lots of figures added
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Manuscript/DNA.pdf
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% \includegraphics[width=\linewidth]{TOC}
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% \includegraphics[width=\linewidth]{TOC}
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%\end{wrapfigure}
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Similarly to other electron correlation methods, many-body perturbation theory methods, such as the so-called GW approximation, suffer from the usual slow convergence of energetic properties with respect to the size of the one-electron basis functions due to the lack of explicit electron-electron terms modeling the infamous electron-electron cusp.
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Similarly to other electron correlation methods, many-body perturbation theory methods, such as the so-called GW approximation, suffer from the usual slow convergence of energetic properties with respect to the size of the one-electron basis functions due to the lack of explicit electron-electron terms modeling the infamous electron-electron cusp.
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Here, we propose a density-based basis set correction which significantly speed up the convergence of energetics towards the complete basis set limit.
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Here, we propose a density-based basis set correction based on short-range correlation density functionals which significantly speed up the convergence of energetics towards the complete basis set limit.
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\end{abstract}
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\end{abstract}
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\maketitle
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\maketitle
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@ -492,7 +492,7 @@ IPs (in eV) of the 20 smallest molecule of the GW100 set computed at the {\GOWO}
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%%% TABLE III %%%
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%%% TABLE III %%%
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\begin{table*}
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\begin{table*}
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\caption{
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\caption{
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IPs (in eV) of the five canonical nucleobases computed at various levels of theory.
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IPs (in eV) of the five canonical nucleobases computed at the {\GOWO}@PBE level of theory for various basis sets.
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The deviation with respect to the {\GOWO}@PBE/def2-TQZVP extrapolated values are reported in square brackets.
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The deviation with respect to the {\GOWO}@PBE/def2-TQZVP extrapolated values are reported in square brackets.
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\label{tab:DNA}
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\label{tab:DNA}
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}
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}
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@ -522,6 +522,31 @@ The deviation with respect to the {\GOWO}@PBE/def2-TQZVP extrapolated values are
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\fnt[5]{Experimental values taken from Ref.~\onlinecite{Maggio_2017}.}
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\fnt[5]{Experimental values taken from Ref.~\onlinecite{Maggio_2017}.}
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\end{table*}
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\end{table*}
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\begin{figure*}
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\includegraphics[width=\linewidth]{IP_G0W0HF}
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\caption{
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IPs (in eV) computed at the {\GOWO}@HF (black circles), {\GOWO}@HF+srLDA (red squares) and {\GOWO}@HF+srPBE (blue diamonds) levels of theory with increasingly large Dunning's basis sets (cc-pVDZ, cc-pVTZ, cc-pVQZ and cc-pV5Z) for the 20 smallest molecules of the GW100 set.
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The thick black line represents the CBS value obtained by extrapolation with the three largest basis sets.
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\label{fig:IP_G0W0HF}
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}
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\end{figure*}
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\begin{figure*}
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\includegraphics[width=\linewidth]{IP_G0W0PBE0}
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\caption{
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IPs (in eV) computed at the {\GOWO}@PBE0 (black circles), {\GOWO}@PBE0+srLDA (red squares) and {\GOWO}@PBE0+srPBE (blue diamonds) levels of theory with increasingly large Dunning's basis sets (cc-pVDZ, cc-pVTZ, cc-pVQZ and cc-pV5Z) for the 20 smallest molecules of the GW100 set.
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The thick black line represents the CBS value obtained by extrapolation with the three largest basis sets.
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\label{fig:IP_G0W0HF}
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}
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\end{figure*}
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\begin{figure*}
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\includegraphics[width=\linewidth]{DNA}
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\caption{
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Error (in eV) with respect to the {\GOWO}@PBE/def2-TQZVP extrapolated values in the IPs of the five canonical nucleobases (adenine, cytosine, thymine, guanine and uracil) computed at the {\GOWO}@PBE level of theory for various basis sets.
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\label{fig:DNA}
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}
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\end{figure*}
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%%%%%%%%%%%%%%%%%%%%%%%%
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%%%%%%%%%%%%%%%%%%%%%%%%
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\section{Conclusion}
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\section{Conclusion}
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Manuscript/IP_G0W0HF.pdf
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Manuscript/IP_G0W0PBE0.pdf
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190083
Notebooks/GW100.nb
190083
Notebooks/GW100.nb
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