Coupling of spin and orbital motion of electrons in carbon nanotubes

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Coupling of spin and orbital motion of electrons in carbon nanotubes. / Kuemmeth, Ferdinand; Ilani, S; Ralph, D C; McEuen, P L.

In: Nature, Vol. 452, No. 7186, 27.01.2008, p. 448-452.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Kuemmeth, F, Ilani, S, Ralph, DC & McEuen, PL 2008, 'Coupling of spin and orbital motion of electrons in carbon nanotubes', Nature, vol. 452, no. 7186, pp. 448-452. https://doi.org/doi:10.1038/nature06822

APA

Kuemmeth, F., Ilani, S., Ralph, D. C., & McEuen, P. L. (2008). Coupling of spin and orbital motion of electrons in carbon nanotubes. Nature, 452(7186), 448-452. https://doi.org/doi:10.1038/nature06822

Vancouver

Kuemmeth F, Ilani S, Ralph DC, McEuen PL. Coupling of spin and orbital motion of electrons in carbon nanotubes. Nature. 2008 Jan 27;452(7186):448-452. https://doi.org/doi:10.1038/nature06822

Author

Kuemmeth, Ferdinand ; Ilani, S ; Ralph, D C ; McEuen, P L. / Coupling of spin and orbital motion of electrons in carbon nanotubes. In: Nature. 2008 ; Vol. 452, No. 7186. pp. 448-452.

Bibtex

@article{3675d351950648efb676cf3b33aeb065,
title = "Coupling of spin and orbital motion of electrons in carbon nanotubes",
abstract = "Electrons in atoms possess both spin and orbital degrees of freedom. In non-relativistic quantum mechanics, these are independent, resulting in large degeneracies in atomic spectra. However, relativistic effects couple the spin and orbital motion, leading to the well-known fine structure in their spectra. The electronic states in defect-free carbon nanotubes are widely believed to be four-fold degenerate, owing to independent spin and orbital symmetries, and also to possess electron–hole symmetry. Here we report measurements demonstrating that in clean nanotubes the spin and orbital motion of electrons are coupled, thereby breaking all of these symmetries. This spin–orbit coupling is directly observed as a splitting of the four-fold degeneracy of a single electron in ultra-clean quantum dots. The coupling favours parallel alignment of the orbital and spin magnetic moments for electrons and antiparallel alignment for holes. Our measurements are consistent with recent theories that predict the existence of spin–orbit coupling in curved graphene and describe it as a spin dependent topological phase in nanotubes. Our findings have important implications for spin-based applications in carbon- based systems, entailing new design principles for the realization of quantum bits (qubits) in nanotubes and providing a mechanism for all-electrical control of spins in nanotubes.",
author = "Ferdinand Kuemmeth and S Ilani and Ralph, {D C} and McEuen, {P L}",
year = "2008",
month = jan,
day = "27",
doi = "doi:10.1038/nature06822",
language = "English",
volume = "452",
pages = "448--452",
journal = "Nature",
issn = "0028-0836",
publisher = "nature publishing group",
number = "7186",

}

RIS

TY - JOUR

T1 - Coupling of spin and orbital motion of electrons in carbon nanotubes

AU - Kuemmeth, Ferdinand

AU - Ilani, S

AU - Ralph, D C

AU - McEuen, P L

PY - 2008/1/27

Y1 - 2008/1/27

N2 - Electrons in atoms possess both spin and orbital degrees of freedom. In non-relativistic quantum mechanics, these are independent, resulting in large degeneracies in atomic spectra. However, relativistic effects couple the spin and orbital motion, leading to the well-known fine structure in their spectra. The electronic states in defect-free carbon nanotubes are widely believed to be four-fold degenerate, owing to independent spin and orbital symmetries, and also to possess electron–hole symmetry. Here we report measurements demonstrating that in clean nanotubes the spin and orbital motion of electrons are coupled, thereby breaking all of these symmetries. This spin–orbit coupling is directly observed as a splitting of the four-fold degeneracy of a single electron in ultra-clean quantum dots. The coupling favours parallel alignment of the orbital and spin magnetic moments for electrons and antiparallel alignment for holes. Our measurements are consistent with recent theories that predict the existence of spin–orbit coupling in curved graphene and describe it as a spin dependent topological phase in nanotubes. Our findings have important implications for spin-based applications in carbon- based systems, entailing new design principles for the realization of quantum bits (qubits) in nanotubes and providing a mechanism for all-electrical control of spins in nanotubes.

AB - Electrons in atoms possess both spin and orbital degrees of freedom. In non-relativistic quantum mechanics, these are independent, resulting in large degeneracies in atomic spectra. However, relativistic effects couple the spin and orbital motion, leading to the well-known fine structure in their spectra. The electronic states in defect-free carbon nanotubes are widely believed to be four-fold degenerate, owing to independent spin and orbital symmetries, and also to possess electron–hole symmetry. Here we report measurements demonstrating that in clean nanotubes the spin and orbital motion of electrons are coupled, thereby breaking all of these symmetries. This spin–orbit coupling is directly observed as a splitting of the four-fold degeneracy of a single electron in ultra-clean quantum dots. The coupling favours parallel alignment of the orbital and spin magnetic moments for electrons and antiparallel alignment for holes. Our measurements are consistent with recent theories that predict the existence of spin–orbit coupling in curved graphene and describe it as a spin dependent topological phase in nanotubes. Our findings have important implications for spin-based applications in carbon- based systems, entailing new design principles for the realization of quantum bits (qubits) in nanotubes and providing a mechanism for all-electrical control of spins in nanotubes.

U2 - doi:10.1038/nature06822

DO - doi:10.1038/nature06822

M3 - Journal article

VL - 452

SP - 448

EP - 452

JO - Nature

JF - Nature

SN - 0028-0836

IS - 7186

ER -

ID: 44173581