Electric field control of spin-dependent dissipative electron transfer dynamics in magnetic mixed-valence molecules
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PALII, Andrew, CLEMENTE-JUAN, Juan, CORONADO, Eugenio, TSUKERBLAT, Boris S.. Electric field control of spin-dependent dissipative electron transfer dynamics in magnetic mixed-valence molecules. In: Materials Science and Condensed Matter Physics, Ed. 7, 16-19 septembrie 2014, Chișinău. Chișinău, Republica Moldova: Institutul de Fizică Aplicată, 2014, Editia 7, p. 73.
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Materials Science and Condensed Matter Physics
Editia 7, 2014
Conferința "Materials Science and Condensed Matter Physics"
7, Chișinău, Moldova, 16-19 septembrie 2014

Electric field control of spin-dependent dissipative electron transfer dynamics in magnetic mixed-valence molecules


Pag. 73-73

Palii Andrew1, Clemente-Juan Juan2, Coronado Eugenio2, Tsukerblat Boris S.3
 
1 Institute of Applied Physics, Academy of Sciences of Moldova,
2 Universitat de València,
3 Ben-Gurion University of the Negev
 
Proiecte:
 
Disponibil în IBN: 26 februarie 2019


Rezumat

We demonstrate that the borderline class II/III magnetic mixed valence (MV) dimers which can be referred to as single molecule multiferroics provide a unique possibility to achieve electric field control of the electron transfer (ET) dynamics. As an example we consider a MV dimer d2-d1 in which extra electron is delocalized over two spin-cores ( 1 2 0 s ) and the ET is spin-dependent due to the double exchange mechanism. It is assumed that the ―extra‖ electron is coupled to the only intramolecular vibration and a weak coupling to the dissipative subsystem (thermal bath) is taken into account. The spin-vibronic energy levels and the wave-functions of the isolated dimer (quantum part of the system) are numerically evaluated within the vibronic Piepho, Krausz and Schatz model. The dissipative dynamical behavior is treated within the multilevel Redfield approach for the reduced density matrix. The external electric field is assumed to initially stabilize either ferro- (S=3/2) or antiferromagnetic (S=1/2) spin state and then the field is instantly switched off initiating the ET dynamics. We evaluate the time evolution of the site occupations for the extra electron as well as the mean values of the electric dipole moment and molecular out-of-phase vibrational (reaction) coordinate. It is demonstrated that the ET dynamics essentially depends on the spin of the initially stabilized state and we conclude that under certain conditions the dynamical properties of MV compounds can be efficiently controlled by the electric field of an attainable strength. This also opens an efficient way to create long-living metastable spin states and inverted population in MV dimers that seems to be promising for applications in spintronics.