Reduction of Systematic
Uncertainty in DFT Redox Potentials of Transition-Metal Complexes
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Abstract
Reliable calculations of redox potentials could provide
valuable insight into catalytic mechanisms of electrochemically active
transition-metal complexes as well as guidelines for the design of
new electrocatalysts. However, the correlation between theoretical
and experimental data is often uncertain, since redox properties depend
strongly on experimental conditions of electrochemical measurements,
including the nature of the solvent, electrolyte, and working electrode.
Here, we show that the use of internal references allows for quantitative
theoretical predictions of redox potentials with standard deviations σ
comparable to typical experimental errors of cyclic voltammetry measurements.
Agreement for first-, second-, and third-row transition-metal complexes
is demonstrated even at a rather modest level of density functional
theory (σ = 64 mV for the UB3LYP/6-311G* level). This is shown
for a series of benchmark redox couples, including ([MCp<sub>2</sub>]<sup>0/+</sup> (Cp = η<sup>5</sup>-cyclopentadienyl), [MCp*<sub>2</sub>]<sup>0/+</sup> (Cp* = η<sup>5</sup>-1,2,3,4,5-pentamethylcyclopentadienyl),
[M(bpy)<sub>3</sub>]<sup>2+/3+</sup> (bpy =2,2′-bipyridine),
and [Ir(acac)<sub>3</sub>]<sup>0/+</sup> (acac = acetylacetonate),
with M = Fe, Co, Ni, Ru, Os, or Ir) in various nonaqueous solvents
[acetonitrile (MeCN), dimethyl sulfoxide (DMSO), and dichloromethane
(DCM)]