Quantum Transport Through a Stretched Spin--1 Molecule
arXiv:1007.4214 · doi:10.1209/0295-5075/93/47005
Abstract
We analyze the electronic transport through a model spin-1 molecule as a function of temperature, magnetic field and bias voltage. We consider the effect of magnetic anisotropy, which can be generated experimentally by stretching the molecule. In the experimentally relevant regime the conductance of the unstretched molecule reaches the unitary limit of the underscreened spin- 1 Kondo effect at low temperatures. The magnetic anisotropy generates an antiferromagnetic coupling between the remaining spin 1/2 and a singular density of quasiparticles, producing a second Kondo effect and a reduced conductance. The results explain recent measurements in spin-1 molecules [Science 328 1370 (2010)].
5 pages, 3 figures, minor changes, accepted for publication in EPL
References in corpus (8)
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Cited by in corpus (4)
- Tunable Charge and Spin Seebeck Effects in Magnetic Molecular Junctions
- Memristive properties of single-molecule magnets
- Non-Fermi liquid behaviour in non-equilibrium transport through Co doped Au chains connected to four-fold symmetric leads
- Dynamical magnetic anisotropy and quantum phase transitions in a vibrating spin-1 molecular junction