_version_ 1866910292930199552
author Christensen, D. V.
Staub, U.
Devidas, T. R.
Kalisky, B.
Nowack, K. C.
Webb, J. L.
Andersen, U. L.
Huck, A.
Broadway, D. A.
Wagner, K.
Maletinsky, P.
van der Sar, T.
Du, C. R.
Yacoby, A.
Collomb, D.
Bending, S.
Oral, A.
Hug, H. J.
Mandru, A. -O.
Neu, V.
Schumacher, H. W.
Sievers, S.
Saito, H.
Khajetoorians, A. A.
Hauptmann, N.
Baumann, S.
Eichler, A.
Degen, C. L.
McCord, J.
Vogel, M.
Fiebig, M.
Fischer, P.
Hierro-Rodriguez, A.
Finizio, S.
Dhesi, S. S.
Donnelly, C.
Büttner, Felix
Kfir, O.
Hu, W.
Zayko, S.
Eisebitt, S.
Pfau, B.
Frömter, R.
Kläui, M.
Yasin, F. S.
McMorran, B. J.
Seki, S.
Yu, X.
Lubk, A.
Wolf, D.
Pryds, N.
Makarov, D.
Poggio, M.
author_facet Christensen, D. V.
Staub, U.
Devidas, T. R.
Kalisky, B.
Nowack, K. C.
Webb, J. L.
Andersen, U. L.
Huck, A.
Broadway, D. A.
Wagner, K.
Maletinsky, P.
van der Sar, T.
Du, C. R.
Yacoby, A.
Collomb, D.
Bending, S.
Oral, A.
Hug, H. J.
Mandru, A. -O.
Neu, V.
Schumacher, H. W.
Sievers, S.
Saito, H.
Khajetoorians, A. A.
Hauptmann, N.
Baumann, S.
Eichler, A.
Degen, C. L.
McCord, J.
Vogel, M.
Fiebig, M.
Fischer, P.
Hierro-Rodriguez, A.
Finizio, S.
Dhesi, S. S.
Donnelly, C.
Büttner, Felix
Kfir, O.
Hu, W.
Zayko, S.
Eisebitt, S.
Pfau, B.
Frömter, R.
Kläui, M.
Yasin, F. S.
McMorran, B. J.
Seki, S.
Yu, X.
Lubk, A.
Wolf, D.
Pryds, N.
Makarov, D.
Poggio, M.
contents Considering the growing interest in magnetic materials for unconventional computing, data storage, and sensor applications, there is active research not only on material synthesis but also characterisation of their properties. In addition to structural and integral magnetic characterisations, imaging of magnetization patterns, current distributions and magnetic fields at nano- and microscale is of major importance to understand the material responses and qualify them for specific applications. In this roadmap, we aim to cover a broad portfolio of techniques to perform nano- and microscale magnetic imaging using SQUIDs, spin center and Hall effect magnetometries, scanning probe microscopies, x-ray- and electron-based methods as well as magnetooptics and nanoMRI. The roadmap is aimed as a single access point of information for experts in the field as well as the young generation of students outlining prospects of the development of magnetic imaging technologies for the upcoming decade with a focus on physics, materials science, and chemistry of planar, 3D and geometrically curved objects of different material classes including 2D materials, complex oxides, semi-metals, multiferroics, skyrmions, antiferromagnets, frustrated magnets, magnetic molecules/nanoparticles, ionic conductors, superconductors, spintronic and spinorbitronic materials.
format Preprint
id arxiv_https___arxiv_org_abs_2401_04793
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle 2024 Roadmap on Magnetic Microscopy Techniques and Their Applications in Materials Science
Christensen, D. V.
Staub, U.
Devidas, T. R.
Kalisky, B.
Nowack, K. C.
Webb, J. L.
Andersen, U. L.
Huck, A.
Broadway, D. A.
Wagner, K.
Maletinsky, P.
van der Sar, T.
Du, C. R.
Yacoby, A.
Collomb, D.
Bending, S.
Oral, A.
Hug, H. J.
Mandru, A. -O.
Neu, V.
Schumacher, H. W.
Sievers, S.
Saito, H.
Khajetoorians, A. A.
Hauptmann, N.
Baumann, S.
Eichler, A.
Degen, C. L.
McCord, J.
Vogel, M.
Fiebig, M.
Fischer, P.
Hierro-Rodriguez, A.
Finizio, S.
Dhesi, S. S.
Donnelly, C.
Büttner, Felix
Kfir, O.
Hu, W.
Zayko, S.
Eisebitt, S.
Pfau, B.
Frömter, R.
Kläui, M.
Yasin, F. S.
McMorran, B. J.
Seki, S.
Yu, X.
Lubk, A.
Wolf, D.
Pryds, N.
Makarov, D.
Poggio, M.
Materials Science
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Superconductivity
Quantum Physics
Considering the growing interest in magnetic materials for unconventional computing, data storage, and sensor applications, there is active research not only on material synthesis but also characterisation of their properties. In addition to structural and integral magnetic characterisations, imaging of magnetization patterns, current distributions and magnetic fields at nano- and microscale is of major importance to understand the material responses and qualify them for specific applications. In this roadmap, we aim to cover a broad portfolio of techniques to perform nano- and microscale magnetic imaging using SQUIDs, spin center and Hall effect magnetometries, scanning probe microscopies, x-ray- and electron-based methods as well as magnetooptics and nanoMRI. The roadmap is aimed as a single access point of information for experts in the field as well as the young generation of students outlining prospects of the development of magnetic imaging technologies for the upcoming decade with a focus on physics, materials science, and chemistry of planar, 3D and geometrically curved objects of different material classes including 2D materials, complex oxides, semi-metals, multiferroics, skyrmions, antiferromagnets, frustrated magnets, magnetic molecules/nanoparticles, ionic conductors, superconductors, spintronic and spinorbitronic materials.
title 2024 Roadmap on Magnetic Microscopy Techniques and Their Applications in Materials Science
topic Materials Science
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Superconductivity
Quantum Physics
url https://arxiv.org/abs/2401.04793