Counterion influence on dynamic spin properties in a V() complex

Using transition metal ions for spin-based applications, such as electron paramagnetic resonance imaging (EPRI) or quantum computation, requires a clear understanding of how local chemistry influences spin properties. Herein we report a series of four ionic complexes to provide the first systematic...

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Veröffentlicht in:Chemical science (Cambridge) 2019-01, Vol.1 (2), p.548-555
Hauptverfasser: Lin, Chun-Yi, Ngendahimana, Thacien, Eaton, Gareth R, Eaton, Sandra S, Zadrozny, Joseph M
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Sprache:eng
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Zusammenfassung:Using transition metal ions for spin-based applications, such as electron paramagnetic resonance imaging (EPRI) or quantum computation, requires a clear understanding of how local chemistry influences spin properties. Herein we report a series of four ionic complexes to provide the first systematic study of one aspect of local chemistry on the V( iv ) spin - the counterion. To do so, the four complexes (Et 3 NH) 2 [V(C 6 H 4 O 2 ) 3 ] ( 1 ), ( n -Bu 3 NH) 2 [V(C 6 H 4 O 2 ) 3 ] ( 2 ), ( n -Hex 3 NH) 2 [V(C 6 H 4 O 2 ) 3 ] ( 3 ), and ( n -Oct 3 NH) 2 [V(C 6 H 4 O 2 ) 3 ] ( 4 ) were probed by EPR spectroscopy in solid state and solution. Room temperature, solution X-band ( ca. 9.8 GHz) continuous-wave electron paramagnetic resonance (CW-EPR) spectroscopy revealed an increasing linewidth with larger cations, likely a counterion-controlled tumbling in solution via ion pairing. In the solid state, variable-temperature (5-180 K) X-band ( ca. 9.4 GHz) pulsed EPR studies of 1-4 in o -terphenyl glass demonstrated no effect on spin-lattice relaxation times ( T 1 ), indicating little role for the counterion on this parameter. However, the phase memory time ( T m ) of 1 below 100 K is markedly smaller than those of 2-4 . This result is counterintuitive, as 2-4 are relatively richer in 1 H nuclear spin, hence, expected to have shorter T m . Thus, these data suggest an important role for counterion methyl groups on T m , and moreover provide the first instance of a lengthening T m with increasing nuclear spin quantity on a molecule. Studies of R 3 NH + salts of [V(C 6 H 4 O 2 ) 3 ] 2− experimentally define the distance dependence of the impact of the CH 3 -group on spin properties.
ISSN:2041-6520
2041-6539
DOI:10.1039/c8sc04122a