Topologically nontrivial and trivial zero modes in chiral molecules
arXiv:2208.13352 · doi:10.1103/PhysRevB.108.035401
Abstract
Recently, electron transport along chiral molecules has been attracting extensive interest and several intriguing phenomena have been reported in recent experiments, such as the emergence of zero-bias conductance peaks upon the adsorption of single-helical protein on superconducting films. Here, we study theoretically the electron transport through a two-terminal single-helical protein sandwiched between a superconducting electrode and a normal-metal one in the presence of a perpendicular magnetic field. As the proximity-induced superconductivity attenuates with the distance from superconducting media, the pairing potential along the helix axis of the single-helical protein is expected to decrease exponentially, which is characterized by the decay exponent and closely related to the experiments. Our results indicate that (i) a zero-bias conductance peak of appears at zero temperature and the peak height (width) decreases (broadens) with increasing temperature, and (ii) this zero-bias peak can split into two peaks, which are in agreement with the experiments [see, e.g., Nano Lett. 19, 5167 (2019)]. Remarkably, Majorana zero modes are observed in this protein-superconductor setup in a wide range of model parameters, as manifested by the topological invariant and the Majoroana oscillation. Interestingly, a specific region is demonstrated for decaying superconductivity, where topologically nontrivial and trivial zero modes coexist and the bandgap remains constant. With increasing the pairing potential, the topologically nontrivial zero modes will transform to the trivial ones without any bandgap closing-reopening, and the critical pairing potential of the phase transition attenuates exponentially with . Additionally, one of the two zero modes can be continuously shifted from one end of the protein toward the other end contacted by the normal-metal electrode.
11 pages, 6 figures
References in corpus (16)
- Superconducting proximity effect and Majorana fermions at the surface of a topological insulator
- Signatures of Majorana fermions in hybrid superconductor-semiconductor nanowire devices
- Majorana Fermions and a Topological Phase Transition in Semiconductor-Superconductor Heterostructures
- Observation of Majorana Fermions in Ferromagnetic Atomic Chains on a Superconductor
- Coupling of Spin and Orbital Motion of Electrons in Carbon Nanotubes
- Towards a realistic transport modeling in a superconducting nanowire with Majorana fermions
- A Majorana smoking gun for the superconductor-semiconductor hybrid topological system
- Distinguishing a Majorana zero mode using spin resolved measurements
- SNS junctions in nanowires with spin-orbit coupling: role of confinement and helicity on the sub-gap spectrum
- Topological Superconductivity induced by Ferromagnetic Metal Chains
- Ordered and tunable Majorana-zero-mode lattice in naturally strained LiFeAs
- Vibration-Enhanced Spin-Selective Transport of Electrons in DNA Double Helix
- Odd triplet superconductivity in a superconductor/ferromagnet structure with a spiral magnetic structure
- Spin selectivity through time-reversal symmetric helical junctions
- Unconventional superconductivity induced in Nb films by adsorbed chiral molecules
- Majorana quasiparticles of inhomogeneous Rashba chain
Cited by in corpus (5)
- Theory of Majorana zero modes in unconventional superconductors
- Zero-frequency supercurrent susceptibility signatures of trivial and topological zero-energy states in nanowire junctions
- Entanglement measures of Majorana bound states
- Phase transitions in quantum dot-Majorana zero mode coupling systems
- Discovery of nodal-line superconductivity in chiral crystals