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Orbital Kondo effect in carbon nanotubes

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arxiv cond-mat/0504059 v1 pith:YXE6V5AQ submitted 2005-04-03 cond-mat.mes-hall cond-mat.mtrl-scicond-mat.str-el

Orbital Kondo effect in carbon nanotubes

classification cond-mat.mes-hall cond-mat.mtrl-scicond-mat.str-el
keywords kondoorbitaleffectcarbonnanotubesquantumspinelectronic
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Progress in the fabrication of nanometer-scale electronic devices is opening new opportunities to uncover the deepest aspects of the Kondo effect, one of the paradigmatic phenomena in the physics of strongly correlated electrons. Artificial single-impurity Kondo systems have been realized in various nanostructures, including semiconductor quantum dots, carbon nanotubes and individual molecules. The Kondo effect is usually regarded as a spin-related phenomenon, namely the coherent exchange of the spin between a localized state and a Fermi sea of electrons. In principle, however, the role of the spin could be replaced by other degrees of freedom, such as an orbital quantum number. Here we demonstrate that the unique electronic structure of carbon nanotubes enables the observation of a purely orbital Kondo effect. We use a magnetic field to tune spin-polarized states into orbital degeneracy and conclude that the orbital quantum number is conserved during tunneling. When orbital and spin degeneracies are simultaneously present, we observe a strongly enhanced Kondo effect, with a multiple splitting of the Kondo resonance at finite field and predicted to obey a so-called SU(4) symmetry.

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