Heterogeneous catalysts: advanced design, characterization and applications Volume 1
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245 | 1 | 0 | |a Heterogeneous catalysts |b advanced design, characterization and applications |n Volume 1 |c edited by Wey Yang Teoh, Atsushi Urakawa, Yun Hau Ng, and Patrick Sit |
264 | 1 | |a Weinheim |b Wiley-VCH |c [2021] | |
300 | |a xvi, 397 Seiten |b Illustrationen, Diagramme | ||
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337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
655 | 7 | |0 (DE-588)4143413-4 |a Aufsatzsammlung |2 gnd-content | |
700 | 1 | |a Teoh, Wey Yang |0 (DE-588)1235161404 |4 edt | |
700 | 1 | |a Urakawa, Atsushi |0 (DE-588)1235161579 |4 edt | |
700 | 1 | |a Ng, Yun Hau |0 (DE-588)1235161919 |4 edt | |
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adam_text | CONTENTS
VOLUME
1
PREFACE
XV
SECTION
I
HETEROGENEOUS
CATALYSTS
DESIGN
AND
SYNTHESIS
1
1
EVOLUTION
OF
CATALYSTS
DESIGN
AND
SYNTHESIS:
FROM
BULK
METAL
CATALYSTS
TO
FINE
WIRES
AND
GAUZES,
AND
THAT
TO
NANOPARTICLE
DEPOSITS,
METAL
CLUSTERS,
AND
SINGLE
ATOMS
3
WEY
YANG
TEOH
1.1
THE
CRADLE
OF
MODERN
HETEROGENEOUS
CATALYSTS
3
1.2
THE
GAME
CHANGER:
HIGH-PRESSURE
CATALYTIC
REACTIONS
5
1.3
CATALYTIC
CRACKING
AND
POROUS
CATALYSTS
8
1.4
MINIATURIZATION
OF
METAL
CATALYSTS:
FROM
SUPPORTED
CATALYSTS
TO
SINGLE-ATOM
SITES
12
1.5
PERSPECTIVES
AND
OPPORTUNITIES
15
REFERENCES
16
2
FACETS
ENGINEERING
ON
CATALYSTS
21
JIAN
(JEFFERY)
PAN
2.1
INTRODUCTION
21
2.2
MECHANISMS
OF
FACETS
ENGINEERING
22
2.3
ANISOTROPIC
PROPERTIES
OF
CRYSTAL
FACETS
27
2.3.1
ANISOTROPIC
ADSORPTION
27
2.3.2
SURFACE
ELECTRONIC
STRUCTURE
28
2.3.3
SURFACE
ELECTRIC
FIELD
29
2.4
EFFECTS
OF
FACETS
ENGINEERING
32
2.4.1
OPTICAL
PROPERTIES
32
2.4.2
ACTIVITY
AND
SELECTIVITY
33
2.5
OUTLOOK
34
REFERENCES
35
VI
CONTENTS
3
ELECTROCHEMICAL
SYNTHESIS
OF
NANOSTRUCTURED
CATALYTIC
THIN
FILMS
39
HOI
YING
CHUNG
AND
YUN
HAU
NG
3.1
INTRODUCTION
39
3.2
PRINCIPLE
OF
ELECTROCHEMICAL
METHOD
IN
FABRICATING
THIN
FILM
40
3.2.1
ANODIZATION
42
3.2.1.1
PULSE
OR
STEP
ANODIZATION
45
3.2.2
CATHODIC
ELECTRODEPOSITION
46
3.2.2.1
PULSE
ELECTRODEPOSITION
47
3.2.3
ELECTROPHORETIC
DEPOSITION
48
3.2.4
COMBINATORY
METHODS
INVOLVING
ELECTROCHEMICAL
PROCESS
50
3.2.4.1
COMBINED
ELECTROPHORETIC
DEPOSITION-ANODIZATION
(CEPDA)
APPROACH
51
3.3
CONCLUSIONS
AND
PERSPECTIVE
52
REFERENCES
53
4
SYNTHESIS
AND
DESIGN
OF
CARBON-SUPPORTED
HIGHLY
DISPERSED
METAL
CATALYSTS
57
ENRIQUE
GARDA-BORDEJE
4.1
INTRODUCTION
57
4.2
PREPARATION
OF
CATALYSTS
ON
NEW
CARBON
SUPPORTS
58
4.2.1
CATALYST
ON GRAPHENE
OXIDE
59
4.2.2
CATALYST
ON
GRAPHENE
60
4.2.2.1
GRAPHENE
OR
RGO
AS
STARTING
MATERIAL
60
4.2.2.2
GRAPHENE
OXIDE
AS
PRECURSOR
OF
GRAPHENE-SUPPORTED
CATALYST
61
4.2.2.3
GRAPHENE
DERIVATIVES:
DOPED
GRAPHENE AND
SYNTHETIC
DERIVATIVES
62
4.2.3
CATALYST
ON
NANODIAMONDS AND
ONION-LIKE
CARBON
63
4.2.4
SACS
ON
CARBON
NITRIDES
AND
COVALENT
TRIAZINE
FRAMEWORKS
67
4.2.5
CATALYST
ON
CARBON
MATERIAL
FROM
HYDROTHERMAL
CARBONIZATION
OF
BIOMOLECULES
68
4.3
EMERGING
TECHNIQUES
FOR
CARBON-BASED
CATALYST
SYNTHESIS
69
4.3.1
DEPOSITION
OF
COLLOIDAL
NANOPARTICLES
70
4.3.2
SINGLE-METAL
ATOM
DEPOSITION
BY
WET CHEMISTRY
71
4.3.3
IMMOBILIZATION
OF
METAL
CLUSTERS
AND
SACS
BY
ORGANOMETALLIC
APPROACH
71
4.3.4
CHEMICAL
VAPOR
DEPOSITION
TECHNIQUES
ON
CARBON
SUPPORTS
72
4.3.5
SIMULTANEOUS
FORMATION
OF
METALLIC
CATALYST
AND
POROUS
CARBON
SUPPORT
BY
PYROLYSIS
73
4.3.6
DRY
MECHANICAL
METHODS
73
4.3.7
ELECTRODEPOSITION
73
4.3.8
PHOTODEPOSITION
74
4.4
CONCLUSIONS
AND
OUTLOOK
74
REFERENCES
75
CONTENTS
VII
5
METAL
CLUSTER-BASED
CATALYSTS
79
VLADIMIR
B.
