Josephson junctions based on ultraclean carbon nanotubes
arXiv:2405.19192 · doi:10.1103/PhysRevApplied.22.064035
Abstract
We present a technique for integrating ultraclean carbon nanotubes into superconducting circuits, aiming to realize Josephson junctions based on one-dimensional elementary quantum conductors. This technique primarily involves depositing the nanotube in the final step, thus preserving it from the inherent contaminations of nanofabrication and maintaining contact solely with superconducting electrodes and a crystalline hBN substrate. Through transport measurements performed in both the normal and superconducting states, we demonstrate that our method yields high-quality junctions with Josephson energies suitable for quantum device applications, such as carbon nanotube-based superconducting qubits.
References in corpus (52)
- Boron nitride substrates for high-quality graphene electronics
- Carbon Nanotubes as Schottky Barrier Transistors
- Coupling of Spin and Orbital Motion of Electrons in Carbon Nanotubes
- A Semiconductor Nanowire-Based Superconducting Qubit
- Quantum transport in carbon nanotubes
- Quantum supercurrent transistors in carbon nanotubes
- Carbon Nanotubes as Cooper Pair Beam Splitters
- Revealing the electronic structure of a carbon nanotube carrying a supercurrent
- Realization of a minimal Kitaev chain in coupled quantum dots
- Realization of microwave quantum circuits using hybrid superconducting-semiconducting nanowire Josephson elements
- Coherent manipulation of Andreev states in superconducting atomic contacts
- Measuring electron orbital magnetic moments in carbon nanotubes
- Electron Transport in Very Clean, As-Grown Suspended Carbon Nanotubes
- Superconducting Gatemon Qubit based on a Proximitized Two-Dimensional Electron Gas
- Self-consistent description of Andreev bound states in Josephson quantum dot devices
- Coherent manipulation of an Andreev spin qubit
- Quantum coherent control of a hybrid superconducting circuit made with graphene-based van der Waals heterostructures
- Critical Current 0- Transition in Designed Josephson Quantum Dot Junctions
- A valley-spin qubit in a carbon nanotube
- Singlet and triplet Cooper pair splitting in hybrid superconducting nanowires
- Direct manipulation of a superconducting spin qubit strongly coupled to a transmon qubit
- Tuning the Josephson current in carbon nanotubes with the Kondo effect
- SU(4) and SU(2) Kondo Effects in Carbon Nanotube Quantum Dots
- Synthetic spin orbit interaction for Majorana devices
- Realization of Pristine and Locally-Tunable One-Dimensional Electron Systems in Carbon Nanotubes
- Nonlocal Josephson effect in Andreev molecules
- Shot noise in carbon nanotube based Fabry-Perot interferometers
- Supercurrent Spectroscopy of Andreev States
- Superconductivity-enhanced bias spectroscopy in carbon nanotube quantum dots
- 0- quantum transition in a carbon nanotube Josephson junction: universal phase dependence and orbital degeneracy
- Spin Cross-Correlation Experiments in an Electron Entangler
- Fine energy splitting of overlapping Andreev bound states in multi-terminal superconducting nanostructures
- Interplay of Kondo effect and strong spin-orbit coupling in multi-hole ultraclean carbon nanotubes
- Observation of nonlocal Josephson effect on double InAs nanowires
- Guiding Dirac fermions in graphene with a carbon nanotube
- Josephson Diode Effect in Andreev Molecules
- Carbon Nanotube Quantum Dots with Nb Contacts
- Conserved spin and orbital phase along carbon nanotubes connected with multiple ferromagnetic contacts
- Demonstration of nonlocal Josephson effect in Andreev molecules
- Realization of a Carbon-Nanotube-Based Superconducting Qubit
- Spin-orbit proximity in MoS/bilayer graphene heterostructures
- Magnetic-Field-Compatible Superconducting Transmon Qubit
- Scattering description of Andreev molecules
- Microwave spectroscopy of a carbon nanotube charge qubit
- Hyperfine and spin-orbit coupling effects on decay of spin-valley states in a carbon nanotube
- Fabry-Pérot oscillations in correlated carbon nanotubes
- Carbon nanotube quantum dots on hexagonal boron nitride
- Driven Andreev molecule
- Nanoassembly technique of carbon nanotubes for hybrid circuit-QED
- First order quantum phase transition in the Kondo regime of a superconducting carbon nanotube quantum dot
- Nano-assembled open quantum dot nanotube devices
- Zero energy states clustering in an elemental nanowire coupled to a superconductor