2011
DOI: 10.1103/physrevb.83.245415
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Electrical control over the Fe(II) spin crossover in a single molecule: Theory and experiment

Abstract: We report on theoretical and experimental work involving a particular molecular switch, an [Fecomplex, that utilizes a spin transition ("crossover"). The hallmark of this transition is a change of the spin of the metal ion, S Fe = 0 to S Fe = 2, at fixed oxidation state of the Fe ion. Combining density functional theory and first principles calculations, we demonstrate that within a single molecule this transition can be triggered by charging the ligands. In this process the total spin of the molecule, combini… Show more

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Cited by 187 publications
(154 citation statements)
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References 69 publications
(71 reference statements)
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“…In some interesting works, 14,28,29,48,49 wave-function based methods were considered (see discussion below). However, unfortunately, the authors themselves admitted that their results were plagued by a number of systematic errors.…”
Section: E Finite-temperature Effectsmentioning
confidence: 99%
“…In some interesting works, 14,28,29,48,49 wave-function based methods were considered (see discussion below). However, unfortunately, the authors themselves admitted that their results were plagued by a number of systematic errors.…”
Section: E Finite-temperature Effectsmentioning
confidence: 99%
“…This could provide an alternate design strategy for molecular devices other than through purely organic molecules due to the wealth of different structures possible via inorganic chemistry. Recent progress in implementing a gate in single-molecule based devices [42][43][44][45] allows us to predict for the studied molecule, with its controlled binding to the electrodes and with its two levels aligned at the Fermi level, that it could be used in a three-terminal device in which only a small gate voltage would be enough to pass through two high/low sequential switching states.…”
mentioning
confidence: 99%
“…For instance, molecular switches 2 may serve as highdensity memory devices. As a promising molecular class, spincrossover (SCO) complexes 3 contain a transition metal ion that can be switched between a low-spin (LS) and a high-spin (HS) state by external stimuli as temperature, light, pressure, magnetic or electric fields or charge flow [4][5][6][7][8][9][10] . The two configurations may lead to different conductances but, more importantly, the switchable spin of the metal ion has a high potential for molecular spintronics 11 .…”
mentioning
confidence: 99%