GOLOVKO
5.1
INTRODUCTION
79
5.2
CATALYSTS
MADE
BY
DEPOSITION
OF
CLUSTERS
FROM
THE
GAS
PHASE
UNDER
ULTRAHIGH
VACUUM
81
5.3
CHEMICALLY
SYNTHESIZED
METAL
CLUSTERS
85
5.4
CATALYSIS
USING
THE
CHEMICALLY
SYNTHESIZED
METAL
CLUSTERS
88
5.5
CONCLUSION
95
REFERENCES
96
6 SINGLE-ATOM
HETEROGENEOUS
CATALYSTS
103
YAXIN
CHEN,
ZHEN
MA,
AND
XINGFU
TANG
6.1
INTRODUCTION
103
6.2
CONCEPT
AND
ADVANTAGES
OF
SACS
104
6.2.1
CONCEPT
OF
SACS
104
6.2.2
ADVANTAGES
OF
SACS
105
6.2.2.1
MAXIMUM ATOM
EFFICIENCY
105
6.2.2.2
UNIQUE
CATALYTIC
PROPERTIES
105
6.2.2.3
IDENTIFICATION
OF
CATALYTICALLY
ACTIVE
SITES
105
6.2.2
A
ESTABLISHMENT
OF
INTRINSIC
REACTION
MECHANISMS
106
6.3
SYNTHESIS
OF
SACS
107
6.3.1
PHYSICAL
METHODS
108
6.3.2
CHEMICAL
METHODS
108
6.3.2.1
BOTTOM-UP
SYNTHETIC
METHODS
109
63.2.2
TOP-DOWN
SYNTHETIC
METHODS
112
6.4
CHALLENGES
AND
PERSPECTIVE
113
REFERENCES
114
7
SYNTHESIS
STRATEGIES
FOR
HIERARCHICAL
ZEOLITES
119
XICHENG
JIA,
CHANGBUM
JO,
AND
ALEX
C.K.
YIP
7.1
INTRODUCTION
119
7.2
HIERARCHICAL
ZEOLITES
122
7.2.1
INCREASED
INTRACRYSTALLINE
DIFFUSION
123
7.2.2
REDUCED
STERIC
LIMITATION
123
7.23
CHANGED
PRODUCT
SELECTIVITY
124
7.2.4
DECREASED
COKE
FORMATION
124
73
MODERN
STRATEGIES
FOR
THE
SYNTHESIS
OF
HIERARCHICAL
ZEOLITES
124
7.3.1
HARD
TEMPLATES
124
7.3.1.1
CONFINED-SPACE
METHOD
125
7.3.1.2
CARBON
NANOTUBES
AND
NANOFIBERS
127
73.13
ORDERED
MESOPOROUS
CARBONS
128
7.3.2
SOFT
TEMPLATES
130
73.2.1
TEMPLATING
WITH
SURFACTANTS
130
73.2.2
SILANIZATION
TEMPLATING
METHODS
135
VIII
CONTENTS
7.3.3
DEALUMINATION
136
7.3.4
DESILICATION
138
7.4
CONCLUSION
140
REFERENCES
141
8
DESIGN
OF
MOLECULAR
HETEROGENEOUS
CATALYSTS
WITH
METAL-ORGANIC
FRAMEWORKS
147
MARCO
RANOCCHIARI
8.1
SECONDARY
BUILDING
UNITS
(SBUS)
AND
ISORETICULAR
MOFS
151
8.2
THE
TOOLS
TO
BUILD
MOLECULAR
ACTIVE
SITES:
RETICULAR
CHEMISTRY
AND
BEYOND
152
8.2.1
PRE-SYNTHETIC
METHODOLOGIES
153
8.2.2
POST-SYNTHETIC
METHODOLOGIES
155
8.2.2.1
POST-SYNTHETIC
MODIFICATION
(PSM)
155
8.2.2.2
POST-SYNTHETIC
EXCHANGE
(PSE)
156
8.3
MOFS
IN
CATALYSIS
156
8.3.1
THE
DIFFERENCE
BETWEEN
MOFS
AND
STANDARD
HETEROGENEOUS
AND
HOMOGENEOUS
CATALYSTS
157
8.4
CONCLUSION:
WHERE
TO
GO
FROM
HERE
158
REFERENCES
158
9
HIERARCHICAL
AND
ANISOTROPIC
NANOSTRUCTURED
CATALYSTS
161
HAMIDREZA
ARANDIYAN,
YUAN
WANG,
CHRISTOPHER
M.A,
PARLETT,
AND
ADAM
LEE
9.1
INTRODUCTION
161
9.2
TOP-DOWN
VS.
BOTTOM-UP
APPROACHES
162
9.3
SHAPE
ANISOTROPY
AND
NANOSTRUCTURED
ASSEMBLIES
162
9.4
JANUS
NANOSTRUCTURES
165
9.5
HIERARCHICAL
POROUS
CATALYSTS
169
9.6
FUNCTIONALIZATION
OF
POROUS/ANISOTROPIC
SUBSTRATES
170
9.7
PERSPECTIVE
174
REFERENCES
176
10
FLAME
SYNTHESIS
OF
SIMPLE
AND
MULTIELEMENTAL
OXIDE
CATALYSTS
183
WEY
YANG
TEOH
10.1
FROM
NATURAL
AEROSOLS
FORMATION
TO
ENGINEERED
NANOPARTICLES
183
10.2
FLAME
AEROSOL
SYNTHESIS
AND
REACTORS
185
10.3
SIMPLE
METAL OXIDE-BASED
CATALYSTS
189
10.4
MULTIELEMENTAL
OXIDE-BASED
CATALYSTS
192
10.4.1
SOLID
SOLUTION
METAL
OXIDE
CATALYSTS
192
10.4.2
COMPOSITE
METAL
OXIDE
CATALYSTS
192
10.4.3
COMPLEX
METAL
OXIDE
CATALYSTS
197
10.5
PERSPECTIVE
AND
OUTLOOK
197
REFERENCES
199
CONTENTS
IX
11
BAND
ENGINEERING
OF
SEMICONDUCTORS
TOWARD
VISIBLE-LIGHT-RESPONSIVE
PHOTOCATALYSTS
203
AKIHIDE
IWASE
11.1
BASIS
OF
PHOTOCATALYST
MATERIALS
203
11.2
PHOTOCATALYST
MATERIAL
GROUPS
204
11.2.1
VARIETY
OF
PHOTOCATALYST
MATERIALS
204
11.2.2
MAIN
CONSTITUENT
METAL
ELEMENTS
IN
PHOTOCATALYST
MATERIALS
205
11.3
DESIGN
OF
BAND
STRUCTURES
OF
PHOTOCATALYST
MATERIALS
206
11.3.1
DOPED
PHOTOCATALYSTS
206
11.3.2
VALENCE-BAND-CONTROLLED
PHOTOCATALYSTS
208
11.3.3
SOLID
SOLUTION
