Catalano Sara, Gomez-Perez Juan M, Aguilar-Pujol M Xochitl, Chuvilin Andrey, Gobbi Marco, Hueso Luis E, Casanova Fèlix
CIC nanoGUNE, Donostia-San Sebastián, Basque Country 20018, Spain.
IKERBASQUE, Basque Foundation for Science, Bilbao, Basque Country 48009, Spain.
ACS Appl Mater Interfaces. 2022 Feb 16;14(6):8598-8604. doi: 10.1021/acsami.1c23411. Epub 2022 Feb 4.
The spin Hall magnetoresistance (SMR) emerged as a reference tool to investigate the magnetic properties of materials with an all-electrical setup. Its sensitivity to the magnetization of thin films and surfaces may turn it into a valuable technique to characterize van der Waals magnetic materials, which support long-range magnetic order in atomically thin layers. However, realistic surfaces can be affected by defects and disorder, which may result in unexpected artifacts in the SMR, rather than the sole appearance of electrical noise. Here, we study the SMR response of heterostructures combining a platinum (Pt) thin film with the van der Waals antiferromagnet MnPSe and observe a robust SMR-like signal, which turns out to originate from the presence of strong interfacial disorder in the system. We use transmission electron microscopy (TEM) to characterize the interface between MnPSe and Pt, revealing the formation of a few nanometer-thick platinum-chalcogen amorphous layer. The analysis of the transport and TEM measurements suggests that the signal arises from a disordered magnetic system formed at the Pt/MnPSe interface, washing out the interaction between the spins of the Pt electrons and the MnPSe magnetic lattice. Our results show that the damaged interfaces can yield an important contribution to SMR, questioning a widespread assumption on the role of disorder in such measurements.
自旋霍尔磁电阻(SMR)作为一种参考工具出现,用于通过全电学装置研究材料的磁性。它对薄膜和表面磁化的敏感性可能使其成为表征范德华磁性材料的一种有价值的技术,这类材料在原子级薄的层中支持长程磁有序。然而,实际表面可能会受到缺陷和无序的影响,这可能导致SMR中出现意想不到的伪像,而不仅仅是电噪声的出现。在这里,我们研究了将铂(Pt)薄膜与范德华反铁磁体MnPSe相结合的异质结构的SMR响应,并观察到一个类似SMR的强信号,结果表明该信号源于系统中存在的强界面无序。我们使用透射电子显微镜(TEM)来表征MnPSe和Pt之间的界面,揭示了形成了几纳米厚的铂 - 硫族元素非晶层。对输运和TEM测量的分析表明,该信号来自于在Pt/MnPSe界面形成的无序磁系统,消除了Pt电子自旋与MnPSe磁晶格之间的相互作用。我们的结果表明,受损界面可以对SMR做出重要贡献,这对关于无序在此类测量中的作用的一个普遍假设提出了质疑。