6 atoms
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3839034
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3839034
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9042119
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9042119
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18074696
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18074696
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35236326
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-113.25291851 26.49120716
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-113.25291851 26.49120716
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-113.29175470 -112.62725096
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-113.29175470 -112.62725096
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-113.30453226 -112.99194354
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-113.30453226 -112.99194354
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-113.59079195 -113.36153317
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-113.59079195 -113.36153317
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-113.59348121 -113.36436985
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-113.59348121 -113.36436985
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-113.59767632 -113.37074297
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-113.59767632 -113.37074297
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-113.59854506 -113.38910709
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-113.77704599 0.00000000 26.49120716 0.00000000
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-113.77704599 0.00000000 26.49120716 0.00000000
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-113.72029818 0.00000000 -113.13526511 0.00000000
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-113.72029818 0.00000000 -113.13526511 0.00000000
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-113.69772366 0.00000000 -113.41787915 0.00000000
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-113.69772366 0.00000000 -113.41787915 0.00000000
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-113.60148141 0.00001858 -113.37363335 0.00002258
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-113.60148141 0.00001858 -113.37363335 0.00002258
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-113.60136015 0.00001571 -113.37367765 0.00001855
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-113.60136015 0.00001571 -113.37367765 0.00001855
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-113.60123219 0.00000710 -113.37949422 0.00001742
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-113.60123219 0.00000710 -113.37949422 0.00001742
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-113.60124498 0.00000540 -113.40431552 0.00003037
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@ -615,7 +615,7 @@ $^3A_2' (\pi \rightarrow \pi^\star)$ & 6.85 &6.69 &6.63 &6.62\\
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\begin{table}[htp]
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\begin{table}[htp]
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\caption{\small Vertical transition energies of cyanoacetylene, cyanogen, and diacetylene using various atomic basis sets and
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\caption{\small Vertical transition energies of cyanoacetylene, cyanogen, and diacetylene using various atomic basis sets and
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multi-reference methods. All values are in eV and have been obtained with within the FC approximation. The CASPT2 calculations
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multi-reference methods. All values are in eV and have been obtained within the FC approximation. The CASPT2 calculations
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are performed with a level shift of 0.3 and a IPEA of 0.25. Pop, AVDZ, AVTZ, and AVQZ respectively stand for {\Pop}, {\AVDZ},
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are performed with a level shift of 0.3 and a IPEA of 0.25. Pop, AVDZ, AVTZ, and AVQZ respectively stand for {\Pop}, {\AVDZ},
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{\AVTZ}, and {\AVQZ}. }
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{\AVTZ}, and {\AVQZ}. }
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\label{Table-S1b}
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\label{Table-S1b}
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@ -661,21 +661,21 @@ $^3\Delta_u$ & & 4.89 & 4.81 & & & 4.86 & 4.78 & & & 4.90 & 4.82 & \\
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\begin{footnotesize}
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\begin{footnotesize}
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\begin{longtable}{p{3.5cm}p{3.5cm}p{2cm}p{1.2cm}p{2.8cm}p{2cm}p{1.2cm}p{2.8cm}}
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\begin{longtable}{p{3.5cm}p{3.5cm}p{2cm}p{1.2cm}p{2.8cm}p{2cm}p{1.2cm}p{2.8cm}}
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\caption{
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\caption{
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Vertical excitations (in eV) for various states of the studied molecules computed with an extrapolated sCI method (exFCI).
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Vertical excitations (in eV) for various states of the studied molecules computed with an extrapolated SCI method (exFCI).
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The number of determinants $N_\text{det}$ of the largest sCI wave functions and their corresponding excitation energies are also reported.
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The number of determinants $N_\text{det}$ of the largest SCI wave functions and their corresponding excitation energies are also reported.
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The extrapolation error is estimated as the difference in excitation energy between the largest sCI wave function and its corresponding extrapolated value.
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The extrapolation error is estimated as the difference in excitation energy between the largest SCI wave function and its corresponding extrapolated value.
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\label{tab:sCI}}
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\label{tab:sCI}}
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\\
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\\
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\hline
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\hline
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Molecule & Transition & \mc{3}{c}{\Pop} & \mc{3}{c}{\AVDZ} \\
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Molecule & Transition & \mc{3}{c}{\Pop} & \mc{3}{c}{\AVDZ} \\
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\cline{3-5} \cline{6-8}
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\cline{3-5} \cline{6-8}
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& & $\Ndet$ & sCI & exFCI & $\Ndet$ & sCI & exFCI \\
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& & $\Ndet$ & SCI & exFCI & $\Ndet$ & SCI & exFCI \\
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\hline
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\hline
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\endfirsthead
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\endfirsthead
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\hline
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\hline
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Molecule & Transition & \mc{3}{c}{\Pop} & \mc{3}{c}{\AVDZ} \\
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Molecule & Transition & \mc{3}{c}{\Pop} & \mc{3}{c}{\AVDZ} \\
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\cline{3-5} \cline{6-8}
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\cline{3-5} \cline{6-8}
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& & $\Ndet$ & sCI & exFCI & $\Ndet$ & sCI & exFCI \\
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& & $\Ndet$ & SCI & exFCI & $\Ndet$ & SCI & exFCI \\
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\hline
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\hline
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\endhead
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\endhead
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\hline \multicolumn{8}{r}{{Continued on next page}} \\
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\hline \multicolumn{8}{r}{{Continued on next page}} \\
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@ -842,7 +842,7 @@ CCSDT-3 &0.05 & &0.06 &0.03 &0.08 &0.04 \\
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\section{Geometries}
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\section{Geometries}
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Below are given the cartesian coordinates of the compounds investigated in this study.
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Below, we provide the cartesian coordinates of the compounds investigated in this study.
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These are provided in atomic units (bohr) and they have been obtained at the \CC{3}(full)/{\AVTZ} level of theory.
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These are provided in atomic units (bohr) and they have been obtained at the \CC{3}(full)/{\AVTZ} level of theory.
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\subsection{Acetone}
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\subsection{Acetone}
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