First-row transition metal embedded pyrazine-based graphynes as high-performance single atom catalysts for the CO2 reduction reaction

Single atom catalysts (SACs) have displayed unprecedented activity and selectivity toward the electrochemical CO2 reduction reaction (CO2RR). Herein, first-row transition metal embedded pyrazine-based graphynes (TM-pyGYs) were evaluated as potential SACs for the CO2RR by using density functional the...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2022, Vol.10 (16), p.9048-9058
Hauptverfasser: Wang, Maohuai, Kong, Lingyan, Lu, Xiaoqing, Chi-Man, Lawrence Wu
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container_issue 16
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container_title Journal of materials chemistry. A, Materials for energy and sustainability
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creator Wang, Maohuai
Kong, Lingyan
Lu, Xiaoqing
Chi-Man, Lawrence Wu
description Single atom catalysts (SACs) have displayed unprecedented activity and selectivity toward the electrochemical CO2 reduction reaction (CO2RR). Herein, first-row transition metal embedded pyrazine-based graphynes (TM-pyGYs) were evaluated as potential SACs for the CO2RR by using density functional theory. The computational results showed that TM-pyGYs exhibited large cohesive energies ranging from 6.67 to 6.78 eV per atom and metal binding energies ranging from 0.79 to 5.48 eV. Electronic structure analyses demonstrated the strong covalent bond, large charge transfer, and distinct orbital overlap between the TM atoms and pyGY, which proved the high stability of TM-pyGYs in the CO2RR. Most TM-pyGYs exhibited preferred CO2RR selectivity over the hydrogen evolution reaction. The most favorable reaction pathways of the CO2RR to CO, HCOOH, CH3OH, and CH4 on TM-pyGYs were systematically explored. Among all the TM-pyGYs, Mn/Fe/Ni-pyGYs were determined to be outstanding electrocatalysts in the CO2RR for producing HCOOH with low limiting potentials of −0.21 to −0.36 V, and Co-pyGY exhibited high-performance CO2RR to CH4 with a low limiting potential of −0.35 V, which surpassed the performance of the vast majority of electrocatalysts. With applied potential, Fe/Co/Ni-pyGYs exhibited great advantages in the CO2RR to CH4. The results of this work highlighted TM-pyGYs as ideal SACs for the electrochemical CO2RR.
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Herein, first-row transition metal embedded pyrazine-based graphynes (TM-pyGYs) were evaluated as potential SACs for the CO2RR by using density functional theory. The computational results showed that TM-pyGYs exhibited large cohesive energies ranging from 6.67 to 6.78 eV per atom and metal binding energies ranging from 0.79 to 5.48 eV. Electronic structure analyses demonstrated the strong covalent bond, large charge transfer, and distinct orbital overlap between the TM atoms and pyGY, which proved the high stability of TM-pyGYs in the CO2RR. Most TM-pyGYs exhibited preferred CO2RR selectivity over the hydrogen evolution reaction. The most favorable reaction pathways of the CO2RR to CO, HCOOH, CH3OH, and CH4 on TM-pyGYs were systematically explored. Among all the TM-pyGYs, Mn/Fe/Ni-pyGYs were determined to be outstanding electrocatalysts in the CO2RR for producing HCOOH with low limiting potentials of −0.21 to −0.36 V, and Co-pyGY exhibited high-performance CO2RR to CH4 with a low limiting potential of −0.35 V, which surpassed the performance of the vast majority of electrocatalysts. With applied potential, Fe/Co/Ni-pyGYs exhibited great advantages in the CO2RR to CH4. 