Detail publikačního výsledku

Identical Fe-N4 Sites with Different Reactivity: Elucidating the Effect of Support Curvature

JAKUB, Z.; PLANER, J.; HRŮZA, D.; TRLLOVÁ SHAHSAVAR, A.; PAVELEC, J.; ČECHAL, J.

Originální název

Identical Fe-N4 Sites with Different Reactivity: Elucidating the Effect of Support Curvature

Anglický název

Identical Fe-N4 Sites with Different Reactivity: Elucidating the Effect of Support Curvature

Druh

Článek WoS

Originální abstrakt

Detailed atomic-scale understanding is a crucial prerequisite for rational design of next-generation single-atom catalysts (SACs). However, the sub-& aring;ngstrom precision needed for systematic studies is challenging to achieve on common SACs. Here, we present a two-dimensional (2D) metal-organic system featuring Fe-N4 single-atom sites, where the metal-organic structure is modulated by 0.4 & Aring; corrugation of an inert graphene/Ir(111) support. Using scanning tunneling microscopy and density functional theory, we show that the support corrugation significantly affects the reactivity of the system, as the sites above the support "valleys" bind TCNQ (tetracyanoquinodimethane) significantly stronger than the sites above the "hills". The experimental temperature stability of TCNQ varies by more than 60 degrees C, while computations indicate more than 0.3 eV variation of TCNQ adsorption energy across the Fe-N4 sites placed atop different regions of the corrugated graphene unit cell. The origin of this effect is steric hindrance, which plays a role whenever large molecules interact with neighboring single-atom catalyst sites or when multiple reactants coadsorb on such sites. Our work demonstrates that such effects can be quantitatively studied using model SAC systems supported on chemically inert and physically corrugated supports.

Anglický abstrakt

Detailed atomic-scale understanding is a crucial prerequisite for rational design of next-generation single-atom catalysts (SACs). However, the sub-& aring;ngstrom precision needed for systematic studies is challenging to achieve on common SACs. Here, we present a two-dimensional (2D) metal-organic system featuring Fe-N4 single-atom sites, where the metal-organic structure is modulated by 0.4 & Aring; corrugation of an inert graphene/Ir(111) support. Using scanning tunneling microscopy and density functional theory, we show that the support corrugation significantly affects the reactivity of the system, as the sites above the support "valleys" bind TCNQ (tetracyanoquinodimethane) significantly stronger than the sites above the "hills". The experimental temperature stability of TCNQ varies by more than 60 degrees C, while computations indicate more than 0.3 eV variation of TCNQ adsorption energy across the Fe-N4 sites placed atop different regions of the corrugated graphene unit cell. The origin of this effect is steric hindrance, which plays a role whenever large molecules interact with neighboring single-atom catalyst sites or when multiple reactants coadsorb on such sites. Our work demonstrates that such effects can be quantitatively studied using model SAC systems supported on chemically inert and physically corrugated supports.

Klíčová slova

single atom catalysis; 2D metal-organic frameworks; scanning tunneling microscopy; density functional theory; adsorption; Fe-N4 site

Klíčová slova v angličtině

single atom catalysis; 2D metal-organic frameworks; scanning tunneling microscopy; density functional theory; adsorption; Fe-N4 site

Autoři

JAKUB, Z.; PLANER, J.; HRŮZA, D.; TRLLOVÁ SHAHSAVAR, A.; PAVELEC, J.; ČECHAL, J.

Vydáno

29.01.2025

Nakladatel

AMER CHEMICAL SOC

Místo

WASHINGTON

ISSN

1944-8252

Periodikum

ACS Applied Materials & Interfaces

Svazek

17

Číslo

6

Stát

Spojené státy americké

Strany od

10136

Strany do

10144

Strany počet

9

URL

Plný text v Digitální knihovně

BibTex

@article{BUT198066,
  author="Zdeněk {Jakub} and Jakub {Planer} and Dominik {Hrůza} and Azin {Trllová Shahsavar} and Jiří {Pavelec} and Jan {Čechal}",
  title="Identical Fe-N4 Sites with Different Reactivity: Elucidating the Effect of Support Curvature",
  journal="ACS Applied Materials & Interfaces",
  year="2025",
  volume="17",
  number="6",
  pages="10136--10144",
  doi="10.1021/acsami.4c19913",
  issn="1944-8244",
  url="https://pubs.acs.org/doi/10.1021/acsami.4c19913"
}

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