ELECTROCHEMICAL
CHARACTERIZATION
181
5.5
SPECTROSCOPIC
CHARACTERIZATION
185
5.5.1
UV-VIS
AND
PHOTOLUMINESCENCE
SPECTROSCOPY
185
5.5.2
FOURIER
TRANSFORM
INFRARED
SPECTROSCOPY
190
5.5.3
NUCLEAR
MAGNETIC
RESONANCE
SPECTROSCOPY
191
5.6
OTHER
TECHNIQUES
191
5.7
CONCLUSION
196
REFERENCES
196
VIII
CONTENTS
PART
II
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
SOLAR
ENERGY
CONVERSION
AND
ENVIRONMENTAL
PROTECTION
205
6
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
CATALYSTS
SUPPORT
IN
FUEL
CELLS
APPLICATION
207
SRABANTI
GHOSH
AND
RAJENDRA
N.
BASU
6.1
INTRODUCTION
207
6.2
CONDUCTING
POLYMER
NANOSTRUCTURES
FOR
ELECTROCATALYSTS
SUPPORT
209
6.2.1
METAL
CATALYSTS DEPOSITED
ON
CONDUCTING
POLYMER
NANOSTRUCTURES
211
6.2.2
METAL
CATALYSTS DEPOSITED
ON
MODIFIED
CONDUCTING
POLYMER
NANOSTRUCTURES
219
6.3
CONCLUSION
224
REFERENCES
225
7
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
PHOTOCATALYSIS
233
SRABANTI
GHOSH
7.1
INTRODUCTION
233
7.2
APPLICATION
OF
CONJUGATED
POLYMER
NANOSTRUCTURES
AS
PHOTOCATALYSTS
235
7.2.1
PHOTOCATALYSIS
FOR
ENVIRONMENTAL
PROTECTION
AND
ORGANIC
POLLUTANT
DEGRADATION
235
7.2.2
PHOTOCATALYSIS
FOR
WATER SPLITTING
AND
H
2
GENERATION
248
7.2.3
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
CO
2
PHOTO
REDUCTION
254
7.3
CONCLUSION
256
REFERENCES
256
8
CONJUGATED
POLYMER-BASED
NANOCOMPOSITES
AS
PHOTOCATALYSTS
267
RITUPORN
GOGOI,
SUNIL
DUTT,
AND
PREM
F.
SIRIL
8.1
INTRODUCTION
267
8.2
GENERAL
METHODS
OF
SYNTHESIS
OF
CONJUGATED
POLYMER
NANOCOMPOSITES
268
8.3
CLASSIFICATION
OF
THE
APPROACHES
FOR
THE
SYNTHESIS
OF
CONJUGATED
POLYMER
NANOCOMPOSITES
269
8.3.1
TEMPLATE ASSISTED
METHODS
270
8.3.2
TEMPLATE
FREE
METHOD
270
8.4
FUNDAMENTAL
PRINCIPLES
OF
PHOTOCATALYSIS
271
8.5
CONJUGATED
POLYMER
NANOCOMPOSITES
AND
CURRENT
CHALLENGES
IN
THEIR
PHOTOCATALYSIS
272
8.6
BAND
STRUCTURE
ENGINEERING
IN
CONJUGATED
POLYMER
NANOCOMPOSITES
273
8.6.1
SOLID-SOLID (S-S)
INTERFACE
274
8.6.1.1
SC-SC
HETEROJUNCTION
274
8.6.1.2
SEMICONDUCTOR-METAL
(SC-M)
HETEROJUNCTION
279
8.6.2
SOLID-LIQUID
INTERFACE
281
CONTENTS
IX
8.7
PHOTOCATALYTIC
APPLICATIONS
OF
CONDUCTING
POLYMER
NANOCOMPOSITES
283
8.7.1
WATER
REMEDIATION
USING
CPNCS
284
8.7.1.1
INORGANIC
SEMICONDUCTOR
BASED
CP
NANOCOMPOSITES
AS
PHOTOCATALYSTS
FOR
WATER
REMEDIATION
284
8.7.1.2
PLASMONIC
METAL-BASED
CPNCS
286
8.7.1.3
CONJUGATED
POLYMER-CONJUGATED
POLYMER-BASED
NANOCOMPOSITES
286
8.7.2
HYDROGEN
GENERATION
APPLICATION
287
8.7.3
OTHER
APPLICATIONS
OF
CP
NANOCOMPOSITES
289
8.8
CONCLUSION
290
REFERENCES
290
9
NANOSTRUCTURED
CONJUGATED
POLYMER
FOR
SOLAR
CELL
APPLICATIONS
297
EMILIE
DAUZON,
GUILLAUME
NOIRBENT,
CEDRIC
VANCAEYZEELE,
THANH-TUAN
BUI,
FREDERIC
DUMUR,
AND
FABRICE
GOUBARD
9.1
INTRODUCTION
297
9.2
