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Volume 3 Issue 12, December 2020
Volume 3 Issue 12, December 2020

Volume 3 | Nature Catalysis
Volume 3 | Nature Catalysis

Nature Catalysis Impact Factor 2022 - Journal Impact Factor
Nature Catalysis Impact Factor 2022 - Journal Impact Factor

Threshold potentials for fast kinetics during mediated redox catalysis of  insulators in Li–O2 and Li–S batteries | Nature Catalysis
Threshold potentials for fast kinetics during mediated redox catalysis of insulators in Li–O2 and Li–S batteries | Nature Catalysis

Silica-supported Fe/Fe–O nanoparticles for the catalytic hydrogenation of  nitriles to amines in the presence of aluminium additives | Nature Catalysis
Silica-supported Fe/Fe–O nanoparticles for the catalytic hydrogenation of nitriles to amines in the presence of aluminium additives | Nature Catalysis

Ground-state destabilization by electrostatic repulsion is not a driving  force in orotidine-5′-monophosphate decarboxylase catalysis | Nature  Catalysis
Ground-state destabilization by electrostatic repulsion is not a driving force in orotidine-5′-monophosphate decarboxylase catalysis | Nature Catalysis

Nature Catalysis Template - Nature
Nature Catalysis Template - Nature

Reaction product-driven restructuring and assisted stabilization of a  highly dispersed Rh-on-ceria catalyst | Nature Catalysis
Reaction product-driven restructuring and assisted stabilization of a highly dispersed Rh-on-ceria catalyst | Nature Catalysis

Nature Catalysis impact factor and citations:... | Exaly
Nature Catalysis impact factor and citations:... | Exaly

Simultaneous oxidative and reductive reactions in one system by atomic  design | Nature Catalysis
Simultaneous oxidative and reductive reactions in one system by atomic design | Nature Catalysis

Towards molecular understanding of local chemical environment effects in  electro- and photocatalytic CO2 reduction | Nature Catalysis
Towards molecular understanding of local chemical environment effects in electro- and photocatalytic CO2 reduction | Nature Catalysis

Directed evolution of an efficient and thermostable PET depolymerase | Nature  Catalysis
Directed evolution of an efficient and thermostable PET depolymerase | Nature Catalysis

In situ quantitative single-molecule study of dynamic catalytic processes  in nanoconfinement | Nature Catalysis
In situ quantitative single-molecule study of dynamic catalytic processes in nanoconfinement | Nature Catalysis

Thermochemical aerobic oxidation catalysis in water can be analysed as two  coupled electrochemical half-reactions | Nature Catalysis
Thermochemical aerobic oxidation catalysis in water can be analysed as two coupled electrochemical half-reactions | Nature Catalysis

A new-to-nature carboxylation module to improve natural and synthetic CO2  fixation | Nature Catalysis
A new-to-nature carboxylation module to improve natural and synthetic CO2 fixation | Nature Catalysis

Identification of active sites for acidic oxygen reduction on carbon  catalysts with and without nitrogen doping | Nature Catalysis
Identification of active sites for acidic oxygen reduction on carbon catalysts with and without nitrogen doping | Nature Catalysis

Control of metal-support interactions in heterogeneous catalysts to enhance  activity and selectivity | Nature Catalysis
Control of metal-support interactions in heterogeneous catalysts to enhance activity and selectivity | Nature Catalysis

Catalyst synthesis under CO2 electroreduction favours faceting and promotes  renewable fuels electrosynthesis | Nature Catalysis
Catalyst synthesis under CO2 electroreduction favours faceting and promotes renewable fuels electrosynthesis | Nature Catalysis

Steering the structure and selectivity of CO2 electroreduction catalysts by  potential pulses | Nature Catalysis
Steering the structure and selectivity of CO2 electroreduction catalysts by potential pulses | Nature Catalysis

Unifying views on catalyst deactivation | Nature Catalysis
Unifying views on catalyst deactivation | Nature Catalysis

Nature Catalysis - Wikipedia
Nature Catalysis - Wikipedia

Nature Catalysis
Nature Catalysis

Decoding reactive structures in dilute alloy catalysts | Nature  Communications
Decoding reactive structures in dilute alloy catalysts | Nature Communications

Journal Metrics | Nature Catalysis
Journal Metrics | Nature Catalysis

Using nature's blueprint to expand catalysis with Earth-abundant metals |  Science
Using nature's blueprint to expand catalysis with Earth-abundant metals | Science

Enzyme-like water preorganization in a synthetic molecular cleft for  homogeneous water oxidation catalysis | Nature Catalysis
Enzyme-like water preorganization in a synthetic molecular cleft for homogeneous water oxidation catalysis | Nature Catalysis