Cotunneling theory of inelastic STM spin spectroscopy
arXiv:1103.3676 · doi:10.1103/PhysRevB.84.045439
Abstract
We propose cotunneling as the microscopic mechanism that makes possible inelastic electron spectroscopy of magnetic atoms in surfaces for a wide range of systems, including single magnetic adatoms, molecules and molecular stacks. We describe electronic transport between the scanning tip and the conducting surface through the magnetic system (MS) with a generalized Anderson model, without making use of effective spin models. Transport and spin dynamics are described with an effective cotunneling Hamiltonian in which the correlations in the magnetic system are calculated exactly and the coupling to the electrodes is included up to second order in the tip-MS and MS-substrate. In the adequate limit our approach is equivalent to the phenomenological Kondo exchange model that successfully describe the experiments . We apply our method to study in detail inelastic transport in two systems, stacks of Cobalt Phthalocyanines and a single Mn atom on CuN. Our method accounts both, for the large contribution of the inelastic spin exchange events to the conductance and the observed conductance asymmetry.
12 pages, 6 figures
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- Transport mirages in single-molecule devices
- A theoretical review on the single-impurity electron spin resonance on surfaces
- Controlled complete suppression of single-atom inelastic spin and orbital cotunnelling
- Scanning tunneling spectroscopy of Majorana zero modes in a Kitaev spin liquid
- Anomalously large g-factor of single atoms adsorbed on a metal substrate
- Probing local moments in nanographenes with electron tunneling spectroscopy
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- Electronic properties of transition metal atoms on CuN/Cu(100)
- Derivation of the spin Hamiltonians for Fe in MgO
- Complete reversal of the atomic unquenched orbital moment by a single electron
- A study of all-electric electron spin resonance using Floquet quantum master equations
- Broken-symmetry magnetic phases in two-dimensional triangulene crystals
- A model for individual quantal nano-skyrmions
- Contrasting exchange-field and spin-transfer torque driving mechanisms in all-electric electron spin resonance
- Bias asymmetry in the conductance profile of magnetic ions on surfaces probed by scanning tunneling microscopy
- Theory of spin dynamics of magnetic adatoms traced by time-resolved scanning tunneling spectroscopy
- Quantifying the quantum nature of high spin YSR excitations in transverse magnetic field
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- Inelastic electron tunneling spectroscopy of a Mn dimer
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- Inelastic electron tunneling through adatoms and molecular nanomagnets