Finco Aurore, Haykal Angela, Tanos Rana, Fabre Florentin, Chouaieb Saddem, Akhtar Waseem, Robert-Philip Isabelle, Legrand William, Ajejas Fernando, Bouzehouane Karim, Reyren Nicolas, Devolder Thibaut, Adam Jean-Paul, Kim Joo-Von, Cros Vincent, Jacques Vincent
Laboratoire Charles Coulomb, Université de Montpellier and CNRS, 34095, Montpellier, France.
Department of Physics, JMI, Central University, New Delhi, India.
Nat Commun. 2021 Feb 3;12(1):767. doi: 10.1038/s41467-021-20995-x.
Antiferromagnetic materials are promising platforms for next-generation spintronics owing to their fast dynamics and high robustness against parasitic magnetic fields. However, nanoscale imaging of the magnetic order in such materials with zero net magnetization remains a major experimental challenge. Here we show that non-collinear antiferromagnetic spin textures can be imaged by probing the magnetic noise they locally produce via thermal populations of magnons. To this end, we perform nanoscale, all-optical relaxometry with a scanning quantum sensor based on a single nitrogen-vacancy (NV) defect in diamond. Magnetic noise is detected through an increase of the spin relaxation rate of the NV defect, which results in an overall reduction of its photoluminescence signal under continuous laser illumination. As a proof-of-concept, the efficiency of the method is demonstrated by imaging various spin textures in synthetic antiferromagnets, including domain walls, spin spirals and antiferromagnetic skyrmions. This imaging procedure could be extended to a large class of intrinsic antiferromagnets and opens up new opportunities for studying the physics of localized spin wave modes for magnonics.
反铁磁材料因其快速的动力学特性以及对寄生磁场的高鲁棒性,成为下一代自旋电子学领域颇具前景的平台。然而,对这类净磁化强度为零的材料中的磁序进行纳米级成像仍是一项重大的实验挑战。在此,我们展示了非共线反铁磁自旋纹理可通过探测由磁振子的热布居所局部产生的磁噪声来成像。为此,我们使用基于金刚石中单个氮空位(NV)缺陷的扫描量子传感器进行纳米级全光弛豫测量。通过NV缺陷自旋弛豫率的增加来检测磁噪声,这会导致在连续激光照射下其光致发光信号整体减弱。作为概念验证,该方法的有效性通过对合成反铁磁体中的各种自旋纹理进行成像得以证明,这些纹理包括畴壁、自旋螺旋和反铁磁斯格明子。这种成像方法可扩展到一大类本征反铁磁体,并为研究磁振子中局域自旋波模式的物理特性开辟了新机遇。