PHOTOCATALYSTS
209
11.4
PREPARATION
OF
PHOTOCATALYSTS
210
11.4.1
SOLID-STATE
REACTION
METHOD
211
11.4.2
FLUX
METHOD
211
11.4.3
HYDROTHERMAL
SYNTHESIS
METHOD/SOLVOTHERMAL
SYNTHESIS
METHOD
211
11.4.4
POLYMERIZED
(POLYMERIZABLE)
COMPLEX
METHOD
211
11.4.5
PRECIPITATION
METHOD
212
11.4.6
LOADING
OF
COCATALYSTS
212
REFERENCES
212
SECTION
II
SURFACE
STUDIES
AND
OPERANDO
SPECTROSCOPIES
IN
HETEROGENEOUS
CATALYSIS
215
12
TOWARD
PRECISE
UNDERSTANDING
OF
CATALYTIC
EVENTS
AND
MATERIALS
UNDER
WORKING
CONDITIONS
217
ATSUSHI
URAKAWA
REFERENCES
220
13
PRESSURE
GAPS
IN
HETEROGENEOUS
CATALYSIS
225
LARS
OSTERLUND
13.1
INTRODUCTION
225
13.2
HIGH-PRESSURE
STUDIES
OF
CATALYSTS
226
13.3
ADSORPTION
ON
SOLID
SURFACES
AT
LOW
AND
HIGH
PRESSURES
229
13.3.1
KINETICALLY
RESTRICTED
ADSORBATE
STRUCTURES
229
13.3.2
THERMODYNAMICALLY
DRIVEN
REACTIONS
ON
SOLID
SURFACES
234
13.3.3
REACTIONS
ON
SUPPORTED
NANOPARTICLE
CATALYSTS
244
13.4
CONCLUSIONS
AND
OUTLOOK
246
ACKNOWLEDGMENTS
247
REFERENCES
247
14
IN
SITU
TRANSMISSION
ELECTRON
MICROSCOPY
OBSERVATION
OF
GAS/SOLID
AND
LIQUID/SOLID
INTERFACES
253
AYAKO
HASHIMOTO
14.1
INTRODUCTION
253
14.2
OBSERVATION
IN
GAS
AND
LIQUID
PHASES
254
X
CONTENTS
14.2.1
WINDOW-TYPE
SYSTEM
254
14.2.2
DIFFERENTIAL
PUMPING-TYPE
SYSTEM
256
14.2.3
OTHER
SYSTEMS
257
14.3
APPLICATIONS
AND
OUTLOOK
259
REFERENCES
261
15
TOMOGRAPHY
IN
CATALYST
DESIGN
263
DOROTA
MATRAS,
JAY
PRITCHARD,
ANTONIOS
VAMVAKEROS,
SIMON
DM
JACQUES,
AND
ANDREW
M.
BEALE
15.1
INTRODUCTION
263
15.2
IMAGING
WITH
X-RAYS
264
15.3
CONVENTIONAL
ABSORPTION
CT
TO
STUDY
CATALYTIC
MATERIALS
265
15.4
X-RAY
DIFFRACTION
COMPUTED
TOMOGRAPHY
(XRD-CT)
267
15.5
PAIR
DISTRIBUTION
FUNCTION
CT
269
15.6
MULTIMODAL
XANES-CT,
XRD-CT,
AND
XRF-CT
270
15.7
ATOM
PROBE
TOMOGRAPHY
272
15.8
PTYCHOGRAPHIC
X-RAY
CT
273
15.9
CONCLUSIONS
274
REFERENCES
275
16
RESOLVING
CATALYST
PERFORMANCE
AT
NANOSCALE
VIA
FLUORESCENCE
MICROSCOPY
279
ALEXEY
KUBAREV
AND
MAARTEN
ROEFFAERS
16.1
FLUORESCENCE
MICROSCOPY
AS
CATALYST
CHARACTERIZATION
TOOL
279
16.2
BASICS
OF
FLUORESCENCE
AND
FLUORESCENCE
MICROSCOPY
280
16.3
STRATEGIES
TO
RESOLVE
CATALYTIC
PROCESSES
IN
A
FLUORESCENCE
MICROSCOPE
283
16.4
WIDE-FIELD
AND
CONFOCAL
FLUORESCENCE
MICROSCOPY
284
16.5
SUPER-RESOLUTION
FLUORESCENCE
MICROSCOPY
285
16.6
WHAT
CAN
WE
LEARN
ABOUT
CATALYSTS
FROM
(SUPER-RESOLUTION)
FLUORESCENCE
MICROSCOPY:
CASE
STUDIES
286
16.7
CONCLUSIONS
AND
OUTLOOK
291
REFERENCES
292
17
IN
SITU
ELECTRON
PARAMAGNETIC
RESONANCE
SPECTROSCOPY
IN
CATALYSIS
295
YIYUN
LIU
AND
RYAN
WANG
17.1
INTRODUCTION
295
17.2
BASIC
PRINCIPLES
OF
ELECTRON
PARAMAGNETIC
RESONANCE
(EPR)
296
17.3
EXPERIMENTAL
METHODS
AND
SETUP
FOR
IN
SITU
CW-EPR
298
17.4
APPLICATIONS
OF
IN
SITU
EPR
SPECTROSCOPY
302
17.4.1
CU-ZEOLITE
SYSTEMS
303
17.4.2
RADICALS
AND
RADICAL
IONS
305
17.5
CONCLUSIONS
306
REFERENCES
307
CONTENTS
XI
18
TOWARD
OPERANDO
INFRARED
SPECTROSCOPY
OF
HETEROGENEOUS
CATALYSTS
311
DAVIDE
FERRI
18.1
BRIEF
THEORY
ON
INFRARED
SPECTROSCOPY
311
18.2
DIFFERENT
MODES
OF
IR
MEASUREMENTS
314
18.3
MEASURING
THE
BACKGROUND
318
18.4
USING
PROBE
MOLECULES
TO
IDENTIFY
HETEROGENEOUS
SITES
320
18.5
IR
MEASUREMENTS
UNDER
OPERANDO
CONDITIONS
325
18.6
CASE
STUDIES
OF
OPERANDO
IR
SPECTROSCOPY
328
18.6.1
SELECTIVE
CATALYTIC
REDUCTION
OF
NO
BY
NH
3
MEASURED
USING
OPERANDO
TRANSMISSION
IR
328
18.6.2
METHANATION OF
CO
2
MEASURED
USING
OPERANDO
DRIFTS
329
18.6.3
SELECTIVE
OXIDATION
OF
ALCOHOLS
MEASURED
USING
OPERANDO
ATR-IR
331
18.7
PERSPECTIVE
AND
OUTLOOK
333
REFERENCES
334
19
OPERANDO
X-RAY
SPECTROSCOPIES
ON
CATALYSTS
IN
ACTION
339
OLGA
V.
