Spin Cross-Correlation Experiments in an Electron Entangler
arXiv:2203.07970 · doi:10.1038/s41586-022-05436-z
Abstract
Correlations are fundamental in describing many body systems - not only in natural sciences. However, in experiments, correlations are notoriously difficult to assess on the microscopic scale, especially for electron spins. Here, we demonstrate a direct measurement of the spin cross-correlations between the currents of a Cooper pair splitter, an electronic device that emits electrons originating from Cooper pairs in a superconductor. While it is firmly established theoretically that these electron pairs form maximally spin-entangled singlet states with opposite spin projections, no spin correlation experiments have been demonstrated so far. We use ferromagnetic sidegates, compatible with superconducting electronic structures, to individually spin polarize the transmissions of two quantum dots fabricated in the two electronic paths, which act as tunable spin filters. The signals are detected in standard transport and in highly sensitive transconductance experiments. We find that the spin-cross correlation is negative, compatible with spin singlet emission, and deviates from the ideal value mostly due to a finite overlap of the Zeeman split quantum dot states. Our results demonstrate a new route to perform spin auto- and cross correlation experiments in nanometer scaled electronic devices, especially suitable for those relying on magnetic field sensitive superconducting elements, like unconventional, triplet or topologically non-trivial superconductors, or to perform Bell tests with massive particles, like electrons.
References in corpus (16)
- Signatures of Majorana fermions in hybrid superconductor-semiconductor nanowire devices
- Majorana bound states in a coupled quantum-dot hybrid-nanowire system
- Evidence for crossed Andreev reflection in superconductor-ferromagnet hybrid structures
- Near-unity Cooper pair splitting efficiency
- Cooper Pair Splitting by means of Graphene Quantum Dots
- Non-local Andreev transport through an interacting quantum dot
- Local electrical tuning of the nonlocal signals in a Cooper pair splitter
- Contact resistance dependence of crossed Andreev reflection
- Permalloy-based carbon nanotube spin-valve
- Real-time observation of Cooper pair splitting showing strong non-local correlations
- Spin correlation and entanglement detection in Cooper pair splitters by current measurements using magnetic detectors
- Probing individual split Cooper-pairs using the spin qubit toolkit
- Local and non-local two-electron tunneling processes in a Cooper pair splitter
- Hysteretic magnetoresistance in nanowire devices due to stray fields induced by micromagnets
- Optimal Entanglement Witness for Cooper Pair Splitters
- Magnetoresistence engineering and singlet/triplet switching in InAs nanowire quantum dots with ferromagnetic sidegates
Cited by in corpus (34)
- Parity-conserving Cooper-pair transport and ideal superconducting diode in planar Germanium
- Theory of Majorana zero modes in unconventional superconductors
- Triplet correlations in Cooper pair splitters realized in a two-dimensional electron gas
- Particle-hole symmetry protects spin-valley blockade in graphene quantum dots
- Probing Majorana localization in minimal Kitaev chains through a quantum dot
- High-fidelity two-qubit gates of hybrid superconducting-semiconducting singlet-triplet qubits
- Perfect crossed Andreev reflection in the proximitized graphene/superconductor/proximitized graphene junctions
- Controllable Single Cooper Pair Splitting in Hybrid Quantum Dot Systems
- Non-Hermitian minimal Kitaev chains
- Coupling of quantum-dot states via elastic-cotunneling and crossed Andreev reflection in a minimal Kitaev chain
- Majorana sweet spots in 3-site Kitaev chains
- Adiabatic Cooper pair splitter
- Thermoelectric processes of quantum normal-superconductor interfaces
- Quantum Hall Bogoliubov Interferometer
- Josephson junction π-0 transition induced by orbital hybridization in a double quantum dot
- Subgap states in semiconductor-superconductor devices for quantum technologies: Andreev qubits and minimal Majorana chains
- Subgap transport in superconductor--semiconductor hybrid islands: Weak and strong coupling regimes
- Test of local realism via entangled system
- Topological Interlayer Superconductivity in a van der Waals Heterostructure
- Nonlocal Andreev transport through a quantum dot in a magnetic field: Interplay between Kondo, Zeeman, and Cooper-pair correlations
- Photonic cross-noise spectroscopy of Majorana bound states
- Nonmonotonic buildup of spin-singlet correlations in a double quantum dot
- Fate of the superconducting state in floating islands of hybrid nanowire devices
- Josephson junctions based on ultraclean carbon nanotubes
- Entangled Photon-Pair Emission in Waveguide Circuit QED from a Cooper Pair Splitter
- Integration of Cobalt Ferromagnetic Control Gates for Electrical and Magnetic Manipulation of Semiconductor Quantum Dots
- Spin-resolved nonlocal transport in proximitized Rashba nanowires
- Cavity-induced switching between Bell-state textures in a quantum dot
- Wigner representation of Andreev-reflected charge pulses
- A Cooper-pair beam splitter as a feasible source of entangled electrons
- Cooper-pair splitters as circuit elements for realizing topological superconductors
- Three-body Fermi-liquid corrections for Andreev transport through quantum dots
- Radio-frequency charge detection on graphene electron-hole double quantum dots
- Efficient Cooper Pair Splitting Without Interactions