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A, Materials for energy and sustainability</title><description>Single atom catalysts (SACs) have displayed unprecedented activity and selectivity toward the electrochemical CO2 reduction reaction (CO2RR). Herein, first-row transition metal embedded pyrazine-based graphynes (TM-pyGYs) were evaluated as potential SACs for the CO2RR by using density functional theory. The computational results showed that TM-pyGYs exhibited large cohesive energies ranging from 6.67 to 6.78 eV per atom and metal binding energies ranging from 0.79 to 5.48 eV. Electronic structure analyses demonstrated the strong covalent bond, large charge transfer, and distinct orbital overlap between the TM atoms and pyGY, which proved the high stability of TM-pyGYs in the CO2RR. Most TM-pyGYs exhibited preferred CO2RR selectivity over the hydrogen evolution reaction. The most favorable reaction pathways of the CO2RR to CO, HCOOH, CH3OH, and CH4 on TM-pyGYs were systematically explored. Among all the TM-pyGYs, Mn/Fe/Ni-pyGYs were determined to be outstanding electrocatalysts in the CO2RR for producing HCOOH with low limiting potentials of −0.21 to −0.36 V, and Co-pyGY exhibited high-performance CO2RR to CH4 with a low limiting potential of −0.35 V, which surpassed the performance of the vast majority of electrocatalysts. With applied potential, Fe/Co/Ni-pyGYs exhibited great advantages in the CO2RR to CH4. 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A, Materials for energy and sustainability</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Wang, Maohuai</au><au>Kong, Lingyan</au><au>Lu, Xiaoqing</au><au>Chi-Man, Lawrence Wu</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>First-row transition metal embedded pyrazine-based graphynes as high-performance single atom catalysts for the CO2 reduction reaction</atitle><jtitle>Journal of materials chemistry. A, Materials for energy and sustainability</jtitle><date>2022</date><risdate>2022</risdate><volume>10</volume><issue>16</issue><spage>9048</spage><epage>9058</epage><pages>9048-9058</pages><issn>2050-7488</issn><eissn>2050-7496</eissn><abstract>Single atom catalysts (SACs) have displayed unprecedented activity and selectivity toward the electrochemical CO2 reduction reaction (CO2RR). Herein, first-row transition metal embedded pyrazine-based graphynes (TM-pyGYs) were evaluated as potential SACs for the CO2RR by using density functional theory. The computational results showed that TM-pyGYs exhibited large cohesive energies ranging from 6.67 to 6.78 eV per atom and metal binding energies ranging from 0.79 to 5.48 eV. Electronic structure analyses demonstrated the strong covalent bond, large charge transfer, and distinct orbital overlap between the TM atoms and pyGY, which proved the high stability of TM-pyGYs in the CO2RR. Most TM-pyGYs exhibited preferred CO2RR selectivity over the hydrogen evolution reaction. The most favorable reaction pathways of the CO2RR to CO, HCOOH, CH3OH, and CH4 on TM-pyGYs were systematically explored. Among all the TM-pyGYs, Mn/Fe/Ni-pyGYs were determined to be outstanding electrocatalysts in the CO2RR for producing HCOOH with low limiting potentials of −0.21 to −0.36 V, and Co-pyGY exhibited high-performance CO2RR to CH4 with a low limiting potential of −0.35 V, which surpassed the performance of the vast majority of electrocatalysts. With applied potential, Fe/Co/Ni-pyGYs exhibited great advantages in the CO2RR to CH4. The results of this work highlighted TM-pyGYs as ideal SACs for the electrochemical CO2RR.</abstract><cop>Cambridge</cop><pub>Royal Society of Chemistry</pub><doi>10.1039/d2ta00654e</doi><tpages>11</tpages></addata></record>
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subjects Carbon dioxide
Catalysts
Charge transfer
Chemical reduction
Computer applications
Constraining
Covalent bonds
Density functional theory
Electrocatalysts
Electrochemistry
Electronic structure
Hydrogen evolution reactions
Iron
Manganese
Methane
Nickel
Pyrazine
Selectivity
Single atom catalysts
Transition metals
title First-row transition metal embedded pyrazine-based graphynes as high-performance single atom catalysts for the CO2 reduction reaction
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