Scanning Quantum Cryogenic Atom Microscope
Fan Yang, Alicia J. Koll\'ar, Stephen F. Taylor, Richard W. Turner,, and Benjamin L. Lev

TL;DR
The paper introduces the SQCRAMscope, a quantum-noise-limited cryogenic atomic magnetometer with high sensitivity and resolution, capable of imaging magnetic fields in complex materials from room temperature down to 4 K.
Contribution
It presents the design and benchmarking of a novel scanning quantum cryogenic atom microscope using a levitated Bose-Einstein condensate for enhanced magnetic field imaging.
Findings
Achieves 1.4 nT sensitivity per point at 2 μm resolution.
Provides nearly two orders of magnitude improvement over previous atomic magnetometers.
Successfully images magnetic fields from microfabricated wire patterns.
Abstract
Microscopic imaging of local magnetic fields provides a window into the organizing principles of complex and technologically relevant condensed matter materials. However, a wide variety of intriguing strongly correlated and topologically nontrivial materials exhibit poorly understood phenomena outside the detection capability of state-of-the-art high-sensitivity, high-resolution scanning probe magnetometers. We introduce a quantum-noise-limited scanning probe magnetometer that can operate from room to cryogenic temperatures with unprecedented DC-field sensitivity and micron-scale resolution. The Scanning Quantum Cryogenic Atom Microscope (SQCRAMscope) employs a magnetically levitated atomic Bose-Einstein condensate (BEC), thereby providing immunity to conductive and blackbody radiative heating. It has a field sensitivity of 1.4 nT per resolution-limited point (2 m), or 6…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Magnetic and transport properties of perovskites and related materials · Atomic and Subatomic Physics Research
