Mapping the intrinsic photocurrent streamlines through micromagnetic heterostructure devices
arXiv:2002.07902 · doi:10.1073/pnas.2221815120
Abstract
Like air flowing over a wing, optimizing the flow of electronic charge is essential to the operation of nanoscale devices. Unfortunately, the delicate interplay of charge, spin, and heat in complex devices has precluded detailed imaging of charge flow. Here, we report on the visualization of intrinsic charge current streamlines through yttrium iron garnet micromagnetic heterostructures. Scanning photovoltage microscopy of precisely designed devices leads to striking spatial patterns, with prominent photovoltage features emerging in corners and narrow constrictions. These patterns, which evolve continuously with rotation of an external magnetic field, enable rich spatial mapping of fluid-like flow. Taking inspiration from aerodynamic Clark Y airfoils, we engineer micromagnetic wing shaped devices, called electrofoils, which allow us to precisely contort, compress and decompress flowlines of electronic charge.120 (39) e2221815120
7 Pages, 4 figures, supplemental materials attached after references
References in corpus (11)
- Electric Field Effect in Atomically Thin Carbon Films
- Longitudinal Spin Seebeck Effect Free from the Proximity Nernst Effect
- Photocurrent as a multi-physics diagnostic of quantum materials
- Robust edge photocurrent response on layered Type II Weyl semimetal WTe2
- Anomalous Hall effect in YIGPt bilayers
- Hyperbolic enhancement of photocurrent patterns in minimally twisted bilayer graphene
- Intrinsic anomalous Hall conductivity in a nonuniform electric field
- Systematic study of nonmagnetic resistance changes due to electrical pulsing in single metal layers and metal/antiferromagnet bilayers
- Local spin Seebeck imaging with scanning thermal probe
- Nanoscale magnetization and current imaging using scanning-probe magneto-thermal microscopy
- Giant intrinsic photoresponse in pristine graphene