ARCHITECTURES
OF
ORGANIC
CELLS
300
9.2.1
SCHOTTKY
CELL
300
9.2.2
BILAYER
STRUCTURE
300
9.2.3
BULK
HETEROJUNCTIONS
301
9.3
CHEMICAL
STRATEGY
FOR
DEVELOPING
THE
NANOSTRUCTURE
OF
THE
ACTIVE
LAYER
301
9.3.1
BLOCK
COPOLYMERS
301
9.3.2
POLYMER
NANOWIRES
305
9.3.3
POLYMER
NANOPARTICLES
(PNPS)
309
9.3.3.1
SYNTHESIS
OF
PNPS
VIA
PRECIPITATION
METHODS
309
9.3.4
POLYMER
NANOFIBER
(PNF)
311
9.4
PHYSICAL
STRATEGIES
FOR
FABRICATING
POLYMER
NANOSTRUCTURES
316
9.4.1
TEMPLATE
METHODS
316
9.4.1.1
MINIEMULSION
321
9.4.1.2
MICROEMULSION
332
9.4.2
POROUS
INORGANIC
MATERIALS
334
9.4.3
ELECTROPOLYMERIZATION
337
9.4.3.1
POLY(
THIOPHENES)
338
9.4.3.2
POLY(CARBAZOLE)
342
9.4.3.3
POLY(TRIPHENYLAMINE)
343
9.5
CONCLUSION
344
REFERENCES
344
PART
III
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
ENERGY
STORAGE
357
10
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
ELECTROCHEMICAL
CAPACITOR
AND
LITHIUM-ION
BATTERY
APPLICATIONS
359
THANH-HAI
LE
AND
HYEONSEOK
YOON
X
CONTENTS
10.1
10.2
10.3
10.3.1
10.3.2
10.3.2.1
10.3.2.2
10.3.3
10.4
10.4.1
10.4.2
10.4.2.1
10.4.2.2
10.4.2.3
INTRODUCTION
359
TERMINOLOGY
AND
DIFFERENCES
BETWEEN
ECS
AND
LIBS
360
CPNS
FOR
ECS
362
FUNDAMENTALS
OF
ECS
362
PSEUDOCAPACITIVE
CPNS
IN
ECS
366
CONVENTIONAL
HETEROCYCLIC
CPNS
366
MICROPOROUS
CONJUGATED
POLYMERS
372
CONJUGATED
POLYMER
NANOCOMPOSITES
374
CPNS
FOR
LIBS
379
FUNDAMENTALS
OF
LIBS
379
CONJUGATED
POLYMER
NANOSTRUCTURES
FOR
LIBS
381
CONJUGATED
POLYMERS
AS
FULLY
ACTIVE
ELECTRODE
MATERIALS
FOR
LIBS
382
CONJUGATED
POLYMERS
AS
PROTECTIVE/NETWORK
LAYERS
FOR
LIBS
384
HETEROCYCLIC
CONJUGATED
POLYMER
NANOSTRUCTURES AND
THEIR
COMPOSITES
FOR
LIBS
386
10.5
CONCLUSION
391
REFERENCES
392
11
CONJUGATED
POLYMER
BASED
NANOCOMPOSITES
AS
ELECTRODE
MATERIALS
401
SAPTARSHI
DHIBAR,
PUSPENDU
DAS,
SANJOY
MONDAL,
UTPAL
RANA,
AND
SUDIP
MALIK
11.1
11.1.1
11.1.2
11.1.3
11.2
11.2.1
11.2.1.1
11.2.1.2
11.2.1.3
11.2.2
11.2.2.1
11.2.2.2
11.2.2.3
11.2.2.4
11.2.3
11.2.3.1
11.2.3.2
11.2.3.3
11.3
INTRODUCTION
401
POLYPYRROLE
402
POLYANILINE
402
POLYTHIOPHENE
403
CONDUCTING
POLYMER
BASED
ELECTRODE
MATERIALS
405
POLYPYRROLE
407
DIFFERENT
NANO-ARCHITECTURES
OF
POLYPYRROLE
407
POLYPYRROLE
NANOSTRUCTURES
AS
ELECTRODE
MATERIALS
408
GRAPHENE
AND
CNT
BASED
POLYPYRROLE
NANOCOMPOSITES
409
POLYANILINE
416
DIFFERENT
NANO-ARCHITECTURES
OF
POLYANILINE
416
EFFECT
OF
DOPANT
SIZE
IN
NANOSTRUCTURE
420
POLYANILINE
NANOSTRUCTURES
AS
ELECTRODE
MATERIALS
420
GRAPHENE
AND
CNT
BASED
POLYANILINE
NANOCOMPOSITES
423
POLYTHIOPHENE
426
DIFFERENT
NANO-ARCHITECTURES
OF
POLYTHIOPHENE
430
POLYTHIOPHENE
NANOSTRUCTURES
AS
ELECTRODE
MATERIALS
430
GRAPHENE
AND
CNT
BASED
POLYTHIOPHENE
NANOCOMPOSITES
432
SUMMARY
433
ACKNOWLEDGMENT
435
REFERENCES
436
CONTENTS
XI
12
CONDUCTING