SAFONOVA
AND
MAARTEN
NACHTEGAAL
19.1
FUNDAMENTALS
OF
X-RAY
SPECTROSCOPY
339
19.2
X-RAY
ABSORPTION
SPECTROSCOPY
METHODS
342
19.3
HIGH-ENERGY-RESOLUTION
(RESONANT)
X-RAY
EMISSION
SPECTROSCOPY
347
19.4
IN
SITU
AND
OPERANDO
CELLS
351
19.5
APPLICATION
OF
TIME-RESOLVED
METHODS
353
19.6
LIMITATIONS
AND
CHALLENGES 356
19.7
CONCLUDING
REMARKS
357
REFERENCES
358
20
METHODOLOGIES
TO
HUNT
ACTIVE
SITES
AND
ACTIVE
SPECIES
363
ATSUSHI
URAKAWA
20.1
INTRODUCTION
363
20.2
MODULATION
EXCITATION
TECHNIQUE
365
20.3
STEADY-STATE
ISOTOPIC
TRANSIENT
KINETIC
ANALYSIS
(SSITKA)
369
20.4
MULTIVARIATE
ANALYSIS
371
20.5
OUTLOOK
373
REFERENCES
373
21
ULTRAFAST
SPECTROSCOPIC
TECHNIQUES
IN
PHOTOCATALYSIS
377
CHUN
HONG
MAK,
RUGENG
LIU,
AND
HSIEN-YI
HSU
21.1
TRANSIENT
ABSORPTION
SPECTROSCOPY
377
21.1.1
INTRODUCTION
377
21.1.2
CONVENTIONAL
HETEROGENEOUS
PHOTOCATALYST
380
21.1.3
DYE-SENSITIZED
HETEROGENEOUS
PHOTOCATALYST
384
21.2
TIME-RESOLVED
PHOTOLUMINESCENCE
386
21.2.1
INTRODUCTION
386
XII
CONTENTS
21.2.2
APPLICATIONS
OF
TRPL
IN
HETEROGENEOUS
CATALYSIS
387
21.3
TIME-RESOLVED MICROWAVE
CONDUCTIVITY
389
21.3.1
INTRODUCTION
389
21.3.2
APPLICATIONS
OF
TRMC
IN
HETEROGENEOUS
CATALYSIS
391
REFERENCES
393
VOLUME
2
PREFACE
XV
SECTION
III
AB
INITIO
TECHNIQUES
IN
HETEROGENEOUS
CATALYSIS
399
22
QUANTUM
APPROACHES
TO
PREDICTING
MOLECULAR
REACTIONS
ON
CATALYTIC
SURFACES
401
PATRICK
SIT
23 DENSITY
FUNCTIONAL
THEORY
IN
HETEROGENEOUS
CATALYSIS
405
PATRICK
SIT
AND
LINGHAI
ZHANG
24
AB
INITIO
MOLECULAR
DYNAMICS
IN
HETEROGENEOUS
CATALYSIS
419
YE-FEILI
25
FIRST
PRINCIPLES
SIMULATIONS
OF
ELECTRIFIED
INTERFACES
IN
ELECTROCHEMISTRY
439
STEPHEN
E.
WEITZNER
AND
ISMAILA
DABO
26
TIME-DEPENDENT
DENSITY
FUNCTIONAL
THEORY
FOR
EXCITED-STATE
CALCULATIONS
471
CHI
YUNG
YAM
27
THE
GW
METHOD
FOR
EXCITED
STATES
CALCULATIONS
483
PAOLO
UMARI
28
HIGH-THROUGHPUT
COMPUTATIONAL
DESIGN
OF
NOVEL
CATALYTIC
MATERIALS
497
CHENXI
GUO,
JIN
FAN
CHEN,
AND
JIANPING
XIAO
SECTION
IV
ADVANCEMENT
IN
ENERGY
AND
ENVIRONMENTAL
CATALYSIS
525
29
EMBRACING
THE
ENERGY
AND
ENVIRONMENTAL
CHALLENGES
OF
THE
TWENTY-FIRST
CENTURY
THROUGH
HETEROGENEOUS
CATALYSIS
527
YUN
HAU
NG
CONTENTS
XIII
30
ELECTROCHEMICAL
WATER
SPLITTING
533
GUANG
LIU,
KAMRAN
DASTAFKAN,
AND
CHUAN
ZHAO
31
NEW
VISIBLE-LIGHT-RESPONSIVE
PHOTOCATALYSTS
FOR
WATER
SPLITTING
BASED
ON
MIXED
ANIONS
557
KAZUHIKO
MAEDA
32
ELECTROCATALYSTS
IN
POLYMER
ELECTROLYTE
MEMBRANE
FUEL
CELLS
571
STEPHEN
M.
LYTH
AND
ALBERT
MUFUNDIRWA
33
CONVERSION
OF
LIGNOCELLULOSIC
BIOMASS
TO
BIOFUELS
593
CRISTINA
GARCIA-SANCHO,
JUAN
A.
