Theory of tunneling spectroscopy in a Mn12 single-electron transistor by density-functional theory methods.

Phys Rev Lett

Division of Physics, Department of Natural Sciences, Kalmar University, 391 82 Kalmar, Sweden.

Published: January 2010

We consider tunneling transport through a Mn12 molecular magnet using spin density functional theory. A tractable methodology for constructing many-body wave functions from Kohn-Sham orbitals allows for the determination of spin-dependent matrix elements for use in transport calculations. The tunneling conductance at finite bias is characterized by peaks representing transitions between spin multiplets, separated by an energy on the order of the magnetic anisotropy. The energy splitting of the spin multiplets and the spatial part of their many-body wave functions, describing the orbital degrees of freedom of the excess charge, strongly affect the electronic transport, and can lead to negative differential conductance.

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http://dx.doi.org/10.1103/PhysRevLett.104.017202DOI Listing

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