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解决嵌入金属石墨烯纳米带中的电子自旋问题。

Addressing Electron Spins Embedded in Metallic Graphene Nanoribbons.

作者信息

Friedrich Niklas, Menchón Rodrigo E, Pozo Iago, Hieulle Jeremy, Vegliante Alessio, Li Jingcheng, Sánchez-Portal Daniel, Peña Diego, Garcia-Lekue Aran, Pascual José Ignacio

机构信息

CIC nanoGUNE-BRTA, 20018 Donostia-San Sebastián, Spain.

Donostia International Physics Center (DIPC), 20018 Donostia-San Sebastián, Spain.

出版信息

ACS Nano. 2022 Sep 27;16(9):14819-14826. doi: 10.1021/acsnano.2c05673. Epub 2022 Aug 29.

Abstract

Spin-hosting graphene nanostructures are promising metal-free systems for elementary quantum spintronic devices. Conventionally, spins are protected from quenching by electronic band gaps, which also hinder electronic access to their quantum state. Here, we present a narrow graphene nanoribbon substitutionally doped with boron heteroatoms that combines a metallic character with the presence of localized spin 1/2 states in its interior. The ribbon was fabricated by on-surface synthesis on a Au(111) substrate. Transport measurements through ribbons suspended between the tip and the sample of a scanning tunneling microscope revealed their ballistic behavior, characteristic of metallic nanowires. Conductance spectra show fingerprints of localized spin states in the form of Kondo resonances and inelastic tunneling excitations. Density functional theory rationalizes the metallic character of the graphene nanoribbon due to the partial depopulation of the valence band induced by the boron atoms. The transferred charge builds localized magnetic moments around the boron atoms. The orthogonal symmetry of the spin-hosting state's and the valence band's wave functions protects them from mixing, maintaining the spin states localized. The combination of ballistic transport and spin localization into a single graphene nanoribbon offers the perspective of electronically addressing and controlling carbon spins in real device architectures.

摘要

自旋承载的石墨烯纳米结构是用于基本量子自旋电子器件的有前景的无金属系统。传统上,自旋通过电子带隙来防止猝灭,而带隙也阻碍了电子对其量子态的访问。在此,我们展示了一种通过硼杂原子进行替代掺杂的窄石墨烯纳米带,它在内部兼具金属特性和局域自旋1/2态。该纳米带是通过在Au(111)衬底上进行表面合成制备的。通过悬浮在扫描隧道显微镜的针尖与样品之间的纳米带进行的输运测量揭示了它们的弹道行为,这是金属纳米线的特征。电导谱以近藤共振和非弹性隧穿激发的形式显示了局域自旋态的特征。密度泛函理论解释了由于硼原子诱导价带部分空穴化,石墨烯纳米带具有金属特性。转移的电荷在硼原子周围形成局域磁矩。自旋承载态和价带波函数的正交对称性保护它们不发生混合,从而保持自旋态局域化。将弹道输运和自旋局域化结合到单个石墨烯纳米带中,为在实际器件架构中对碳自旋进行电子寻址和控制提供了前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a83f/9527809/9759cfaabd5a/nn2c05673_0001.jpg

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