CECILIA,
AND
RAFAEL
LUQUE
34
CONVERSION
OF
CARBOHYDRATES
TO
HIGH
VALUE
PRODUCTS
617
ISAO
OGINO
35
ENHANCING
SUSTAINABILITY
THROUGH
HETEROGENEOUS
CATALYTIC
CONVERSIONS
AT
HIGH
PRESSURE
633
NAT
PHONGPRUEKSATHAT
AND
ATSUSHI
URAKAWA
36
ELECTRO-,
PHOTO-,
AND
PHOTOELECTRO-CHEMICAL
REDUCTION
OF
CO
2
649
JONATHAN
ALBO,
MANUEL
ALVAREZ-GUERRA,
AND
ANGEL
IRABIEN
37
PHOTOCATAIYTIC
ABATEMENT
OF
EMERGING
MICROPOLLUTANTS
IN
WATER
AND
WASTEWATER
671
LAN
YUAN,
ZI-RONG
TANG,
AND
YI-JUN
XU
38
CATALYTIC
ABATEMENT
OF
NO
X
EMISSIONS
OVER
THE
ZEOLITE
CATALYSTS
685
RUNDUO
ZHANG,
PEIXIN
LI,
AND
HAO
WANG
INDEX
699
|
adam_txt |
CONTENTS
VOLUME
1
PREFACE
XV
SECTION
I
HETEROGENEOUS
CATALYSTS
DESIGN
AND
SYNTHESIS
1
1
EVOLUTION
OF
CATALYSTS
DESIGN
AND
SYNTHESIS:
FROM
BULK
METAL
CATALYSTS
TO
FINE
WIRES
AND
GAUZES,
AND
THAT
TO
NANOPARTICLE
DEPOSITS,
METAL
CLUSTERS,
AND
SINGLE
ATOMS
3
WEY
YANG
TEOH
1.1
THE
CRADLE
OF
MODERN
HETEROGENEOUS
CATALYSTS
3
1.2
THE
GAME
CHANGER:
HIGH-PRESSURE
CATALYTIC
REACTIONS
5
1.3
CATALYTIC
CRACKING
AND
POROUS
CATALYSTS
8
1.4
MINIATURIZATION
OF
METAL
CATALYSTS:
FROM
SUPPORTED
CATALYSTS
TO
SINGLE-ATOM
SITES
12
1.5
PERSPECTIVES
AND
OPPORTUNITIES
15
REFERENCES
16
2
FACETS
ENGINEERING
ON
CATALYSTS
21
JIAN
(JEFFERY)
PAN
2.1
INTRODUCTION
21
2.2
MECHANISMS
OF
FACETS
ENGINEERING
22
2.3
ANISOTROPIC
PROPERTIES
OF
CRYSTAL
FACETS
27
2.3.1
ANISOTROPIC
ADSORPTION
27
2.3.2
SURFACE
ELECTRONIC
STRUCTURE
28
2.3.3
SURFACE
ELECTRIC
FIELD
29
2.4
EFFECTS
OF
FACETS
ENGINEERING
32
2.4.1
OPTICAL
PROPERTIES
32
2.4.2
ACTIVITY
AND
SELECTIVITY
33
2.5
OUTLOOK
34
REFERENCES
35
VI
CONTENTS
3
ELECTROCHEMICAL
SYNTHESIS
OF
NANOSTRUCTURED
CATALYTIC
THIN
FILMS
39
HOI
YING
CHUNG
AND
YUN
HAU
NG
3.1
INTRODUCTION
39
3.2
PRINCIPLE
OF
ELECTROCHEMICAL
METHOD
IN
FABRICATING
THIN
FILM
40
3.2.1
ANODIZATION
42
3.2.1.1
PULSE
OR
STEP
ANODIZATION
45
3.2.2
CATHODIC
ELECTRODEPOSITION
46
3.2.2.1
PULSE
ELECTRODEPOSITION
47
3.2.3
ELECTROPHORETIC
DEPOSITION
48
3.2.4
COMBINATORY
METHODS
INVOLVING
ELECTROCHEMICAL
PROCESS
50
3.2.4.1
COMBINED
ELECTROPHORETIC
DEPOSITION-ANODIZATION
(CEPDA)
APPROACH
51
3.3
CONCLUSIONS
AND
PERSPECTIVE
52
REFERENCES
53
4
SYNTHESIS
AND
DESIGN
OF
CARBON-SUPPORTED
HIGHLY
DISPERSED
METAL
CATALYSTS
57
ENRIQUE
GARDA-BORDEJE
4.1
INTRODUCTION
57
4.2
PREPARATION
OF
CATALYSTS
ON
NEW
CARBON
SUPPORTS
58
4.2.1
CATALYST
ON GRAPHENE
OXIDE
59
4.2.2
CATALYST
ON
GRAPHENE
60
4.2.2.1
GRAPHENE
OR
RGO
AS
STARTING
MATERIAL
60
4.2.2.2
GRAPHENE
OXIDE
AS
PRECURSOR
OF
GRAPHENE-SUPPORTED
CATALYST
61
4.2.2.3
GRAPHENE
DERIVATIVES:
DOPED
GRAPHENE AND
SYNTHETIC
DERIVATIVES
62
4.2.3
CATALYST
ON
NANODIAMONDS AND
ONION-LIKE
CARBON
63
4.2.4
SACS
ON
CARBON
NITRIDES
AND
COVALENT
TRIAZINE
FRAMEWORKS
67
4.2.5
CATALYST
ON
CARBON
MATERIAL
FROM
HYDROTHERMAL
CARBONIZATION
OF
BIOMOLECULES
68
4.3
EMERGING
TECHNIQUES
FOR
CARBON-BASED
CATALYST
SYNTHESIS
69
4.3.1
DEPOSITION
OF
COLLOIDAL
NANOPARTICLES
70
4.3.2
SINGLE-METAL
ATOM
DEPOSITION
BY
WET CHEMISTRY
71
4.3.3
IMMOBILIZATION
OF
METAL
CLUSTERS
AND
SACS
BY
ORGANOMETALLIC
APPROACH
71
4.3.4
CHEMICAL
VAPOR
DEPOSITION
TECHNIQUES
ON
CARBON
SUPPORTS
72
4.3.5
SIMULTANEOUS
FORMATION
OF
METALLIC
CATALYST
AND
POROUS
CARBON
SUPPORT
BY
PYROLYSIS
73
4.3.6
DRY
MECHANICAL
METHODS
73
4.3.7
ELECTRODEPOSITION
73
4.3.8
PHOTODEPOSITION
74
4.4
CONCLUSIONS
AND
OUTLOOK
74
REFERENCES
75
CONTENTS
VII
5
METAL
CLUSTER-BASED
CATALYSTS
79
VLADIMIR
B.
GOLOVKO
5.1
INTRODUCTION
79
5.2
CATALYSTS
MADE
BY
DEPOSITION
OF
CLUSTERS
FROM
THE
GAS
PHASE
UNDER
ULTRAHIGH
VACUUM
81
5.3
CHEMICALLY
SYNTHESIZED
METAL
CLUSTERS
85
5.4
CATALYSIS
USING
THE
CHEMICALLY
SYNTHESIZED
METAL
CLUSTERS
88
5.5
CONCLUSION
95
REFERENCES
96
6 SINGLE-ATOM
HETEROGENEOUS
CATALYSTS
103
YAXIN
CHEN,
ZHEN
MA,
AND
XINGFU
TANG
6.1
INTRODUCTION
103
6.2
CONCEPT
AND
ADVANTAGES
OF
SACS
104
6.2.1
CONCEPT
OF
SACS
104
6.2.2
ADVANTAGES
OF
SACS
105
6.2.2.1
MAXIMUM ATOM
EFFICIENCY
105
6.2.2.2
UNIQUE
CATALYTIC
PROPERTIES
105
6.2.2.3
IDENTIFICATION
OF
CATALYTICALLY
ACTIVE
SITES
105
6.2.2
A
ESTABLISHMENT
OF
INTRINSIC
REACTION
MECHANISMS
106
6.3
SYNTHESIS
OF
SACS
107
6.3.1
PHYSICAL
METHODS
108
6.3.2
CHEMICAL
METHODS
108
6.3.2.1
BOTTOM-UP
SYNTHETIC
METHODS
109
63.2.2
TOP-DOWN
SYNTHETIC
METHODS
112
6.4
CHALLENGES
AND
PERSPECTIVE
113
REFERENCES
114
7
SYNTHESIS
STRATEGIES
FOR
HIERARCHICAL
ZEOLITES
119
XICHENG
JIA,
CHANGBUM
JO,
AND
ALEX
C.K.
