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硼原子在石墨烯上化学吸附诱导的局域磁矩。

Localized magnetic moment induced by boron adatoms chemisorbed on graphene.

机构信息

School of Physics and Microelectronics, Zhengzhou University, Zhengzhou 450001, People's Republic of China.

School of Physics, State Key Laboratory of Crystal Materials, Shandong University, Jinan 250100, People's Republic of China.

出版信息

J Phys Condens Matter. 2023 Apr 26;35(29). doi: 10.1088/1361-648X/accdad.

Abstract

Inducing local spin-polarization in pristine graphene is highly desirable and recent experiment shows that boron adatom chemical attachment to graphene exhibits local high spin state. Using hybrid exchange-correlation functional, we show that boron (B) monomer chemisorbed on the bridge site of graphene is energically favorable, and indeed induces a weak local spin-polarization ∼0.56B. The localized magnetic moment can be attributed to the charge transfer from boron atom to graphene, resulting in local spin charge dominantly surrounding to the adsorbed B and neighboring carbon (C) atoms. We also surprisingly find that boron dimer can even much more stable upright anchor the same site of graphene, giving rise to sizable spin magnetic moment 2.00B. Although the apparent spin state remains mainly contributed by Band Corbitals as the case of boron monomer, the delicate and substantial charge transfer of theplays a fundamental role in producing such sizable local spin-polarization. We employed various van der Waals corrections to check and confirm the validity of appeared local spin-polarization. In terms of the almost identical simulated scanning tunneling microscope between boron monomer and dimer, we might tend to support the fact that boron dimer can also be chemisorbed on graphene with much larger and stable localized spin magnetic moment.

摘要

在原始石墨烯中诱导局域自旋极化是非常可取的,最近的实验表明,硼原子吸附到石墨烯上表现出局域高自旋态。我们使用杂化交换相关泛函,表明硼(B)单体化学吸附在石墨烯的桥位上是能量有利的,实际上会诱导弱局域自旋极化约 0.56B。局域磁矩可以归因于硼原子向石墨烯的电荷转移,导致局域自旋电荷主要围绕吸附的 B 和相邻的 C 原子。我们还惊讶地发现,硼二聚体甚至可以更稳定地垂直锚定石墨烯的相同位置,产生相当大的自旋磁矩 2.00B。尽管明显的自旋态主要由 Band 轨道贡献,如硼单体的情况,但 plays 的微妙而实质性的电荷转移在产生如此大的局域自旋极化方面起着至关重要的作用。我们采用了各种范德华修正来检查和确认出现的局域自旋极化的有效性。考虑到硼单体和二聚体之间几乎相同的模拟扫描隧道显微镜,我们可能倾向于支持硼二聚体也可以通过更大和更稳定的局域自旋磁矩化学吸附在石墨烯上的事实。

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