Quality factor for zero-bias conductance peaks in Majorana nanowire
arXiv:2111.01178 · doi:10.1103/PhysRevB.106.094504
Abstract
Despite recent experimental progress towards observing large zero-bias conductance peaks (ZBCPs) as signatures of Majorana modes, confusion remains about whether Majorana modes have been observed. This is in part due to the theoretical prediction of fine-tuned trivial (i.e., non-topological) zero-bias peaks that occur because of uncontrolled quantum dots or disorder potentials. While many aspects of the topological phase can be somewhat fine-tuned because the topological phase space is often small, the quantized height of the ZBCP associated with a Majorana mode is known to be robust at sufficiently low temperatures even as the tunnel barrier is pinched off to vanishingly small normal-state conductance. The key shortcoming of the existing experimental works is an acute lack of stability of the putative Majorana mode features, indicating the probable absence of a topological phase, and the current paper suggests specific experimentally accessible measures for a careful quantitative analysis of the measured ZBCP stability. In this paper, we study how the counter-intuitive robustness of the ZBCP height to the tunnel barrier strength can be used to distinguish Majorana modes from non-topological ZBCPs. To this end, we introduce a dimensionless quality factor to quantify the robustness of the ZBCP height based on the range of normal-state (i.e. above-gap) conductance (which depends crucially on the tunnel barrier height) over which the ZBCP height remains within a pre-specified range of quantization. By computing this quality factor together with the topological characteristics for a wide range of models and parameters, we find that Majoranas are significantly more robust (i.e., have a higher value of ) compared with non-topological ZBCPs in the ideal low-temperature limit. Even at a temperature as high as the experimentally used mK, we find that we can set a threshold value of (for ) so that ZBCPs associated with a quality factor are likely topological and are topologically trivial. More precisely, the value of is operationally related to the degree of separation of the Majorana modes in the system, although uses only the experimentally measured tunnel conductance properties. Finally, we discuss how the quality factor measured in a transport setup can help estimate the quality of topological qubits made from Majorana modes. In particular, we show that if the induced gap can be enhanced somehow beyond the currently available eV in InAs/Al samples, large (small) values of could easily distinguish between stable topological (unstable trivial) ZBCPs with the quantum dot induced quasi-Majorana bound states occasionally behaving similar to topological Majorana modes in short wires.
23 pages, 11 figures
References in corpus (22)
- Non-Abelian Anyons and Topological Quantum Computation
- Signatures of Majorana fermions in hybrid superconductor-semiconductor nanowire devices
- Majorana Fermions and a Topological Phase Transition in Semiconductor-Superconductor Heterostructures
- Evidence of Majorana fermions in an Al - InAs nanowire topological superconductor
- Observation of Majorana Fermions in a Nb-InSb Nanowire-Nb Hybrid Quantum Device
- Majorana bound states in a coupled quantum-dot hybrid-nanowire system
- Anomalous modulation of a zero bias peak in a hybrid nanowire-superconductor device
- Non-Abelian quantum order in spin-orbit-coupled semiconductors: The search for topological Majorana particles in solid state systems
- Scaling of Majorana Zero-Bias Conductance Peaks
- Transport spectroscopy of NS nanowire junctions with Majorana fermions
- Ballistic superconductivity in semiconductor nanowires
- Proximity effect at the superconductor - topological insulator interface
- Disorder-induced zero-bias peaks in Majorana nanowires
- Estimating disorder and its adverse effects in semiconductor Majorana nanowires
- Three-terminal nonlocal conductance in Majorana nanowires: Distinguishing topological and trivial in realistic systems with disorder and inhomogeneous potential
- Electron temperature and tunnel coupling dependence of zero-bias and almost-zero-bias conductance peaks in Majorana nanowires
- Quantized conductance and large g-factor anisotropy in InSb quantum point contacts
- Quantized and unquantized zero-bias tunneling conductance peaks in Majorana nanowires: Conductance below and above
- Presence versus absence of end-to-end nonlocal conductance correlations in Majorana nanowires: Majorana bound states versus Andreev bound states
- X-shaped and Y-shaped Andreev resonance profiles in a superconducting quantum dot
- Crossover between trivial zero modes in Majorana nanowires
- On-demand large-conductance in trivial zero-bias tunneling peaks in Majorana nanowires
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- Random matrix theory for the robustness, quantization, and end-to-end correlation of zero-bias conductance peaks in a class D ensemble
- Effect of topological length on Bound states signatures in a Topological nanowire
- Transport features of a topological superconducting nanowire with a quantum dot: conductance and noise
- Majorana zero-modes in a dissipative Rashba nanowire
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