Context <p>The conversion of carbon dioxide into methanoic acid through direct hydrogenation with H<InlineEquation ID="IEq3"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq3.gif" Format="GIF" Height="10" Rendition="HTML" Resolution="72" Type="Linedraw" Width="8" /> </InlineMediaObject> <EquationSource Format="TEX">\(_2\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mn>2</mn> <mrow /> </mmultiscripts> </math></EquationSource> </InlineEquation> in the gas phase implies overcoming a high activation energy (more than 60 kcal mol <InlineEquation ID="IEq4"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq4.gif" Format="GIF" Height="11" Rendition="HTML" Resolution="72" Type="Linedraw" Width="18" /> </InlineMediaObject> <EquationSource Format="TEX">\(^{-1}\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mrow /> <mrow> <mo>-</mo> <mn>1</mn> </mrow> </mmultiscripts> </math></EquationSource> </InlineEquation>) that makes the process kinetically infeasible. In this study, the use of the [(PY<InlineEquation ID="IEq5"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq5.gif" Format="GIF" Height="10" Rendition="HTML" Resolution="72" Type="Linedraw" Width="8" /> </InlineMediaObject> <EquationSource Format="TEX">\(_5\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mn>5</mn> <mrow /> </mmultiscripts> </math></EquationSource> </InlineEquation>Me<InlineEquation ID="IEq6"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq6.gif" Format="GIF" Height="10" Rendition="HTML" Resolution="72" Type="Linedraw" Width="8" /> </InlineMediaObject> <EquationSource Format="TEX">\(_2\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mn>2</mn> <mrow /> </mmultiscripts> </math></EquationSource> </InlineEquation>)Mo(III)(H)(OH)]<InlineEquation ID="IEq7"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq7.gif" Format="GIF" Height="10" Rendition="HTML" Resolution="72" Type="Linedraw" Width="11" /> </InlineMediaObject> <EquationSource Format="TEX">\(^{+}\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mrow /> <mo>+</mo> </mmultiscripts> </math></EquationSource> </InlineEquation> complex instead of H<InlineEquation ID="IEq8"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq8.gif" Format="GIF" Height="10" Rendition="HTML" Resolution="72" Type="Linedraw" Width="8" /> </InlineMediaObject> <EquationSource Format="TEX">\(_2\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mn>2</mn> <mrow /> </mmultiscripts> </math></EquationSource> </InlineEquation> lowered the activation energy of the hydrogenation by 98.5%. Reaction mechanism in the presence and absence of the Mo-based complex is analyzed through the reaction force, its components, and their respective reaction works. It was found that the high activation energy for the direct hydrogenation of CO<InlineEquation ID="IEq9"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq9.gif" Format="GIF" Height="10" Rendition="HTML" Resolution="72" Type="Linedraw" Width="8" /> </InlineMediaObject> <EquationSource Format="TEX">\(_2\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mn>2</mn> <mrow /> </mmultiscripts> </math></EquationSource> </InlineEquation> with H<InlineEquation ID="IEq10"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq10.gif" Format="GIF" Height="10" Rendition="HTML" Resolution="72" Type="Linedraw" Width="8" /> </InlineMediaObject> <EquationSource Format="TEX">\(_2\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mn>2</mn> <mrow /> </mmultiscripts> </math></EquationSource> </InlineEquation> is a consequence of a predominance of three types of reaction force components acting as retarding forces while a fourth type of reaction force component is acting as a driving force from the reactant state until the transition state. On the contrary, the low activation energy for the hydrogenation of CO<InlineEquation ID="IEq11"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="894_2025_6335_Article_IEq11.gif" Format="GIF" Height="10" Rendition="HTML" Resolution="72" Type="Linedraw" Width="8" /> </InlineMediaObject> <EquationSource Format="TEX">\(_2\)</EquationSource> <EquationSource Format="MATHML"><math> <mmultiscripts> <mrow /> <mn>2</mn> <mrow /> </mmultiscripts> </math></EquationSource> </InlineEquation> assisted by the Molybdenum-based complex is a consequence of opposing types of force components balancing each other, where two act as retarding forces against two reaction force components acting as driving forces.</p> Method <p>Quantum chemistry calculations were performed through DFT methods with the BP86 density functional along with MWB28 pseudopotentials including a proper basis set for Mo and 6-31+G(d,p) basis set for the remaining atoms implemented in Gaussian 16. AOMix post-SCF software was employed to determine bond orders on stationary points. The reaction force analysis focused on the reaction mechanisms of both chemical reactions using numerical differentiation of energy profiles with OriginPro 2020.</p>

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Theoretical evidence of the CO\(_{2}\) reduction by a Mo-based complex: a DFT study based on the reaction force decomposed into four components

  • Jorge I. Martínez-Araya

摘要

Context

The conversion of carbon dioxide into methanoic acid through direct hydrogenation with H \(_2\) 2 in the gas phase implies overcoming a high activation energy (more than 60 kcal mol \(^{-1}\) - 1 ) that makes the process kinetically infeasible. In this study, the use of the [(PY \(_5\) 5 Me \(_2\) 2 )Mo(III)(H)(OH)] \(^{+}\) + complex instead of H \(_2\) 2 lowered the activation energy of the hydrogenation by 98.5%. Reaction mechanism in the presence and absence of the Mo-based complex is analyzed through the reaction force, its components, and their respective reaction works. It was found that the high activation energy for the direct hydrogenation of CO \(_2\) 2 with H \(_2\) 2 is a consequence of a predominance of three types of reaction force components acting as retarding forces while a fourth type of reaction force component is acting as a driving force from the reactant state until the transition state. On the contrary, the low activation energy for the hydrogenation of CO \(_2\) 2 assisted by the Molybdenum-based complex is a consequence of opposing types of force components balancing each other, where two act as retarding forces against two reaction force components acting as driving forces.

Method

Quantum chemistry calculations were performed through DFT methods with the BP86 density functional along with MWB28 pseudopotentials including a proper basis set for Mo and 6-31+G(d,p) basis set for the remaining atoms implemented in Gaussian 16. AOMix post-SCF software was employed to determine bond orders on stationary points. The reaction force analysis focused on the reaction mechanisms of both chemical reactions using numerical differentiation of energy profiles with OriginPro 2020.