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过渡金属原子与金属衬底直接接触时的长自旋弛豫时间。

Long Spin-Relaxation Times in a Transition-Metal Atom in Direct Contact to a Metal Substrate.

机构信息

Department of Physics , Hamburg University , Jungiusstrasse 11 , D-20355 Hamburg , Germany.

Max-Planck Institute for Solid State Research , Heisenbergstrasse 1 , D-70569 Stuttgart , Germany.

出版信息

Nano Lett. 2018 Mar 14;18(3):1978-1983. doi: 10.1021/acs.nanolett.7b05392. Epub 2018 Feb 26.

Abstract

Long spin-relaxation times are a prerequisite for the use of spins in data storage or nanospintronics technologies. An atomic-scale solid-state realization of such a system is the spin of a transition-metal atom adsorbed on a suitable substrate. For the case of a metallic substrate, which enables the direct addressing of the spin by conduction electrons, the experimentally measured lifetimes reported to date are on the order of only hundreds of femtoseconds. Here, we show that the spin states of iron atoms adsorbed directly on a conductive platinum substrate have a surprisingly long spin-relaxation time in the nanosecond regime, which is comparable to that of a transition metal atom decoupled from the substrate electrons by a thin decoupling layer. The combination of long spin-relaxation times and strong coupling to conduction electrons implies the possibility to use flexible coupling schemes to process the spin information.

摘要

长自旋弛豫时间是将自旋用于数据存储或纳米自旋电子技术的前提。这种系统的原子级固态实现是吸附在合适衬底上的过渡金属原子的自旋。对于金属衬底的情况,它可以使自旋直接通过传导电子寻址,迄今为止报道的实验测量寿命仅为数百飞秒。在这里,我们表明,直接吸附在导电铂衬底上的铁原子的自旋态具有令人惊讶的长自旋弛豫时间,在纳秒范围内,与通过薄的去耦层与衬底电子去耦的过渡金属原子的自旋弛豫时间相当。长自旋弛豫时间与传导电子的强耦合相结合,意味着可以使用灵活的耦合方案来处理自旋信息。

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