6533b871fe1ef96bd12d226d

RESEARCH PRODUCT

Electric Field Generation and Control of Bipartite Quantum Entanglement between Electronic Spins in Mixed Valence Polyoxovanadate [GeV14O40]8–

Eugenio CoronadoJuan M. Clemente-juanSergey M. AldoshinAndrew PaliiSalvador Cardona‐serraBoris TsukerblatJuan J. Borrás-almenar

subject

Valence (chemistry)Condensed matter physicsSpinsChemistryAb initio02 engineering and technologyElectronQuantum entanglement010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesInorganic ChemistryParamagnetismDelocalized electronElectric fieldCondensed Matter::Strongly Correlated ElectronsPhysical and Theoretical Chemistry0210 nano-technology

description

As part of the search for systems in which control of quantum entanglement can be achieved, here we consider the paramagnetic mixed valence polyoxometalate K2Na6[GeV14O40]·10H2O in which two electrons are delocalized over the 14 vanadium ions. Applying a homogeneous electric field can induce an antiferromagnetic coupling between the two delocalized electronic spins that behave independently in the absence of the field. On the basis of the proposed theoretical model, we show that the external field can be used to generate controllable quantum entanglement between the two electronic spins traveling over a vanadium network of mixed valence polyoxoanion [GeV14O40]8–. Within a simplified two-level picture of the energy pattern of the electronic pair based on the previous ab initio analysis, we evaluate the temperature and field dependencies of concurrence and thus indicate that the entanglement can be controlled via the temperature, magnitude, and orientation of the electric field with respect to molecular axe...

https://doi.org/10.1021/acs.inorgchem.7b00991