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      Fully Atomistic Understanding of the Electronic and Optical Properties of a Prototypical Doped Charge-Transfer Interface

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          Abstract

          The current study generates profound atomistic insights into doping-induced changes of the optical and electronic properties of the prototypical PTCDA/Ag(111) interface. For doping K atoms are used, as K x PTCDA/Ag(111) has the distinct advantage of forming well-defined stoichiometric phases. To arrive at a conclusive, unambiguous, and fully atomistic understanding of the interface properties, we combine state-of-the-art density-functional theory calculations with optical differential reflectance data, photoelectron spectra, and X-ray standing wave measurements. In combination with the full structural characterization of the K x PTCDA/Ag(111) interface by low-energy electron diffraction and scanning tunneling microscopy experiments ( ACS Nano 2016, 10, 2365–2374), the present comprehensive study provides access to a fully characterized reference system for a well-defined metal–organic interface in the presence of dopant atoms, which can serve as an ideal benchmark for future research and applications. The combination of the employed complementary techniques allows us to understand the peculiarities of the optical spectra of K 2PTCDA/Ag(111) and their counterintuitive similarity to those of neutral PTCDA layers. They also clearly describe the transition from a metallic character of the (pristine) adsorbed PTCDA layer on Ag(111) to a semiconducting state upon doping, which is the opposite of the effect (degenerate) doping usually has on semiconducting materials. All experimental and theoretical efforts also unanimously reveal a reduced electronic coupling between the adsorbate and the substrate, which goes hand in hand with an increasing adsorption distance of the PTCDA molecules caused by a bending of their carboxylic oxygens away from the substrate and toward the potassium atoms.

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              Is Open Access

              Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials

              Quantum ESPRESSO is an integrated suite of computer codes for electronic-structure calculations and materials modeling, based on density-functional theory, plane waves, and pseudopotentials (norm-conserving, ultrasoft, and projector-augmented wave). Quantum ESPRESSO stands for "opEn Source Package for Research in Electronic Structure, Simulation, and Optimization". It is freely available to researchers around the world under the terms of the GNU General Public License. Quantum ESPRESSO builds upon newly-restructured electronic-structure codes that have been developed and tested by some of the original authors of novel electronic-structure algorithms and applied in the last twenty years by some of the leading materials modeling groups worldwide. Innovation and efficiency are still its main focus, with special attention paid to massively-parallel architectures, and a great effort being devoted to user friendliness. Quantum ESPRESSO is evolving towards a distribution of independent and inter-operable codes in the spirit of an open-source project, where researchers active in the field of electronic-structure calculations are encouraged to participate in the project by contributing their own codes or by implementing their own ideas into existing codes.
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                Author and article information

                Journal
                ACS Nano
                ACS Nano
                nn
                ancac3
                ACS Nano
                American Chemical Society
                1936-0851
                1936-086X
                13 September 2017
                24 October 2017
                : 11
                : 10
                : 10495-10508
                Affiliations
                []Institute of Solid State Physics, NAWI Graz, Graz University of Technology , Petersgasse 16, 8010 Graz, Austria
                []Department of Materials Science, University of Milano-Bicocca , Via R. Cozzi 55, 20125 Milano, Italy
                [§ ]Institute of Solid State Physics, Friedrich Schiller University Jena , Helmholtzweg 5, 07743 Jena, Germany
                []Peter Grünberg Institut (PGI-3), Forschungszentrum Jülich , 52425 Jülich, Germany
                []Jülich Aachen Research Alliance (JARA)−Fundamentals of Future Information Technology , 52425 Jülich, Germany
                [# ]Department of Physics and Research Center OPTIMAS, University of Kaiserslautern , 67663 Kaiserslautern, Germany
                []Graduate School of Excellence Materials Science in Mainz , Erwin-Schrödinger-Straβe 46, 67663 Kaiserslautern, Germany
                []Dipartimento di Fisica, Università degli Studi di Milano , Via Celoria 16, 20133 Milano, Italy
                Author notes
                Article
                10.1021/acsnano.7b05828
                5656979
                28902494
                82c8fee2-5a12-4076-bcdf-ae6c44a407cc
                Copyright © 2017 American Chemical Society

                This is an open access article published under a Creative Commons Attribution (CC-BY) License, which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.

                History
                : 16 August 2017
                : 13 September 2017
                Categories
                Article
                Custom metadata
                nn7b05828
                nn-2017-058287

                Nanotechnology
                metal−organic interface,doping,density-functional theory calculations,x-ray standing wave,differential reflectance spectroscopy,electronic structure,optical properties

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