4.8 Article

Control of Molecular Organization and Energy Level Alignment by an Electronically Nanopatterned Boron Nitride Template

Journal

ACS NANO
Volume 8, Issue 1, Pages 430-442

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nn406024m

Keywords

boron nitride; monolayer; moire; scanning tunneling microscopy (STM); scanning tunneling spectroscopy (STS); density functional theory (DFT); surface potential; local work function; template; porphyrin; TCNQ; confinement; self-assembly; molecular orbital

Funding

  1. ERC [247299]
  2. Munich Center for Advanced Photonics (MAP)
  3. Technische Universitat Munchen - Institute for Advanced Study
  4. German Excellence Initiative
  5. Swiss National Science Foundation [140441]
  6. Swiss National Supercomputing Center [s89, s425]

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Suitable templates to steer the formation of nanostructure arrays on surfaces are indispensable in nanoscience. Recently, atomically thin sp(2)-bonded layers such as graphene or boron nitride (BN) grown on metal supports have attracted considerable interest due to their potential geometric corrugation guiding the positioning of atoms, metallic clusters or molecules. Here, we demonstrate three specific functions of a geometrically smooth, but electronically corrugated, sp(2)/metal interface, namely, BN/Cu(111), qualifying it as a unique nanoscale template. As functional adsorbates we employed free-base porphine (2H-P), a prototype tetrapyrrole compound, and tetracyanoquinodimethane (TCNQ), a well-known electron acceptor. (i) The electronic moirons of the BN/Cu(111) interface trap both 2H-P and TCNQ, steering self-organized growth of arrays with extended molecular assemblies. (ii) We report an effective decoupling of the trapped molecules from the underlying metal support by the BN, which allows for a direct visualization of frontier orbitals by scanning tunneling microscopy (STM). (iii) The lateral molecular positioning in the superstructured surface determines the energetic level alignment; i.e., the energy of the frontier orbitals, and the electronic gap are tunable.

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