具有平移和旋转对称性的 NiS 超细纳米棒

Jianxin Kang, Qi Hu, Ruixuan Zhang, Ang Gao, Zhongning Huang, Ziming Su, Ke Pei, Qinghua Zhang, Li-Min Liu, Renchao Che, Lin Gu, Er-Jia Guo, Lin Guo
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引用次数: 0

摘要

各向异性是材料的一个重要而普遍的特征,它赋予材料取向相关的特性,这意味着通过创造原始对称性可以实现自然界所不具备的关键功能。即使原子加工技术不断进步,在单一结构中合成不同方向的分离对称性仍然是一项巨大的挑战。在这里,我们成功地制造出了沿两个方向具有分离对称性的 NiS 超细纳米棒。纳米棒的原子结构在径向呈现旋转对称性,而轴向则呈现发散平移对称性,超越了目前已知的传统晶体结构。它不符合三维空间群和点群的传统描述,因此我们将其定义为平移对称性和旋转对称性分离的新结构。为了进一步证实电子结构中的原子对称分离,我们在单个纳米棒中观察到了不同方向的条纹磁畴和涡旋磁畴的组合,这与原子结构是一致的。在原子层面操纵纳米结构为精细调节新特性引入了一种新方法,从而提出了新的纳米技术机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
NiS ultrafine nanorod with translational and rotational symmetry
Anisotropy is a significant and prevalent characteristic of materials, conferring orientation-dependent properties, meaning that the creation of original symmetry enables the key functionality that is not found in nature. Even with the advancements in atomic machining, synthesis of separated symmetry in different directions within a single structure remains an extraordinary challenge. Here, we successfully fabricate NiS ultrafine nanorods with separated symmetry along two directions. The atomic structure of the nanorod exhibits rotational symmetry in the radial direction, while its axial direction is characterized by divergent translational symmetry, surpassing the conventional crystalline structures known to date. It does not fit the traditional description of the space group and the point group in three dimensions, so we define it as a new structure in which translational symmetry and rotational symmetry are separated. Further corroborating the atomic symmetric separation in the electronic structure, we observed the combination of stripe and vortex magnetic domains in a single nanorod with different directions, in accordance with the atomic structure. The manipulation of nanostructure at the atomic level introduces a novel approach to regulate new properties finely, leading to the proposal of new nanotechnology mechanisms.
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