Quantum capacitance with an auxiliary quantum dot measures ground-state energy splitting and Majorana overlap in topological qubits via peak positions and magnitudes in even and odd parity sectors.
Single-shot parity readout of a minimal Kitaev chain
3 Pith papers cite this work. Polarity classification is still indexing.
verdicts
UNVERDICTED 3representative citing papers
Quantum capacitance diagrams in a quantum-dot Kitaev chain identify the sweet spot for Majorana modes and reveal distinct parity switches from lead coupling versus quasiparticle poisoning.
A magnetic impurity bridging two s-wave superconducting wires hosts two protected zero-energy Majorana fermions arising from the two-channel Kondo interaction with a spin-gapped edge state.
citing papers explorer
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Assessing Majorana states and qubits through quantum capacitance
Quantum capacitance with an auxiliary quantum dot measures ground-state energy splitting and Majorana overlap in topological qubits via peak positions and magnitudes in even and odd parity sectors.
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Quantum capacitance and parity switching of a quantum-dot-based Kitaev chain
Quantum capacitance diagrams in a quantum-dot Kitaev chain identify the sweet spot for Majorana modes and reveal distinct parity switches from lead coupling versus quasiparticle poisoning.
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Free Majorana Fermions with Superconducting Quantum Wires and a Magnetic Impurity
A magnetic impurity bridging two s-wave superconducting wires hosts two protected zero-energy Majorana fermions arising from the two-channel Kondo interaction with a spin-gapped edge state.