Terahertz-nanoscale visualization of the microscopic spin-charge architecture of colossal magnetoresistive switching
Samuel Haeuser, Randall K. Chan, Richard H. J. Kim, Joong-Mok Park, Martin Mootz, Thomas Koschny, Jigang Wang

TL;DR
This study employs a novel cryogenic magneto-THz sSNOM technique to visualize nanoscale spin-charge dynamics during colossal magnetoresistance transition, revealing multi-scale phase evolution and local THz conductivity changes.
Contribution
It introduces a custom cryogenic THz sSNOM platform capable of resolving sub-10 nm spin and charge dynamics during CMR transitions at cryogenic temperatures.
Findings
Nanoscale visualization of spin switching triggers phase transition.
Identification of 1-2 nm isolated spin-flip sites initiating transition.
Coalescence into 15 nm conducting regions near threshold field.
Abstract
Resolving sub-10 nm spin switching and the associated terahertz (THz) electrodynamics during the colossal magnetoresistance (CMR) transition is a definitive frontier in reaching the fundamental spatial, temporal, and energy-dissipation limits of spin-based microelectronics and quantum logic architectures. Yet, the requirement of simultaneous control of high magnetic field, cryogenic environment, and nanometer-scale resolution has remained an elusive benchmark for terahertz nanoscopy, leaving the obscured nano-scale high-frequency dynamics of these transitions largely unexplored. Here, we overcome these limitations by utilizing a custom-built cryogenic magneto-THz scattering-type scanning near-field optical microscopy (cm-THz-sSNOM) platform to resolve the nanoscale, THz spectroscopic evolution of the magnetic field-driven CMR transition in a manganite single crystal…
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Taxonomy
TopicsMagnetic properties of thin films · Topological Materials and Phenomena · Chemical and Physical Properties of Materials
