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磁各向异性在一维分子链原子自旋传感中的作用

Role of the Magnetic Anisotropy in Atomic-Spin Sensing of 1D Molecular Chains.

作者信息

Wäckerlin Christian, Cahlík Aleš, Goikoetxea Joseba, Stetsovych Oleksandr, Medvedeva Daria, Redondo Jesús, Švec Martin, Delley Bernard, Ondráček Martin, Pinar Andres, Blanco-Rey Maria, Kolorenč Jindřich, Arnau Andrés, Jelínek Pavel

机构信息

Institute of Physics, Czech Academy of Sciences, Cukrovarnická 10, 16200 Prague, Czech Republic.

Surface Science and Coating Technologies, Empa, Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, 8600 Dübendorf, Switzerland.

出版信息

ACS Nano. 2022 Oct 25;16(10):16402-16413. doi: 10.1021/acsnano.2c05609. Epub 2022 Oct 6.

Abstract

One-dimensional metal-organic chains often possess a complex magnetic structure susceptible to modification by alteration of their chemical composition. The possibility to tune their magnetic properties provides an interesting playground to explore quasi-particle interactions in low-dimensional systems. Despite the great effort invested so far, a detailed understanding of the interactions governing the electronic and magnetic properties of the low-dimensional systems is still incomplete. One of the reasons is the limited ability to characterize their magnetic properties at the atomic scale. Here, we provide a comprehensive study of the magnetic properties of metal-organic one-dimensional (1D) coordination polymers consisting of 2,5-diamino-1,4-benzoquinonediimine ligands coordinated with Co or Cr atoms synthesized under ultrahigh-vacuum conditions on a Au(111) surface. A combination of integral X-ray spectroscopy with local-probe inelastic electron tunneling spectroscopy corroborated by multiplet analysis, density functional theory, and inelastic electron tunneling simulations enables us to obtain essential information about their magnetic structures, including the spin magnitude and orientation at the magnetic atoms, as well as the magnetic anisotropy.

摘要

一维金属有机链通常具有复杂的磁结构,易受其化学成分改变的影响。调节其磁性能的可能性为探索低维系统中的准粒子相互作用提供了一个有趣的平台。尽管迄今为止已经投入了巨大努力,但对控制低维系统电子和磁性能的相互作用的详细理解仍然不完整。原因之一是在原子尺度上表征其磁性能的能力有限。在这里,我们对在超高真空条件下在Au(111)表面合成的由与Co或Cr原子配位的2,5-二氨基-1,4-苯醌二亚胺配体组成的金属有机一维(1D)配位聚合物的磁性能进行了全面研究。结合积分X射线光谱与通过多重态分析、密度泛函理论和非弹性电子隧穿模拟得到证实的局部探针非弹性电子隧穿光谱,使我们能够获得有关其磁结构的基本信息,包括磁性原子处的自旋大小和方向以及磁各向异性。

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