Synthesis-Structure-Activity Relationships in Co3O4 Catalyzed CO Oxidation

In this work, a statistical design and analysis platform was used to develop cobalt oxide based oxidation catalysts prepared via one pot metal salt reduction. An emphasis was placed upon understanding the effects of synthesis conditions, such as heating regimen and Co2+ concentration on the metal sa...

Full description

Bibliographic Details
Main Authors: Kathleen Mingle, Jochen Lauterbach
Format: Article
Language:English
Published: Frontiers Media S.A. 2018-05-01
Series:Frontiers in Chemistry
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fchem.2018.00185/full
id doaj-851f67758767448c93137f7da7943e85
record_format Article
spelling doaj-851f67758767448c93137f7da7943e852020-11-24T22:55:57ZengFrontiers Media S.A.Frontiers in Chemistry2296-26462018-05-01610.3389/fchem.2018.00185375744Synthesis-Structure-Activity Relationships in Co3O4 Catalyzed CO OxidationKathleen MingleJochen LauterbachIn this work, a statistical design and analysis platform was used to develop cobalt oxide based oxidation catalysts prepared via one pot metal salt reduction. An emphasis was placed upon understanding the effects of synthesis conditions, such as heating regimen and Co2+ concentration on the metal salt reduction mechanism, the resultant nanomaterial properties (i.e., size, crystal structure, and crystal faceting), and the catalytic activity in CO oxidation. This was accomplished by carrying out XRD, TEM, and FTIR studies on synthesis intermediates and products. Additionally, high-throughput experimentation was employed to study the performance of Co3O4 oxidation catalysts over a wide range of reaction conditions using a 16-channel fixed bed reactor equipped with a parallel infrared imaging system. Specifically, Co3O4 nanomaterials of varying properties were evaluated for their performance as CO oxidation catalysts. Figure-of-merits including light-off temperatures and activation energies were measured and mapped back to the catalyst properties and synthesis conditions. Statistical analysis methods were used to elucidate significant property-activity relationships as well as the design rules relevant in the synthesis of active catalysts. It was found that the degree of grain boundary consolidation and anisotropic growth in fcc and hcp CoO intermediates significantly influenced the catalytic activity. By utilizing the discovered synthesis-structure-activity relationships, CO oxidation light off temperatures were decreased to <90°C.https://www.frontiersin.org/article/10.3389/fchem.2018.00185/fullCO oxidationColbalt oxidecombinatorial optimizationdesign of experiments (DOE)grain boundaries
collection DOAJ
language English
format Article
sources DOAJ
author Kathleen Mingle
Jochen Lauterbach
spellingShingle Kathleen Mingle
Jochen Lauterbach
Synthesis-Structure-Activity Relationships in Co3O4 Catalyzed CO Oxidation
Frontiers in Chemistry
CO oxidation
Colbalt oxide
combinatorial optimization
design of experiments (DOE)
grain boundaries
author_facet Kathleen Mingle
Jochen Lauterbach
author_sort Kathleen Mingle
title Synthesis-Structure-Activity Relationships in Co3O4 Catalyzed CO Oxidation
title_short Synthesis-Structure-Activity Relationships in Co3O4 Catalyzed CO Oxidation
title_full Synthesis-Structure-Activity Relationships in Co3O4 Catalyzed CO Oxidation
title_fullStr Synthesis-Structure-Activity Relationships in Co3O4 Catalyzed CO Oxidation
title_full_unstemmed Synthesis-Structure-Activity Relationships in Co3O4 Catalyzed CO Oxidation
title_sort synthesis-structure-activity relationships in co3o4 catalyzed co oxidation
publisher Frontiers Media S.A.
series Frontiers in Chemistry
issn 2296-2646
publishDate 2018-05-01
description In this work, a statistical design and analysis platform was used to develop cobalt oxide based oxidation catalysts prepared via one pot metal salt reduction. An emphasis was placed upon understanding the effects of synthesis conditions, such as heating regimen and Co2+ concentration on the metal salt reduction mechanism, the resultant nanomaterial properties (i.e., size, crystal structure, and crystal faceting), and the catalytic activity in CO oxidation. This was accomplished by carrying out XRD, TEM, and FTIR studies on synthesis intermediates and products. Additionally, high-throughput experimentation was employed to study the performance of Co3O4 oxidation catalysts over a wide range of reaction conditions using a 16-channel fixed bed reactor equipped with a parallel infrared imaging system. Specifically, Co3O4 nanomaterials of varying properties were evaluated for their performance as CO oxidation catalysts. Figure-of-merits including light-off temperatures and activation energies were measured and mapped back to the catalyst properties and synthesis conditions. Statistical analysis methods were used to elucidate significant property-activity relationships as well as the design rules relevant in the synthesis of active catalysts. It was found that the degree of grain boundary consolidation and anisotropic growth in fcc and hcp CoO intermediates significantly influenced the catalytic activity. By utilizing the discovered synthesis-structure-activity relationships, CO oxidation light off temperatures were decreased to <90°C.
topic CO oxidation
Colbalt oxide
combinatorial optimization
design of experiments (DOE)
grain boundaries
url https://www.frontiersin.org/article/10.3389/fchem.2018.00185/full
work_keys_str_mv AT kathleenmingle synthesisstructureactivityrelationshipsinco3o4catalyzedcooxidation
AT jochenlauterbach synthesisstructureactivityrelationshipsinco3o4catalyzedcooxidation
_version_ 1725655672517820416