Carbon nanotubes for coherent spintronic devices
arXiv:0912.2745 · doi:10.1016/S1369-7021(10)70030-4
Abstract
Carbon nanotubes bridge the molecular and crystalline quantum worlds, and their extraordinary electronic, mechanical and optical properties have attracted enormous attention from a broad scientific community. We review the basic principles of fabricating spin-electronic devices based on individual, electrically-gated carbon nanotubes, and present experimental efforts to understand their electronic and nuclear spin degrees of freedom, which in the future may enable quantum applications.
17 pages, 9 figures, submitted to Materials Today
References in corpus (25)
- A tunable carbon nanotube electromechanical oscillator
- Spin-orbit coupling in curved graphene, fullerenes, nanotubes, and nanotube caps
- Coupling of Spin and Orbital Motion of Electrons in Carbon Nanotubes
- Strong coupling between single-electron tunneling and nano-mechanical motion
- Orbital Kondo effect in carbon nanotubes
- Carbon nanotubes as ultra-high quality factor mechanical resonators
- Fast Single-Charge Sensing with an rf Quantum Point Contact
- Spin-orbit interaction and anomalous spin relaxation in carbon nanotube quantum dots
- Tunable few-electron double quantum dots and Klein tunnelling in ultra-clean carbon nanotubes
- Suppression of spin relaxation in an InAs nanowire double quantum dot
- Pauli-Spin-Blockade Transport through a Silicon Double Quantum Dot
- Hyperfine interaction and electron-spin decoherence in graphene and carbon nanotube quantum dots
- Four-electron shell structures and an interacting two-electron system in carbon nanotube quantum dots
- Molecular states in carbon nanotube double quantum dots
- Excited state spectroscopy in carbon nanotube double quantum dots
- All-Optical Manipulation of Electron Spins in Carbon-Nanotube Quantum Dots
- Coulomb versus spin-orbit interaction in few-electron carbon-nanotube quantum dots
- Kondo effect in carbon nanotube quantum dots with spin-orbit coupling
- Hyperfine-induced valley mixing and the spin-valley blockade in carbon-based quantum dots
- Pauli spin blockade in carbon nanotube double quantum dots
- Electron spin resonance signal of Luttinger liquids and single-wall carbon nanotubes
- Few-electron physics in a nanotube quantum dot with spin-orbit coupling
- Singlet-Triplet Physics and Shell Filling in Carbon Nanotube Double Quantum Dots
- Ion implanted Si:P double-dot with gate tuneable interdot coupling
- Real Time Electron Tunneling and Pulse Spectroscopy in Carbon Nanotube Quantum Dots
Cited by in corpus (21)
- Quantum transport in carbon nanotubes
- Observation and Spectroscopy of a Two-Electron Wigner Molecule in an Ultra-Clean Carbon Nanotube
- Carbon nanotubes in electric and magnetic fields
- Realization of Pristine and Locally-Tunable One-Dimensional Electron Systems in Carbon Nanotubes
- Spin-valley blockade in carbon nanotube double quantum dots
- Spin-Orbit Effects in Carbon-Nanotube Double Quantum Dots
- Readout of carbon nanotube vibrations based on spin-phonon coupling
- Inter-valley scattering induced by Coulomb interaction and disorder in carbon-nanotube quantum dots
- Probing individual split Cooper-pairs using the spin qubit toolkit
- All-electrical production of spin-polarized currents in carbon nanotubes: Rashba spin-orbit interaction
- Mechanically induced spin resonance in a carbon nanotube
- Kramers polarization in strongly correlated carbon nanotube quantum dots
- Spin and Orbital Splitting in Ferromagnetic Contacted Single Wall Carbon Nanotube Devices
- Anomalous magnetization of a carbon nanotube as an excitonic insulator
- Giant Electron-hole Charging Energy Asymmetry in Ultra-short Carbon Nanotubes
- Helical liquid in carbon nanotubes wrapped with DNA molecules
- g-Tensor Control in Bent Carbon Nanotube Quantum Dots
- Spectroscopy and level detuning of few-electron spin states in parallel InAs quantum dots
- Orbital hyperfine interaction and qubit dephasing in carbon nanotube quantum dots
- Creating arbitrary quantum vibrational states in a carbon nanotube
- Gate-dependent spin-orbit coupling in multi-electron carbon nanotubes