Andreev Molecules in Semiconductor Nanowire Double Quantum Dots
arXiv:1611.00727 · doi:10.1038/s41467-017-00665-7
Abstract
Quantum simulation is a way to study unexplored Hamiltonians by mapping them onto the assemblies of well-understood quantum systems such as ultracold atoms in optical lattices, trapped ions or superconducting circuits. Semiconductor nanostructures which form the backbone of classical computing hold largely untapped potential for quantum simulation. In particular, chains of quantum dots in semiconductor nanowires can be used to emulate one-dimensional Hamiltonians such as the toy model of a topological p-wave superconductor. Here we realize a building block of this model, a double quantum dot with superconducting contacts, in an indium antimonide nanowire. In each dot, tunnel-coupling to a superconductor induces Andreev bound states. We demonstrate that these states hybridize to form the double-dot Andreev molecular states. We establish the parity and the spin structure of Andreev molecular levels by monitoring their evolution in electrostatic potential and magnetic field. Understanding Andreev molecules is a key step towards building longer chains which are predicted to generate Majorana bound states at the end sites. Two superconducting quantum dots are already sufficient to test the fusion rules of Majorana bound states, a milestone towards fault-tolerant topological quantum computing.
15 pages and 4 figures in the main text, 28 pages and 18 figures in the supplementary information. Raw data can be downloaded at http://data.4tu.nl/repository/uuid:e99d1ab7-2e82-447e-a314-f230a0da4a95
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- Phase-engineering the Andreev band structure of a three-terminal Josephson junction
- Two-Impurity Yu-Shiba-Rusinov States in Coupled Quantum Dots
- Gate-Controlled Quantum Dots Based on Two-Dimensional Materials
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- Enhancing the excitation gap of a quantum-dot-based Kitaev chain
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- Demonstration of nonlocal Josephson effect in Andreev molecules
- Phase-dependent Andreev molecules and superconducting gap closing in coherently coupled Josephson junctions
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- Manipulating Majorana zero modes in double quantum dots
- Entangling Spins in Double Quantum Dots and Majorana Bound States
- Engineering of anomalous Josephson effect in coherently coupled Josephson junctions
- Large spatial extension of the zero-energy Yu-Shiba-Rusinov state in magnetic field
- From Cooper pair splitting to the non-local spectroscopy of a Shiba state
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- Evidence of Andreev blockade in a double quantum dot coupled to a superconductor
- Josephson junctions in double nanowires bridged by in-situ deposited superconductors
- Fermion-parity qubit in a proximitized double quantum dot
- Direct Transport between Superconducting Subgap States in a Double Quantum Dot
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- Current cross-correlations and waiting time distributions in Andreev transport through Cooper pair splitters based on triple quantum dots
- Non-Hermitian multiterminal phase-biased Josephson junctions
- Controlling Andreev bound states with the magnetic vector potential
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- Nonreciprocal Quantum Transport at Junctions of Structured Leads
- Fate of poor man's Majoranas in the long Kitaev chain limit
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- Erasing odd-parity states in semiconductor quantum dots coupled to superconductors
- Intermediate states in Andreev bound state fusion
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- Effective low-energy models for superconducting impurity systems
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- Probing Majorana bound states through an inhomogeneous Andreev double dot interferometer
- Long-range crossed Andreev reflection in topological insulator nanowires proximitized by a superconductor
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- Fermionic quantum computation with Cooper pair splitters
- Scanning gate microscopy of nonretracing electron-hole trajectories in a normal-superconductor junction
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- Investigation of the Yu-Shiba-Rusinov states of a multi-impurity Kondo system
- Fermionic Quantum Simulation on Andreev Bound State Superlattices
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- Theory of Andreev Blockade in a Double Quantum Dot with a Superconducting Lead
- Properties and prevalence of false poor man's Majoranas in two- and three-site artificial Kitaev chains
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