YIP
7.1
INTRODUCTION
119
7.2
HIERARCHICAL
ZEOLITES
122
7.2.1
INCREASED
INTRACRYSTALLINE
DIFFUSION
123
7.2.2
REDUCED
STERIC
LIMITATION
123
7.23
CHANGED
PRODUCT
SELECTIVITY
124
7.2.4
DECREASED
COKE
FORMATION
124
73
MODERN
STRATEGIES
FOR
THE
SYNTHESIS
OF
HIERARCHICAL
ZEOLITES
124
7.3.1
HARD
TEMPLATES
124
7.3.1.1
CONFINED-SPACE
METHOD
125
7.3.1.2
CARBON
NANOTUBES
AND
NANOFIBERS
127
73.13
ORDERED
MESOPOROUS
CARBONS
128
7.3.2
SOFT
TEMPLATES
130
73.2.1
TEMPLATING
WITH
SURFACTANTS
130
73.2.2
SILANIZATION
TEMPLATING
METHODS
135
VIII
CONTENTS
7.3.3
DEALUMINATION
136
7.3.4
DESILICATION
138
7.4
CONCLUSION
140
REFERENCES
141
8
DESIGN
OF
MOLECULAR
HETEROGENEOUS
CATALYSTS
WITH
METAL-ORGANIC
FRAMEWORKS
147
MARCO
RANOCCHIARI
8.1
SECONDARY
BUILDING
UNITS
(SBUS)
AND
ISORETICULAR
MOFS
151
8.2
THE
TOOLS
TO
BUILD
MOLECULAR
ACTIVE
SITES:
RETICULAR
CHEMISTRY
AND
BEYOND
152
8.2.1
PRE-SYNTHETIC
METHODOLOGIES
153
8.2.2
POST-SYNTHETIC
METHODOLOGIES
155
8.2.2.1
POST-SYNTHETIC
MODIFICATION
(PSM)
155
8.2.2.2
POST-SYNTHETIC
EXCHANGE
(PSE)
156
8.3
MOFS
IN
CATALYSIS
156
8.3.1
THE
DIFFERENCE
BETWEEN
MOFS
AND
STANDARD
HETEROGENEOUS
AND
HOMOGENEOUS
CATALYSTS
157
8.4
CONCLUSION:
WHERE
TO
GO
FROM
HERE
158
REFERENCES
158
9
HIERARCHICAL
AND
ANISOTROPIC
NANOSTRUCTURED
CATALYSTS
161
HAMIDREZA
ARANDIYAN,
YUAN
WANG,
CHRISTOPHER
M.A,
PARLETT,
AND
ADAM
LEE
9.1
INTRODUCTION
161
9.2
TOP-DOWN
VS.
BOTTOM-UP
APPROACHES
162
9.3
SHAPE
ANISOTROPY
AND
NANOSTRUCTURED
ASSEMBLIES
162
9.4
JANUS
NANOSTRUCTURES
165
9.5
HIERARCHICAL
POROUS
CATALYSTS
169
9.6
FUNCTIONALIZATION
OF
POROUS/ANISOTROPIC
SUBSTRATES
170
9.7
PERSPECTIVE
174
REFERENCES
176
10
FLAME
SYNTHESIS
OF
SIMPLE
AND
MULTIELEMENTAL
OXIDE
CATALYSTS
183
WEY
YANG
TEOH
10.1
FROM
NATURAL
AEROSOLS
FORMATION
TO
ENGINEERED
NANOPARTICLES
183
10.2
FLAME
AEROSOL
SYNTHESIS
AND
REACTORS
185
10.3
SIMPLE
METAL OXIDE-BASED
CATALYSTS
189
10.4
MULTIELEMENTAL
OXIDE-BASED
CATALYSTS
192
10.4.1
SOLID
SOLUTION
METAL
OXIDE
CATALYSTS
192
10.4.2
COMPOSITE
METAL
OXIDE
CATALYSTS
192
10.4.3
COMPLEX
METAL
OXIDE
CATALYSTS
197
10.5
PERSPECTIVE
AND
OUTLOOK
197
REFERENCES
199
CONTENTS
IX
11
BAND
ENGINEERING
OF
SEMICONDUCTORS
TOWARD
VISIBLE-LIGHT-RESPONSIVE
PHOTOCATALYSTS
203
AKIHIDE
IWASE
11.1
BASIS
OF
PHOTOCATALYST
MATERIALS
203
11.2
PHOTOCATALYST
MATERIAL
GROUPS
204
11.2.1
VARIETY
OF
PHOTOCATALYST
MATERIALS
204
11.2.2
MAIN
CONSTITUENT
METAL
ELEMENTS
IN
PHOTOCATALYST
MATERIALS
205
11.3
DESIGN
OF
BAND
STRUCTURES
OF
PHOTOCATALYST
MATERIALS
206
11.3.1
DOPED
PHOTOCATALYSTS
206
11.3.2
VALENCE-BAND-CONTROLLED
PHOTOCATALYSTS
208
11.3.3
SOLID
SOLUTION
PHOTOCATALYSTS
209
11.4
PREPARATION
OF
PHOTOCATALYSTS
210
11.4.1
SOLID-STATE
REACTION
METHOD
211
11.4.2
FLUX
METHOD
211
11.4.3
HYDROTHERMAL
SYNTHESIS
METHOD/SOLVOTHERMAL
SYNTHESIS
METHOD
211
11.4.4
POLYMERIZED
(POLYMERIZABLE)
COMPLEX
METHOD
211
11.4.5
PRECIPITATION
METHOD
212
11.4.6
LOADING
OF
COCATALYSTS
212
REFERENCES
212
SECTION
II
SURFACE
STUDIES
AND
OPERANDO
SPECTROSCOPIES
IN
HETEROGENEOUS
CATALYSIS
215
12
TOWARD
PRECISE
UNDERSTANDING
OF
CATALYTIC
EVENTS
AND
MATERIALS
UNDER
WORKING
CONDITIONS
217
ATSUSHI
URAKAWA
REFERENCES
220
13
PRESSURE
GAPS
IN
HETEROGENEOUS
CATALYSIS
225
LARS
OSTERLUND
13.1
INTRODUCTION
225
13.2
HIGH-PRESSURE
STUDIES
OF
CATALYSTS
226
13.3
ADSORPTION
ON
SOLID
SURFACES
AT
LOW
AND
HIGH
PRESSURES
229
13.3.1
KINETICALLY
RESTRICTED
ADSORBATE
STRUCTURES
229
13.3.2
THERMODYNAMICALLY
DRIVEN
REACTIONS
ON
SOLID
SURFACES
234
13.3.3
REACTIONS
ON
SUPPORTED
NANOPARTICLE
CATALYSTS
244
13.4
CONCLUSIONS
AND
OUTLOOK
246
ACKNOWLEDGMENTS
247
REFERENCES
247
14
IN
SITU
TRANSMISSION
ELECTRON
MICROSCOPY
OBSERVATION
OF
GAS/SOLID
AND
LIQUID/SOLID
INTERFACES
253
AYAKO
HASHIMOTO
14.1
INTRODUCTION
253
14.2
OBSERVATION
IN
GAS
AND
LIQUID
PHASES
254
X
CONTENTS
14.2.1
WINDOW-TYPE
SYSTEM
254
14.2.2
DIFFERENTIAL
PUMPING-TYPE
SYSTEM
256
14.2.3
OTHER
SYSTEMS
257
14.3
APPLICATIONS
AND
OUTLOOK
259
REFERENCES
261
15
TOMOGRAPHY
IN
CATALYST
DESIGN
263
DOROTA
MATRAS,
JAY
PRITCHARD,
ANTONIOS
VAMVAKEROS,
SIMON
DM
JACQUES,
AND
ANDREW
M.
