Experimental and theoretical electronic structure of quinacridone
Daniel L\"uftner, Sivan Refaely-Abramson, Michael Pachler and, Roland Resel, Michael G. Ramsey, Leeor Kronik, Peter Puschnig

TL;DR
This study combines experimental ARUPS measurements with advanced theoretical methods to accurately determine the electronic structure of quinacridone, addressing limitations of standard DFT functionals and capturing polarization effects.
Contribution
It introduces an optimally-tuned range-separated hybrid functional approach for both gas phase and bulk crystal calculations, improving agreement with experimental data.
Findings
OT-RSH functional yields accurate ionization potentials.
Bulk band gap narrowing matches experimental ARUPS spectra.
G0W0 results based on hybrid functional agree with OT-SRSH calculations.
Abstract
The energy positions of frontier orbitals in organic electronic materials are often studied experimentally by (inverse) photoemission spectroscopy and theoretically within density functional theory. However, standard exchange-correlation functionals often result in too small fundamental gaps, may lead to wrong orbital energy ordering, and do not capture polarization-induced gap renormalization. Here, we examine these issues and a strategy for overcoming them by studying the gas phase and bulk electronic structure of the organic molecule quinacridone (5Q), a promising material with many interesting properties for organic devices. Experimentally, we perform angle-resolved photoemission spectroscopy (ARUPS) on thin films of the crystalline -phase of 5Q. Theoretically, we employ an optimally-tuned range-separated hybrid functional (OT-RSH) within density functional theory. For the…
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