File Download

There are no files associated with this item.

  Links for fulltext
     (May Require Subscription)
Supplementary

Article: Theoretical computation of the electrocatalytic performance of CO2 reduction and hydrogen evolution reactions on graphdiyne monolayer supported precise number of copper atoms

TitleTheoretical computation of the electrocatalytic performance of CO2 reduction and hydrogen evolution reactions on graphdiyne monolayer supported precise number of copper atoms
Authors
KeywordsGraphdiyne monolayer
Precise number atoms
CO2 electroreduction
Hydrogen evolution reaction
Theoretical calculation
Issue Date2021
PublisherElsevier. The Journal's web site is located at http://www.elsevier.com/locate/ijhydene
Citation
International Journal of Hydrogen Energy, 2021, v. 46 n. 7, p. 5378-5389 How to Cite?
AbstractCO2 reduction (CO2RR) and hydrogen evolution reactions (HER) are widely used in advanced energy conversion systems, which are urgently required low-cost and high efficient electrocatalysts to overcome the sluggish reaction kinetic and ultralow selectivity. Here, the single-, double-, and triple-atomic Cu embedded graphdiyne (Cu1-3@GDY) complexes have been systematically modeled by first-principles computations to evaluate the corresponding electric structures and catalytic performance. The results revealed that these Cu-1-(3)@GDY monolayers possess high thermal stability by forming the firm Cu-C bonds. The Cu-1-(3)@GDY complexes exhibit good electrical conductivity, which could promote the charge transfer in the electroreduction process. The electronic and magnetic interactions between key species (*H, *COOH, and *OCHO) and Cu1-3@GDY complexes are responsible for the different catalytic performance of HER and CO2RR on different Cu-1-(3)@GDY sheets. The Cu-2@GDY complex could efficiently convert CO2 to CH4 with a rather low limiting potential of -0.42 V due to the spin magnetism of catalysts. The Cu-1@CDY and CuAGDY exhibit excellent HER catalytic performance, and their limiting potentials are -0.18 and -0.02 V, respectively. Our findings not only provide a valuable avenue for the design of atomic metal catalysts toward various catalytic reactions but also highlight an important role of spin magnetism in electrocatalysts. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
Persistent Identifierhttp://hdl.handle.net/10722/296393
ISSN
2021 Impact Factor: 7.139
2020 SCImago Journal Rankings: 1.212
ISI Accession Number ID

 

DC FieldValueLanguage
dc.contributor.authorFeng, Z-
dc.contributor.authorTang, Y-
dc.contributor.authorMa, Y-
dc.contributor.authorLi, Y-
dc.contributor.authorDai, Y-
dc.contributor.authorChen, W-
dc.contributor.authorSu, G-
dc.contributor.authorSong, Z-
dc.contributor.authorDai, X-
dc.date.accessioned2021-02-22T04:54:39Z-
dc.date.available2021-02-22T04:54:39Z-
dc.date.issued2021-
dc.identifier.citationInternational Journal of Hydrogen Energy, 2021, v. 46 n. 7, p. 5378-5389-
dc.identifier.issn0360-3199-
dc.identifier.urihttp://hdl.handle.net/10722/296393-
dc.description.abstractCO2 reduction (CO2RR) and hydrogen evolution reactions (HER) are widely used in advanced energy conversion systems, which are urgently required low-cost and high efficient electrocatalysts to overcome the sluggish reaction kinetic and ultralow selectivity. Here, the single-, double-, and triple-atomic Cu embedded graphdiyne (Cu1-3@GDY) complexes have been systematically modeled by first-principles computations to evaluate the corresponding electric structures and catalytic performance. The results revealed that these Cu-1-(3)@GDY monolayers possess high thermal stability by forming the firm Cu-C bonds. The Cu-1-(3)@GDY complexes exhibit good electrical conductivity, which could promote the charge transfer in the electroreduction process. The electronic and magnetic interactions between key species (*H, *COOH, and *OCHO) and Cu1-3@GDY complexes are responsible for the different catalytic performance of HER and CO2RR on different Cu-1-(3)@GDY sheets. The Cu-2@GDY complex could efficiently convert CO2 to CH4 with a rather low limiting potential of -0.42 V due to the spin magnetism of catalysts. The Cu-1@CDY and CuAGDY exhibit excellent HER catalytic performance, and their limiting potentials are -0.18 and -0.02 V, respectively. Our findings not only provide a valuable avenue for the design of atomic metal catalysts toward various catalytic reactions but also highlight an important role of spin magnetism in electrocatalysts. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.-
dc.languageeng-
dc.publisherElsevier. The Journal's web site is located at http://www.elsevier.com/locate/ijhydene-
dc.relation.ispartofInternational Journal of Hydrogen Energy-
dc.subjectGraphdiyne monolayer-
dc.subjectPrecise number atoms-
dc.subjectCO2 electroreduction-
dc.subjectHydrogen evolution reaction-
dc.subjectTheoretical calculation-
dc.titleTheoretical computation of the electrocatalytic performance of CO2 reduction and hydrogen evolution reactions on graphdiyne monolayer supported precise number of copper atoms-
dc.typeArticle-
dc.identifier.emailDai, Y: ywdai10@hku.hk-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1016/j.ijhydene.2020.11.102-
dc.identifier.scopuseid_2-s2.0-85096983155-
dc.identifier.hkuros321406-
dc.identifier.volume46-
dc.identifier.issue7-
dc.identifier.spage5378-
dc.identifier.epage5389-
dc.identifier.isiWOS:000608630000009-
dc.publisher.placeUnited Kingdom-

Export via OAI-PMH Interface in XML Formats


OR


Export to Other Non-XML Formats