BEALE
15.1
INTRODUCTION
263
15.2
IMAGING
WITH
X-RAYS
264
15.3
CONVENTIONAL
ABSORPTION
CT
TO
STUDY
CATALYTIC
MATERIALS
265
15.4
X-RAY
DIFFRACTION
COMPUTED
TOMOGRAPHY
(XRD-CT)
267
15.5
PAIR
DISTRIBUTION
FUNCTION
CT
269
15.6
MULTIMODAL
XANES-CT,
XRD-CT,
AND
XRF-CT
270
15.7
ATOM
PROBE
TOMOGRAPHY
272
15.8
PTYCHOGRAPHIC
X-RAY
CT
273
15.9
CONCLUSIONS
274
REFERENCES
275
16
RESOLVING
CATALYST
PERFORMANCE
AT
NANOSCALE
VIA
FLUORESCENCE
MICROSCOPY
279
ALEXEY
KUBAREV
AND
MAARTEN
ROEFFAERS
16.1
FLUORESCENCE
MICROSCOPY
AS
CATALYST
CHARACTERIZATION
TOOL
279
16.2
BASICS
OF
FLUORESCENCE
AND
FLUORESCENCE
MICROSCOPY
280
16.3
STRATEGIES
TO
RESOLVE
CATALYTIC
PROCESSES
IN
A
FLUORESCENCE
MICROSCOPE
283
16.4
WIDE-FIELD
AND
CONFOCAL
FLUORESCENCE
MICROSCOPY
284
16.5
SUPER-RESOLUTION
FLUORESCENCE
MICROSCOPY
285
16.6
WHAT
CAN
WE
LEARN
ABOUT
CATALYSTS
FROM
(SUPER-RESOLUTION)
FLUORESCENCE
MICROSCOPY:
CASE
STUDIES
286
16.7
CONCLUSIONS
AND
OUTLOOK
291
REFERENCES
292
17
IN
SITU
ELECTRON
PARAMAGNETIC
RESONANCE
SPECTROSCOPY
IN
CATALYSIS
295
YIYUN
LIU
AND
RYAN
WANG
17.1
INTRODUCTION
295
17.2
BASIC
PRINCIPLES
OF
ELECTRON
PARAMAGNETIC
RESONANCE
(EPR)
296
17.3
EXPERIMENTAL
METHODS
AND
SETUP
FOR
IN
SITU
CW-EPR
298
17.4
APPLICATIONS
OF
IN
SITU
EPR
SPECTROSCOPY
302
17.4.1
CU-ZEOLITE
SYSTEMS
303
17.4.2
RADICALS
AND
RADICAL
IONS
305
17.5
CONCLUSIONS
306
REFERENCES
307
CONTENTS
XI
18
TOWARD
OPERANDO
INFRARED
SPECTROSCOPY
OF
HETEROGENEOUS
CATALYSTS
311
DAVIDE
FERRI
18.1
BRIEF
THEORY
ON
INFRARED
SPECTROSCOPY
311
18.2
DIFFERENT
MODES
OF
IR
MEASUREMENTS
314
18.3
MEASURING
THE
"BACKGROUND"
318
18.4
USING
PROBE
MOLECULES
TO
IDENTIFY
HETEROGENEOUS
SITES
320
18.5
IR
MEASUREMENTS
UNDER
OPERANDO
CONDITIONS
325
18.6
CASE
STUDIES
OF
OPERANDO
IR
SPECTROSCOPY
328
18.6.1
SELECTIVE
CATALYTIC
REDUCTION
OF
NO
BY
NH
3
MEASURED
USING
OPERANDO
TRANSMISSION
IR
328
18.6.2
METHANATION OF
CO
2
MEASURED
USING
OPERANDO
DRIFTS
329
18.6.3
SELECTIVE
OXIDATION
OF
ALCOHOLS
MEASURED
USING
OPERANDO
ATR-IR
331
18.7
PERSPECTIVE
AND
OUTLOOK
333
REFERENCES
334
19
OPERANDO
X-RAY
SPECTROSCOPIES
ON
CATALYSTS
IN
ACTION
339
OLGA
V.
SAFONOVA
AND
MAARTEN
NACHTEGAAL
19.1
FUNDAMENTALS
OF
X-RAY
SPECTROSCOPY
339
19.2
X-RAY
ABSORPTION
SPECTROSCOPY
METHODS
342
19.3
HIGH-ENERGY-RESOLUTION
(RESONANT)
X-RAY
EMISSION
SPECTROSCOPY
347
19.4
IN
SITU
AND
OPERANDO
CELLS
351
19.5
APPLICATION
OF
TIME-RESOLVED
METHODS
353
19.6
LIMITATIONS
AND
CHALLENGES 356
19.7
CONCLUDING
REMARKS
357
REFERENCES
358
20
METHODOLOGIES
TO
HUNT
ACTIVE
SITES
AND
ACTIVE
SPECIES
363
ATSUSHI
URAKAWA
20.1
INTRODUCTION
363
20.2
MODULATION
EXCITATION
TECHNIQUE
365
20.3
STEADY-STATE
ISOTOPIC
TRANSIENT
KINETIC
ANALYSIS
(SSITKA)
369
20.4
MULTIVARIATE
ANALYSIS
371
20.5
OUTLOOK
373
REFERENCES
373
21
ULTRAFAST
SPECTROSCOPIC
TECHNIQUES
IN
PHOTOCATALYSIS
377
CHUN
HONG
MAK,
RUGENG
LIU,
AND
HSIEN-YI
HSU
21.1
TRANSIENT
ABSORPTION
SPECTROSCOPY
377
21.1.1
INTRODUCTION
377
21.1.2
CONVENTIONAL
HETEROGENEOUS
PHOTOCATALYST
380
21.1.3
DYE-SENSITIZED
HETEROGENEOUS
PHOTOCATALYST
384
21.2
TIME-RESOLVED
PHOTOLUMINESCENCE
386
21.2.1
INTRODUCTION
386
XII
CONTENTS
21.2.2
APPLICATIONS
OF
TRPL
IN
HETEROGENEOUS
CATALYSIS
387
21.3
TIME-RESOLVED MICROWAVE
CONDUCTIVITY
389
21.3.1
INTRODUCTION
389
21.3.2
APPLICATIONS
OF
TRMC
IN
HETEROGENEOUS
CATALYSIS
391
REFERENCES
393
VOLUME
2
PREFACE
XV
SECTION
III
AB
INITIO
TECHNIQUES
IN
HETEROGENEOUS
CATALYSIS
399
22
QUANTUM
APPROACHES
TO
PREDICTING
MOLECULAR
REACTIONS
ON
CATALYTIC
SURFACES
401
PATRICK
SIT
23 DENSITY
FUNCTIONAL
THEORY
IN
HETEROGENEOUS
CATALYSIS
405
PATRICK
SIT
AND
LINGHAI
ZHANG
24
AB
INITIO
MOLECULAR
DYNAMICS
IN
HETEROGENEOUS
CATALYSIS
419
YE-FEILI
25
FIRST
PRINCIPLES
SIMULATIONS
OF
ELECTRIFIED
INTERFACES
IN
ELECTROCHEMISTRY
439
STEPHEN
E.
