Imaging the transition from diffusive to Landauer resistivity dipoles
arXiv:2412.15817 · doi:10.1103/psjh-gjh8
Abstract
A point-like defect in a uniform current-carrying conductor induces a dipole in the electrochemical potential, which counteracts the original transport field. If the mean free path of the carriers is much smaller than the size of the defect, the dipole results from the purely diffusive motion of the carriers around the defect. In the opposite limit, ballistic carriers scatter from the defect -- for this situation, Rolf Landauer postulated the emergence of residual resistivity dipoles that are independent of the defect size and thus impose a fundamental limit on the resistance of the parent conductor. Here, we study resistivity dipoles around holes of different sizes in two-dimensional Bi films on Si(111). Using scanning tunneling potentiometry to image the dipoles, we find a crossover from linear to constant scaling behavior of their amplitudes with defect size, manifesting the transition from diffusive to Landauer dipoles. The extracted parameters of the transition allow us to estimate the Fermi wave vector and the carrier mean free path in our Bi films.
References in corpus (6)
- Imaging the breaking of electrostatic dams in graphene for ballistic and viscous fluids
- Electrical resistance of individual defects at a topological insulator surface
- Scanning tunneling potentiometry implemented into a multi-tip setup by software
- Unified Theoretical Approach to Electronic Transport from Diffusive to Ballistic Regimes
- Crossover from quantum to classical transport
- Intermediate diffusive-ballistic electron conduction around mesoscopic defects in graphene