Conduction electron spin resonance (CESR) measurements under hydrostatic pressure on two chain organic conductor tetrathiofulvalene-tetracyanoquinodimethane (TTF-TCNQ) and single chain organic conductor bis tetramethyl-tetrathiofulvalene borontetrafluorid ((TMTTF)2BF4) are presented. In both cases the CESR linewidth increases strongly with pressure in contradiction with the Elliott-mechanism for spin relaxation. The g-factor is pressure independent for both compounds while the spin susceptibility decreases by - 8 ± 1 %/kbar for TTF-TCNQ and - 3 ± 1 %/kbar for (TMTTF) 2BF4 at room temperature
2014 Nous présentons des études de résonance paramagnétique sur les électrons de conduction du (BEDT-TfF)4Hg3-03B4Cl8, complétées par des mesures de susceptibilité paramagnétique statique, de force thermoélectrique et d'absorption IR. Nous avons montré que les interactions d'échange fortes conduisent à un spectre RPE simple, élargi par le couplage spin-orbite. La bidimensionalité du système de spin a été également confirmée. Des anomalies ont été observées près de 80 K pour certaines propriétés physiques ; nous supposons qu'elles sont provoquées par une déformation du réseau des ions Hg. Nous avons démontré que l'anisotropie spectrale (RPE, IR) n'est pas toujours comparable à l'anisotropie de transport électrique du métal organique. Abstract. 2014 Conduction electron spin résonance study is presented together with static susceptibility, thermopower and IR absorption measurements for (BEDT-TTF)4Hg3-03B4Cl8. It is shown that the strong exchange interactions lead to a single ESR line broadened by the spin-orbit coupling ; the role of twodimensionality of the salt is emphasized. The two-dimensionality of the spin ordering is also stated. The anomalies of the ESR parameters near 80 K may be associated with a phase transition caused probably by the deformation of the incommensurate Hg sublattice. Our study confirms that the anisotropy of the spectral (IR, ESR) properties does not necessarily agree with that of the transport properties of the organic metal.
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