Nanoscale magnetic resonance imaging (NanoMRI) is an active area of applied research with potential use in structural biology and quantum engineering. The success of this technological vision hinges on improving the instrument's sensitivity and functionality. A particular challenge is the optimization of the magnetic field gradient required for spatial encoding, and of the radio-frequency field used for spin control, in analogy to the components used in clinical MRI. In this work, we present the fabrication and characterization of a magnet-in-microstrip device that yields a compact form factor for both elements. We find that our design leads to a number of advantages, among them a fourfold increase of the magnetic field gradient compared to those achieved with traditional fabrication methods. Our results can be useful for boosting the efficiency of a variety of different experimental arrangements and detection principles in the field of NanoMRI.
@article{arxiv.2312.04129,
title = {Nanoscale magnets embedded in a microstrip},
author = {Raphael Pachlatko and Nils Prumbaum and Marc-Dominik Krass and Urs Grob and Christian L. Degen and Alexander Eichler},
journal= {arXiv preprint arXiv:2312.04129},
year = {2024}
}