Application of New Nanoparticle Structures as Catalysts

Catalysts are made of nanoparticles of metals, metal oxides, and other compounds that may act as active phases, support the latter, or a combination of both. The initial incentive to reduce as much as possible, up to the nano-scale, the size of the particles of active catalyst components is to maxim...

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Year of Publication:2020
Language:English
Physical Description:1 electronic resource (190 p.)
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(oapen)https://directory.doabooks.org/handle/20.500.12854/69224
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spelling Guerrero Ruiz, Antonio edt
Application of New Nanoparticle Structures as Catalysts
Basel, Switzerland MDPI - Multidisciplinary Digital Publishing Institute 2020
1 electronic resource (190 p.)
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Open access Unrestricted online access star
Catalysts are made of nanoparticles of metals, metal oxides, and other compounds that may act as active phases, support the latter, or a combination of both. The initial incentive to reduce as much as possible, up to the nano-scale, the size of the particles of active catalyst components is to maximize the surface area exposed to reactants, thus minimizing the specific cost per function and increasing the rate of conversion of feedstocks to products in relatively simple reactions. Nowadays, the interest in nanocatalyst developments has shifted to an emphasis on improving the selectivity of catalysts, allowing one to obtain desirable reactions in more complex synthetic processes. Thus, new generations of nanocatalysts should be designed at the molecular level to display well-defined structural characteristics, in terms of size, shapes, hierarchical porosity, and morphologies, as well as with controlled chemical composition. The development of efficient nanocatalysts supposes the characterization of their various surface active sites at the nanometer scale, which is focused on establishing synthesis–structure–performance relationships.
English
Research & information: general bicssc
plasmonic photocatalyst
metal nanoparticle
N–TiO2
nanocomposites
photocatalytic selective oxidation
heterogeneous catalysis
transition metal nitrides
hydrogen production
formic acid decomposition
nickel catalyst
calcium oxide promoter
silica support
Iron-based perovskites
copper
NO oxidation to NO2
NO2-assisted diesel soot oxidation
soot oxidation under GDI exhaust conditions
aqueous-phase reforming
nickel
ceria
zirconia
calcium
yttrium
methanol
graphite
reduced graphene oxide
nitrogen-doped reduced graphene oxide
exfoliation
oxygen reduction reaction
electrocatalysis
UiO-66
iron
cobalt
nanocatalyst
CO oxidation
COProx
methane
oxidation catalysis
formaldehyde
magnetite iron oxide
Fe3O4
palladium
Pd
silver
Ag
low-temperature activity
nanocomposite
Raman
TG in air
TG in hydrogen
XRD
electron microscopy
EDS
coordination polymers
methane storage
XRD crystallinity measurements
mechanical shaping
compaction
VAM
gas separation
MOF pelletization
catalysts
dimerization
isobutene
olefins
3-03943-250-8
3-03943-251-6
Rodríguez-Ramos, Inmaculada edt
Guerrero Ruiz, Antonio oth
Rodríguez-Ramos, Inmaculada oth
language English
format eBook
author2 Rodríguez-Ramos, Inmaculada
Guerrero Ruiz, Antonio
Rodríguez-Ramos, Inmaculada
author_facet Rodríguez-Ramos, Inmaculada
Guerrero Ruiz, Antonio
Rodríguez-Ramos, Inmaculada
author2_variant r a g ra rag
i r r irr
author2_role HerausgeberIn
Sonstige
Sonstige
title Application of New Nanoparticle Structures as Catalysts
spellingShingle Application of New Nanoparticle Structures as Catalysts
title_full Application of New Nanoparticle Structures as Catalysts
title_fullStr Application of New Nanoparticle Structures as Catalysts
title_full_unstemmed Application of New Nanoparticle Structures as Catalysts
title_auth Application of New Nanoparticle Structures as Catalysts
title_new Application of New Nanoparticle Structures as Catalysts
title_sort application of new nanoparticle structures as catalysts
publisher MDPI - Multidisciplinary Digital Publishing Institute
publishDate 2020
physical 1 electronic resource (190 p.)
isbn 3-03943-250-8
3-03943-251-6
illustrated Not Illustrated
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