POLYMERS
NANOWIRES
WITH
CARBON
NANOTUBES
OR
GRAPHENE-BASED
NANOCOMPOSITES
FOR
SUPERCAPACITORS
APPLICATIONS
445
THUAN
NGUYEN
PHAM
TRUONG,
PHILIPPE
BANET,
AND
PIERRE-HENRI
AUBERT
12.1
INTRODUCTION
ON
ELECTROCHEMICAL
STORAGE
USING
ELECTRONIC
CONDUCTING
POLYMERS
(ECP)
445
12.1.1
ELECTRONIC
CONDUCTING
POLYMERS
(ECP)
446
12.1.2
SYNTHESIS
OF
ECPS
447
12.1.3
ELECTROCHEMICAL
STORAGE
PROPERTIES
OF
ECPS
448
12.1.4
MORPHOLOGY
AND
NANOSTRUCTURATION
OF
ECP
449
12.2
POROUS
CARBON-BASED
NANOCOMPOSITES
453
12.2.1
POLYPYRROLE/POROUS
CARBON
NANOCOMPOSITES
454
12.2.2
POLYANILINE/POROUS
CARBON
NANOCOMPOSITES
455
12.2.3
POLYETHYLENEDIOXYTHIOPHENE/POROUS
CARBON
NANOCOMPOSITES
456
12.3
CNT-BASED
NANOCOMPOSITES
457
12.3.1
ECP
WITH
ENTANGLED
CNT
COMPOSITES
458
12.3.2
ECP
WITH
VERTICALLY
ALIGNED
CNT
COMPOSITES
460
12.4
GRAPHENE-BASED
NANOCOMPOSITES
465
12.4.1
POLYMER/GRAPHENE
COMPOSITES
466
12.4.2
POLYANILINE/GRAPHENE
466
12.4.3
POLYPYRROLE/GRAPHENE
471
12.4.4
THIOPHENE-BASED
POLYMERS/GRAPHENE
478
12.5
CONCLUSION
AND
OUTLOOK
482
REFERENCES
485
INDEX
499 |
any_adam_object | 1 |
any_adam_object_boolean | 1 |
author2 | Ghosh, Srabanti |
author2_role | edt |
author2_variant | s g sg |
author_GND | (DE-588)116479843X |
author_facet | Ghosh, Srabanti |
building | Verbundindex |
bvnumber | BV047576869 |
classification_rvk | UV 9250 |
ctrlnum | (OCoLC)1286873477 (DE-599)DNB1217270027 |
discipline | Chemie / Pharmazie Physik |
discipline_str_mv | Chemie / Pharmazie Physik |
format | Book |
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genre | (DE-588)4143413-4 Aufsatzsammlung gnd-content |
genre_facet | Aufsatzsammlung |
id | DE-604.BV047576869 |
illustrated | Illustrated |
index_date | 2024-07-03T18:32:17Z |
indexdate | 2024-07-10T09:15:19Z |
institution | BVB |
institution_GND | (DE-588)16179388-5 |
isbn | 9783527345571 3527345574 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-032962330 |
oclc_num | 1286873477 |
open_access_boolean | |
owner | DE-703 |
owner_facet | DE-703 |
physical | xv, 512 Seiten Illustrationen, Diagramme 24.4 cm x 17 cm |
publishDate | 2021 |
publishDateSearch | 2021 |
publishDateSort | 2021 |
publisher | Wiley-VCH |
record_format | marc |
spelling | Conjugated polymer nanostructures for energy conversion and storage applications edited by Srabanti Ghosh Weinheim, Germany Wiley-VCH [2021] xv, 512 Seiten Illustrationen, Diagramme 24.4 cm x 17 cm txt rdacontent n rdamedia nc rdacarrier Energiespeicherung (DE-588)4014722-8 gnd rswk-swf Energieumwandlung (DE-588)4014730-7 gnd rswk-swf Nanostrukturiertes Material (DE-588)4342626-8 gnd rswk-swf Chemie Chemistry Energie Energy Nanomaterial Nanomaterialien Nanomaterials Nanostrukturiertes Material