Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Formaldehyde Activation and Dissociation on Defective Co-doped CeO 2 (111): First-Principles Calculations

View through CrossRef
DFT+U calculations have been utilized to explore theoretically three potential pathways of HCHO oxidation on Co-doped CeO 2 (111) with O-vacancy herein. To begin with possible adsorption configurations and resultant adsorption strengths of HCHO on Co-doped CeO 2 (111) are presented, we conclude that HCHO adsorbed Co-doped CeO 2 (111) has the kinetic stability order of E ads(Co-O-bridge) > E ads(O-top) > E ads(Ce-top-II) > E ads(Ce-O-bridge) > E ads(Ce-top-I) > E ads(Co-top) with different adsorption locations. O-vacancy has further constructed artificially at the surface rather than subsurface to stimulate the catalytic activity of Co-doped CeO 2 (111) because of surficial lower O-vacancy formation energy compared to the subsurface. Based on Langmuir-Hinshelwood mechanism in which O 2 and HCHO are both co-adsorbed on the reduced ceria surface, three resultant individual reaction products, resulting from different pathways of HCHO oxidation on Co-doped CeO 2 (111) with O-vacancy, are identified in detail within the frame of transition state theory. It shows that, at Co-O bridge site, HCHO is oxidized to carbonate species with reactive energy barriers of TS1 of 0.71 and TS2 of 0.36 eV; at O top site, HCHO oxidized to CO need to overcome barriers of TS1 of 0.55 and TS2 of 0.06 eV; while at Ce-O bridge site, HCHO to CO 2 is the most difficult to proceed because of its highest energy barriers of TS1 of 0.96 and TS2 of 2.14 eV. We thus predict that the reaction pathway of HCHO to CO proceeds with the lowest overall barrier on defective Co-doped CeO 2 (111). These findings provide clear insight into further exploration in formaldehyde activation processes.
Title: Formaldehyde Activation and Dissociation on Defective Co-doped CeO 2 (111): First-Principles Calculations
Description:
DFT+U calculations have been utilized to explore theoretically three potential pathways of HCHO oxidation on Co-doped CeO 2 (111) with O-vacancy herein.
To begin with possible adsorption configurations and resultant adsorption strengths of HCHO on Co-doped CeO 2 (111) are presented, we conclude that HCHO adsorbed Co-doped CeO 2 (111) has the kinetic stability order of E ads(Co-O-bridge) > E ads(O-top) > E ads(Ce-top-II) > E ads(Ce-O-bridge) > E ads(Ce-top-I) > E ads(Co-top) with different adsorption locations.
O-vacancy has further constructed artificially at the surface rather than subsurface to stimulate the catalytic activity of Co-doped CeO 2 (111) because of surficial lower O-vacancy formation energy compared to the subsurface.
Based on Langmuir-Hinshelwood mechanism in which O 2 and HCHO are both co-adsorbed on the reduced ceria surface, three resultant individual reaction products, resulting from different pathways of HCHO oxidation on Co-doped CeO 2 (111) with O-vacancy, are identified in detail within the frame of transition state theory.
It shows that, at Co-O bridge site, HCHO is oxidized to carbonate species with reactive energy barriers of TS1 of 0.
71 and TS2 of 0.
36 eV; at O top site, HCHO oxidized to CO need to overcome barriers of TS1 of 0.
55 and TS2 of 0.
06 eV; while at Ce-O bridge site, HCHO to CO 2 is the most difficult to proceed because of its highest energy barriers of TS1 of 0.
96 and TS2 of 2.
14 eV.
We thus predict that the reaction pathway of HCHO to CO proceeds with the lowest overall barrier on defective Co-doped CeO 2 (111).
These findings provide clear insight into further exploration in formaldehyde activation processes.

Related Results

Fabrication and excellent formaldehyde Gas sensing properties of Yb-doped In2O3 nanotubes
Fabrication and excellent formaldehyde Gas sensing properties of Yb-doped In2O3 nanotubes
Pure and Yb-doped In2O3 nanotubes have been successfully fabricated by using the single-capillary electrospinning method, followed by calcination. The morphological and structural ...
CEO Turnover: Governance, Games and Real Options
CEO Turnover: Governance, Games and Real Options
<p>The decision a Board of Directors (a board) makes to dismiss or retain its CEO is one of extreme importance in its role of representing shareholder interests and maximisin...
Hidden formaldehyde in cosmetic products
Hidden formaldehyde in cosmetic products
AbstractBackgroundFormaldehyde is a common cause of contact allergy. Hidden formaldehyde, that is, formaldehyde in products without formaldehyde releasers, has previously been dete...
Methods to Induce Dissociation and Their Effects on Intrusions and Memory: A Randomized Controlled Trauma-Film Study
Methods to Induce Dissociation and Their Effects on Intrusions and Memory: A Randomized Controlled Trauma-Film Study
Background: Peritraumatic dissociation is thought to contribute to posttraumatic symptoms like intrusions and memory disturbances. However, trauma-analogue studies that examined ef...
Freshness and Contamination with Formalin of Mackerel marketed in Dar es Salaam
Freshness and Contamination with Formalin of Mackerel marketed in Dar es Salaam
Abstract Background Fish constitutes a nutritious food that deteriorates quickly when poorly preserved. Several biochemicals, including formaldehyde, naturally accumulate i...
Ceo Characterıstıcs On Fırm Value Wıth Fırm Sıze As A Moderatıng Varıable
Ceo Characterıstıcs On Fırm Value Wıth Fırm Sıze As A Moderatıng Varıable
This study aims to determine the effect of CEO power, CEO narcissism, CEO education, and CEO tenure on firm value with firm size as a moderating variable. This study uses purposive...
Formaldehyde Exposure and Human Health Risks
Formaldehyde Exposure and Human Health Risks
Abstract This chapter primarily focuses on the human health effects of formaldehyde inhalation exposure. It summarizes significant published findings and recently...

Back to Top