Benchmark
Assessment of Density Functional Methods
on Group II–VI MX (M = Zn, Cd; X = S, Se, Te) Quantum Dots
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Abstract
In
this work, we build a benchmark data set of geometrical parameters,
vibrational normal modes, and low-lying excitation energies for MX
quantum dots, with M = Cd, Zn, and X = S, Se, Te. The reference database
has been constructed by <i>ab initio</i> resolution-of-identity
second-order approximate coupled cluster RI-CC2/def2-TZVPP calculations
on (MX)<sub>6</sub> model molecules in the wurtzite structure. We
have tested 26 exchange-correlation density functionals, ranging from
local generalized gradient approximation (GGA) and hybrid GGA to meta-GGA,
meta-hybrid, and long-range corrected. The best overall functional
is the hybrid PBE0 that outperforms all other functionals, especially
for excited state energies, which are of particular relevance for
the systems studied here. Among the DFT methodologies with no Hartree–Fock
exchange, the M06-L is the best one. Local GGA functionals usually
provide satisfactory results for geometrical structures and vibrational
frequencies but perform rather poorly for excitation energies. Regarding
the CdSe cluster, we also present a test of several basis sets that
include relativistic effects via effective core potentials (ECPs)
or via the ZORA approximation. The best basis sets in terms of computational
efficiency and accuracy are the SBKJC and def2-SV(P). The LANL2DZ
basis set, commonly employed nowadays on these types of nanoclusters,
performs very disappointingly. Finally, we also provide some suggestions
on how to perform calculations on larger systems keeping a balance
between computational load and accuracy