WEITZNER
AND
ISMAILA
DABO
26
TIME-DEPENDENT
DENSITY
FUNCTIONAL
THEORY
FOR
EXCITED-STATE
CALCULATIONS
471
CHI
YUNG
YAM
27
THE
GW
METHOD
FOR
EXCITED
STATES
CALCULATIONS
483
PAOLO
UMARI
28
HIGH-THROUGHPUT
COMPUTATIONAL
DESIGN
OF
NOVEL
CATALYTIC
MATERIALS
497
CHENXI
GUO,
JIN
FAN
CHEN,
AND
JIANPING
XIAO
SECTION
IV
ADVANCEMENT
IN
ENERGY
AND
ENVIRONMENTAL
CATALYSIS
525
29
EMBRACING
THE
ENERGY
AND
ENVIRONMENTAL
CHALLENGES
OF
THE
TWENTY-FIRST
CENTURY
THROUGH
HETEROGENEOUS
CATALYSIS
527
YUN
HAU
NG
CONTENTS
XIII
30
ELECTROCHEMICAL
WATER
SPLITTING
533
GUANG
LIU,
KAMRAN
DASTAFKAN,
AND
CHUAN
ZHAO
31
NEW
VISIBLE-LIGHT-RESPONSIVE
PHOTOCATALYSTS
FOR
WATER
SPLITTING
BASED
ON
MIXED
ANIONS
557
KAZUHIKO
MAEDA
32
ELECTROCATALYSTS
IN
POLYMER
ELECTROLYTE
MEMBRANE
FUEL
CELLS
571
STEPHEN
M.
LYTH
AND
ALBERT
MUFUNDIRWA
33
CONVERSION
OF
LIGNOCELLULOSIC
BIOMASS
TO
BIOFUELS
593
CRISTINA
GARCIA-SANCHO,
JUAN
A.
CECILIA,
AND
RAFAEL
LUQUE
34
CONVERSION
OF
CARBOHYDRATES
TO
HIGH
VALUE
PRODUCTS
617
ISAO
OGINO
35
ENHANCING
SUSTAINABILITY
THROUGH
HETEROGENEOUS
CATALYTIC
CONVERSIONS
AT
HIGH
PRESSURE
633
NAT
PHONGPRUEKSATHAT
AND
ATSUSHI
URAKAWA
36
ELECTRO-,
PHOTO-,
AND
PHOTOELECTRO-CHEMICAL
REDUCTION
OF
CO
2
649
JONATHAN
ALBO,
MANUEL
ALVAREZ-GUERRA,
AND
ANGEL
IRABIEN
37
PHOTOCATAIYTIC
ABATEMENT
OF
EMERGING
MICROPOLLUTANTS
IN
WATER
AND
WASTEWATER
671
LAN
YUAN,
ZI-RONG
TANG,
AND
YI-JUN
XU
38
CATALYTIC
ABATEMENT
OF
NO
X
EMISSIONS
OVER
THE
ZEOLITE
CATALYSTS
685
RUNDUO
ZHANG,
PEIXIN
LI,
AND
HAO
WANG
INDEX
699 |
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author2 | Teoh, Wey Yang Urakawa, Atsushi Ng, Yun Hau |
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genre_facet | Aufsatzsammlung |
id | DE-604.BV046880679 |
illustrated | Illustrated |
index_date | 2024-07-03T15:18:13Z |
indexdate | 2024-07-10T08:56:25Z |
institution | BVB |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-032290684 |
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physical | xvi, 397 Seiten Illustrationen, Diagramme |
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publisher | Wiley-VCH |
record_format | marc |
spelling | Heterogeneous catalysts advanced design, characterization and applications Volume 1 edited by Wey Yang Teoh, Atsushi Urakawa, Yun Hau Ng, and Patrick Sit Weinheim Wiley-VCH [2021] xvi, 397 Seiten Illustrationen, Diagramme txt rdacontent n rdamedia nc rdacarrier (DE-588)4143413-4 Aufsatzsammlung gnd-content Teoh, Wey Yang (DE-588)1235161404 edt Urakawa, Atsushi (DE-588)1235161579 edt Ng, Yun Hau (DE-588)1235161919 edt (DE-604)BV047241047 1 DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032290684&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Heterogeneous catalysts advanced design, characterization and applications |
subject_GND | (DE-588)4143413-4 |
title | Heterogeneous catalysts advanced design, characterization and applications |
title_auth | Heterogeneous catalysts advanced design, characterization and applications |
title_exact_search | Heterogeneous catalysts advanced design, characterization and applications |
title_exact_search_txtP | Heterogeneous catalysts advanced design, characterization and applications |
title_full | Heterogeneous catalysts advanced design, characterization and applications Volume 1 edited by Wey Yang Teoh, Atsushi Urakawa, Yun Hau Ng, and Patrick Sit |
title_fullStr | Heterogeneous catalysts advanced design, characterization and applications Volume 1 edited by Wey Yang Teoh, Atsushi Urakawa, Yun Hau Ng, and Patrick Sit |
title_full_unstemmed | Heterogeneous catalysts advanced design, characterization and applications Volume 1 edited by Wey Yang Teoh, Atsushi Urakawa, Yun Hau Ng, and Patrick Sit |
title_short | Heterogeneous catalysts |
title_sort | heterogeneous catalysts advanced design characterization and applications |
title_sub | advanced design, characterization and applications |
topic_facet | Aufsatzsammlung |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=032290684&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
volume_link | (DE-604)BV047241047 |
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