4.8 Article

Remarkably stable metal-organic frameworks on an inert substrate: M-TCNQ on graphene (M = Ni, Fe, Mn)

期刊

NANOSCALE
卷 14, 期 26, 页码 9507-9515

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2nr02017c

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资金

  1. European Union [101027667]
  2. GACR [1901536S]
  3. ESF [CZ.02.2.69/0.0/0.0/20_079/0017436]
  4. MEYS CR at CEITEC Nano Research Infrastructure [LM2018110]
  5. Marie Curie Actions (MSCA) [101027667] Funding Source: Marie Curie Actions (MSCA)

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Researchers have synthesized monophase 2D metal-organic frameworks (MOFs) on epitaxial graphene and demonstrated their excellent chemical and thermal stability. This study is of great significance for the research in single atom catalysis, spintronics, and high-density storage media.
Potential applications of 2D metal-organic frameworks (MOF) require the frameworks to be monophase and well-defined at the atomic scale, to be decoupled from the supporting substrate, and to remain stable at the application conditions. Here, we present three systems meeting this elusive set of requirements: M-TCNQ (M = Ni, Fe, Mn) on epitaxial graphene/Ir(111). We study the systems experimentally by scanning tunneling microscopy, low energy electron microscopy and X-ray photoelectron spectroscopy. When synthesized on graphene, the 2D M-TCNQ MOFs are monophase with M-1(TCNQ)(1) stoichiometry, no alternative structure was observed with slight variation of the preparation protocol. We further demonstrate a remarkable chemical and thermal stability of TCNQ-based 2D MOFs: all the studied systems survive exposure to ambient conditions, with Ni-TCNQ doing so without any significant changes to its atomic-scale structure or chemical state. Thermally, the most stable system is Fe-TCNQ which remains stable above 500 degrees C, while all the tested MOFs survive heating to 250 degrees C. Overall, the modular M-TCNQ/graphene system combines the atomic-scale definition required for fundamental studies with the robustness and stability needed for applications, thus we consider it an ideal model for research in single atom catalysis, spintronics or high-density storage media.

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