Journal Article10.1063/5.0040021
r2SCAN-3c: A "Swiss army knife" composite electronic-structure method.
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TL;DR: In this paper, the r2SCAN meta-generalized-gradient approximation (mGGA) was used to construct an efficient composite electronic-structure method termed r2-SCAN-3c.
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Abstract: The recently proposed r2SCAN meta-generalized-gradient approximation (mGGA) of Furness and co-workers is used to construct an efficient composite electronic-structure method termed r2SCAN-3c. To this end, the unaltered r2SCAN functional is combined with a tailor-made triple-ζ Gaussian atomic orbital basis set as well as with refitted D4 and geometrical counter-poise corrections for London-dispersion and basis set superposition error. The performance of the new method is evaluated for the GMTKN55 database covering large parts of chemical space with about 1500 data points, as well as additional benchmarks for non-covalent interactions, organometallic reactions, and lattice energies of organic molecules and ices, as well as for the adsorption on polar salt and non-polar coinage-metal surfaces. These comprehensive tests reveal a spectacular performance and robustness of r2SCAN-3c: It by far surpasses its predecessor B97-3c at only twice the cost and provides one of the best results of all semi-local density-functional theory (DFT)/QZ methods ever tested for the GMTKN55 database at one-tenth of the cost. Specifically, for reaction and conformational energies as well as non-covalent interactions, it outperforms prominent hybrid-DFT/QZ approaches at two to three orders of magnitude lower cost. Perhaps, the most relevant remaining issue of r2SCAN-3c is self-interaction error (SIE), owing to its mGGA nature. However, SIE is slightly reduced compared to other (m)GGAs, as is demonstrated in two examples. After all, this remarkably efficient and robust method is chosen as our new group default, replacing previous composite DFT and partially even expensive high-level methods in most standard applications for systems with up to several hundreds of atoms.
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Citations
Iron‐Catalyzed Intermolecular C−H Amination Assisted by an Isolated Iron‐Imido Radical Intermediate
Ethan Zars,Lisa Pick,Abinash Swain,Mrinal Bhunia,Patrick J. Carroll,Dominik Munz,Karsten Meyer,Daniel J. Mindiola +7 more
TL;DR: Sure, here is the TLDR: The isolated iron-imido radical intermediate is a competent catalyst for intermolecular C−H amination of various substrates.
Computational study on the reduction and solvolysis of triplet chlorobenzenes
Cristina Niţu,Stefano Crespi +1 more
TL;DR: In this article , the excited state reactivity of triplet chlorobenzenes with density functional theory and a cluster-continuum approach was explored. But the results were limited to the case of photo-SN2Ar solvolysis.
Accurate single crystal and gas-phase molecular structures of acenaphthene: a starting point in the search for the longest C-C bond.
Yury V. Vishnevskiy,Arseniy A. Otlyotov,Jan-Hendrik Lamm,Hans-Georg Stammler,Georgiy V. Girichev,Norbert W. Mitzel +5 more
TL;DR: In this article , the molecular structure of acenaphthene has been determined experimentally in the gas phase using gas electron diffraction intensities and literature available rotational constants.
A nucleophilic beryllyl complex via metathesis at [Be-Be]2.
TL;DR: Researchers develop a nucleophilic beryllyl complex via metathesis, yielding a complex with a polarized Be-Be bond, and demonstrate its ability to transfer the 'beryllyl' anion to organic substrates, revealing similarities with boron's homo-elemental bonding.
Computational study on the optical and electronic properties of chrysene-derived deep-blue OLED molecules
Kiho Lee,Hayoon Lee,Jong-Wook Park,Kiho Lee,Hayoon Lee,Jong-Wook Park +5 more
- 30 Sep 2025
Abstract: Abstract The optical and physical properties of seven chrysene-based compounds exhibiting deep-blue emission were investigated through density functional theory calculations and subsequently compared with experimental results. The computational methods included B3LYP-D3/def2-TZVPD, r 2 SCAN-3c, and B3LYP-D3/def2-TZVPP both with and without the application of the conductor-like polarizable continuum model. The highest occupied molecular orbital energy levels calculated using B3LYP-D3/def2-TZVPP showed smaller deviations relative to those obtained with r 2 SCAN-3c, and the computed absorption and emission wavelengths demonstrated the highest consistency with experimental values. Excitation characteristics of each molecule, including oscillator strengths and transition properties, were effectively analyzed. These findings offer valuable insight into the rational design of molecules with high emission efficiency and tunable photophysical properties.
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