Fabry-Perot interference and spin filtering in carbon nanotubes
arXiv:cond-mat/0304496 · doi:10.1103/PhysRevB.68.205423
Abstract
We study the two-terminal transport properties of a metallic single-walled carbon nanotube with good contacts to electrodes, which have recently been shown [W. Liang et al, Nature 441, 665-669 (2001)] to conduct ballistically with weak backscattering occurring mainly at the two contacts. The measured conductance, as a function of bias and gate voltages, shows an oscillating pattern of quantum interference. We show how such patterns can be understood and calculated, taking into account Luttinger liquid effects resulting from strong Coulomb interactions in the nanotube. We treat back-scattering in the contacts perturbatively and use the Keldysh formalism to treat non-equilibrium effects due to the non-zero bias voltage. Going beyond current experiments, we include the effects of possible ferromagnetic polarization of the leads to describe spin transport in carbon nanotubes. We thereby describe both incoherent spin injection and coherent resonant spin transport between the two leads. Spin currents can be produced in both ways, but only the latter allow this spin current to be controlled using an external gate. In all cases, the spin currents, charge currents, and magnetization of the nanotube exhibit components varying quasiperiodically with bias voltage, approximately as a superposition of periodic interference oscillations of spin- and charge-carrying ``quasiparticles'' in the nanotube, each with its own period. The amplitude of the higher-period signal is largest in single-mode quantum wires, and is somewhat suppressed in metallic nanotubes due to their sub-band degeneracy.
12 pages, 6 figures
References in corpus (8)
- Quantum entanglement in carbon nanotubes
- Finite-size effects in tunneling between parallel quantum wires
- Interference and zero-bias anomaly in tunneling between Luttinger-liquid wires
- Spin-dependent transport in a Luttinger liquid
- Interference effects in electronic transport through metallic single-wall carbon nanotubes
- Momentum-resolved tunneling between Luttinger liquids
- Andreev current in finite sized carbon nanotubes
- Spin Transport in a Quantum Wire
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- Shot Noise with Interaction Effects in Single Walled Carbon Nanotubes
- Transport properties of single channel quantum wires with an impurity: Influence of finite length and temperature on average current and noise
- Magnetoresistance of a quantum dot with spin-active interfaces
- AC magnetization transport and power absorption in non-itinerant spin chains
- Electron tunneling into a quantum wire in the Fabry-Perot regime
- AC conductance and non-symmetrized noise at finite frequency in quantum wires and carbon nanotubes
- Tomonaga-Luttinger liquid correlations and Fabry-Perot interference in conductance and finite-frequency shot noise in a single-walled carbon nanotube
- Spin transport across carbon nanotube quantum dots
- Dephasing of spin and charge interference in helical Luttinger liquids
- Sagnac interference in Carbon nanotube loops
- Controlling spin polarization of a quantum dot via a helical edge state
- Exchange effects in spin polarized transport through carbon nanotube quantum dots
- Sagnac interference in Carbon nanotubes
- Evidence for broken Galilean invariance at the quantum spin Hall edge
- Transport through multiply connected quantum wires
- Tunneling into a finite Luttinger liquid coupled to noisy capacitive leads
- Spin-charge mixing effects on resonant tunneling in a polarized Luttinger Liquid
- Negativity of the excess noise in a quantum wire capacitively coupled to a gate
- Sub- to Super-Poissonian crossover of current noise in helical edge states coupled to a spin impurity in a magnetic field
- Frequency dependent transport through a spin chain
- Impurity effects on Fabry-Perot physics of ballistic carbon nanotubes
- Charge accumulation on a Luttinger liquid
- Backscattering off a driven Rashba impurity at the helical edge
- dc Josephson Effect in Metallic Single-Walled Carbon Nanotubes
- Interference in transport through double barriers in interacting quantum wires
- Density of states of interacting quantum wires with impurities: a Dyson equation approach