TY - JOUR
T1 - Dielectric Screening Meets Optimally Tuned Density Functionals
AU - Kronik, Leeor
AU - Kuemmel, Stephan
N1 - The authors thank Thiago de Queiroz (UFABC, Brazil), David Egger (University of Regensburg, Germany), Sivan Refaely‐Abramson (UC Berkeley, CA, USA), Benedetta Mennucci (University of Pisa, Italy), Sergey Bokarev (University of Rostock, Germany), Barry Dunietz (Kent State University, OH, USA), Xavier Blase (CNRS, Grenoble, France), and Petr Slavíc̆ek (University of Chemistry and Technology, Prague, Czech Republic) for helpful discussions and comments. L.K. and S.K. are grateful for financial support from the German‐Israeli Foundation. S.K. further acknowledges support from DFG GRK 1640, from DFG SFB 840, and from the Bavarian State Ministry of Science, Research, and the Arts for the Collaborative Research Network “Solar Technologies go Hybrid”. L.K. further acknowledges support by the US‐Israel Binational Science Foundation and by the historical generosity of the Perlman family.
PY - 2018/10/11
Y1 - 2018/10/11
N2 - A short overview of recent attempts at merging two independently developed methods is presented. These are the optimal tuning of a range-separated hybrid (OT-RSH) functional, developed to provide an accurate first-principles description of the electronic structure and optical properties of gas-phase molecules, and the polarizable continuum model (PCM), developed to provide an approximate but computationally tractable description of a solvent in terms of an effective dielectric medium. After a brief overview of the OT-RSH approach, its combination with the PCM as a potentially accurate yet low-cost approach to the study of molecular assemblies and solids, particularly in the context of photocatalysis and photovoltaics, is discussed. First, solvated molecules are considered, with an emphasis on the challenge of balancing eigenvalue and total energy trends. Then, it is shown that the same merging of methods can also be used to study the electronic and optical properties of molecular solids, with a similar discussion of the pros and cons. Tuning of the effective scalar dielectric constant as one recent approach that mitigates some of the difficulties in merging the two approaches is considered.
AB - A short overview of recent attempts at merging two independently developed methods is presented. These are the optimal tuning of a range-separated hybrid (OT-RSH) functional, developed to provide an accurate first-principles description of the electronic structure and optical properties of gas-phase molecules, and the polarizable continuum model (PCM), developed to provide an approximate but computationally tractable description of a solvent in terms of an effective dielectric medium. After a brief overview of the OT-RSH approach, its combination with the PCM as a potentially accurate yet low-cost approach to the study of molecular assemblies and solids, particularly in the context of photocatalysis and photovoltaics, is discussed. First, solvated molecules are considered, with an emphasis on the challenge of balancing eigenvalue and total energy trends. Then, it is shown that the same merging of methods can also be used to study the electronic and optical properties of molecular solids, with a similar discussion of the pros and cons. Tuning of the effective scalar dielectric constant as one recent approach that mitigates some of the difficulties in merging the two approaches is considered.
UR - https://www.scopus.com/pages/publications/85045745302
U2 - 10.1002/adma.201706560
DO - 10.1002/adma.201706560
M3 - Review article
SN - 0935-9648
VL - 30
JO - Advanced Materials
JF - Advanced Materials
IS - 41
M1 - 1706560
ER -