NiS ultrafine nanorod with translational and rotational symmetry

Author:

Kang Jianxin1,Hu Qi1,Zhang Ruixuan23,Gao Ang4,Huang Zhongning1,Su Ziming1,Pei Ke2,Zhang Qinghua5,Liu Li-Min6,Che Renchao23,Gu Lin4,Guo Er-Jia5,Guo Lin1

Affiliation:

1. School of Chemistry, Beihang University , Beijing 100191 , China

2. Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Academy for Engineering & Technology, Fudan University , Shanghai 200438 , China

3. Zhejiang Laboratory , Hangzhou 311500 , China

4. Beijing National Center for Electron Microscopy and Laboratory of Advanced Materials, School of Materials Science and Engineering, Tsinghua University , Beijing 100084 , China

5. Beijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of Sciences , Beijing 100190 , China

6. School of Physics, Beihang University , Beijing 100191 , China

Abstract

ABSTRACT Anisotropy is a significant and prevalent characteristic of materials, conferring orientation-dependent properties, meaning that the creation of original symmetry enables 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.

Funder

National Natural Science Foundation of China

Chinese Ministry of Science and Technology

Beijing Natural Science Foundation

National Key Basic Research Program of China

Publisher

Oxford University Press (OUP)

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