One-Dimensional Mn5Si3 Nanorods: Fabrication, Microstructure, and Magnetic Properties via a Novel Casting-Extraction Route
-
Published:2023-05-05
Issue:9
Volume:16
Page:3540
-
ISSN:1996-1944
-
Container-title:Materials
-
language:en
-
Short-container-title:Materials
Author:
Li Hang12, Niu Dongtao1, Zhang Zhongtao2, Yang Fan1, Wang Hongxia1, Cheng Weili1
Affiliation:
1. School of Material Science and Engineering, Taiyuan University of Technology, Taiyuan 030024, China 2. Golden Dragon Precise Copper Tube Group Inc., Chongqing 404100, China
Abstract
This study presents a simple and innovative approach for producing one-dimensional Mn5Si3 nanorods through a casting-extraction process. In this technique, the Mn5Si3 nanorods were synthesized by reacting Mn and Si during brass solidification and extracted by electrochemical etching of the brass matrix. The effect of the cooling rate during casting on the nanorods’ dimension, morphology, and magnetic properties was investigated. The results demonstrate that the prepared high-purity Mn5Si3 nanorods had a single-crystal D88 structure and exhibited ferromagnetism at room temperature. The morphology of the nanorods was an elongated hexagonal prism, and their preferred growth was along the [0001] crystal direction. Increasing the cooling rate from 5 K/s to 50 K/s lead to a decrease in the dimension of the nanorods but an increase in their ferromagnetism. At the optimal cooling rate of 50 K/s, the nanorods had a diameter and length range of approximately 560 nm and 2~11 μm, respectively, with a highest saturation magnetization of 7.5 emu/g, and a maximum coercivity of 120 Oe. These properties make the fabricated Mn5Si3 nanorods potentially useful for magnetic storage applications, and this study also provides a new perspective on the preparation of one-dimensional nanomaterials.
Funder
Natural Science Foundation of China Natural Science Foundation of Shanxi province
Subject
General Materials Science
Reference51 articles.
1. Machin, A., Fontanez, K., Arango, J.C., Ortiz, D., Leon, D.J., Pinilla, S., Nicolosi, V., Petrescu, F.I., Morant, C., and Marquez, F. (2021). One-dimensional (1D) nanostructured materials for energy applications. Materials, 14. 2. Sohn, H., Park, C., Oh, J.M., Kang, S.W., and Kim, M.J. (2019). Silver nanowire networks: Mechano-electric properties and applications. Materials, 12. 3. Stroe, M., Burlanescu, T., Paraschiv, M., Lorinczi, A., Matei, E., Ciobanu, R., and Baibarac, M. (2023). Optical and structural properties of composites based on poly(urethane) and TiO2 nanowires. Materials, 16. 4. Maraj, M., Nabi, G., Usman, K., Wang, E., Wei, W., Wang, Y., and Sun, W. (2020). High quality growth of cobalt doped GaN nanowires with enhanced ferromagnetic and optical response. Materials, 13. 5. Panzic, I., Capan, I., Brodar, T., Bafti, A., and Mandic, V. (2021). Structural and electrical characterization of pure and Al-doped ZnO nanorods. Materials, 14.
|
|