Nanotechnologie Nanotechnology Physical Chemistry Physikalische Chemie Solar Energy & Photovoltaics Solarenergie Solarenergie u. Photovoltaik CH90: Physikalische Chemie EG34: Solarenergie u. Photovoltaik NT10: Nanomaterialien (DE-588)4143413-4 Aufsatzsammlung gnd-content Nanostrukturiertes Material (DE-588)4342626-8 s Energieumwandlung (DE-588)4014730-7 s Energiespeicherung (DE-588)4014722-8 s DE-604 Ghosh, Srabanti (DE-588)116479843X edt Wiley-VCH (DE-588)16179388-5 pbl Erscheint auch als Online-Ausgabe, PDF 978-3-527-82010-8 Erscheint auch als Online-Ausgabe, EPUB 978-3-527-82012-2 Erscheint auch als Online-Ausgabe 978-3-527-82011-5 X:MVB http://www.wiley-vch.de/publish/dt/books/ISBN978-3-527-34557-1/ DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032962330&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Conjugated polymer nanostructures for energy conversion and storage applications Energiespeicherung (DE-588)4014722-8 gnd Energieumwandlung (DE-588)4014730-7 gnd Nanostrukturiertes Material (DE-588)4342626-8 gnd |
subject_GND | (DE-588)4014722-8 (DE-588)4014730-7 (DE-588)4342626-8 (DE-588)4143413-4 |
title | Conjugated polymer nanostructures for energy conversion and storage applications |
title_auth | Conjugated polymer nanostructures for energy conversion and storage applications |
title_exact_search | Conjugated polymer nanostructures for energy conversion and storage applications |
title_exact_search_txtP | Conjugated polymer nanostructures for energy conversion and storage applications |
title_full | Conjugated polymer nanostructures for energy conversion and storage applications edited by Srabanti Ghosh |
title_fullStr | Conjugated polymer nanostructures for energy conversion and storage applications edited by Srabanti Ghosh |
title_full_unstemmed | Conjugated polymer nanostructures for energy conversion and storage applications edited by Srabanti Ghosh |
title_short | Conjugated polymer nanostructures for energy conversion and storage applications |
title_sort | conjugated polymer nanostructures for energy conversion and storage applications |
topic | Energiespeicherung (DE-588)4014722-8 gnd Energieumwandlung (DE-588)4014730-7 gnd Nanostrukturiertes Material (DE-588)4342626-8 gnd |
topic_facet | Energiespeicherung Energieumwandlung Nanostrukturiertes Material Aufsatzsammlung |
url | http://www.wiley-vch.de/publish/dt/books/ISBN978-3-527-34557-1/ http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032962330&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT ghoshsrabanti conjugatedpolymernanostructuresforenergyconversionandstorageapplications AT wileyvch conjugatedpolymernanostructuresforenergyconversionandstorageapplications |