Rezapour M Reza
Department of Atomic, Molecular and Nuclear Physics, Faculty of Science, Campus de Fuente Nueva, University of Granada, 18071 Granada, Spain.
J Phys Chem C Nanomater Interfaces. 2022 Sep 29;126(38):16429-16436. doi: 10.1021/acs.jpcc.2c04691. Epub 2022 Sep 15.
The development of quantum information and quantum computing technology requires special materials to design and manufacture nanosized spintronic devices. Possessing remarkable structural, electronic, and magnetic characteristics, graphitic carbon nitride (g-CN) can be a promising candidate as a building block of futuristic nanoelectronics and spintronic systems. Here, using first-principles calculations, we perform a comprehensive study on the structural stability as well as electronic and magnetic properties of triazine-based g-CN nanoribbons (gt-CNRs). Our calculations show that gt-CNRs with different edge conformation exhibit distinct electronic and magnetic characteristics, which can be tuned by the edge H-passivation rate. By investigating gt-CNRs with various possible edge configurations and H-termination rates, we show that while the ferromagnetic (FM) ordering of gt-CNRs stays preserved for all of the studied configurations, half metallicity can only be achieved in nanoribbons with specific edge structure under full H-passivation rate. For spintronic application purposes, we also study spin-transport properties of half-metal gt-CNRs. By determining the suitable gt-CNR configuration, we show the possibility of developing a perfect gt-CNR-based spin filter with a spin filter efficiency (SFE) of 100%. Considering the above-mentioned notable electronic and magnetic characteristics as well as its high thermal stability, we show that gt-CNR would be a remarkable material to fabricate multifunctional spintronic devices.
量子信息和量子计算技术的发展需要特殊材料来设计和制造纳米级自旋电子器件。石墨相氮化碳(g-CN)具有卓越的结构、电子和磁性特性,有望成为未来纳米电子学和自旋电子系统的构建材料。在此,我们采用第一性原理计算方法,对基于三嗪的g-CN纳米带(gt-CNRs)的结构稳定性以及电子和磁性特性进行了全面研究。我们的计算表明,具有不同边缘构象的gt-CNRs展现出独特的电子和磁性特征,这些特征可通过边缘氢钝化率进行调控。通过研究具有各种可能边缘构型和氢终止率的gt-CNRs,我们发现,尽管在所有研究构型中gt-CNRs的铁磁(FM)序均得以保留,但只有在完全氢钝化率下具有特定边缘结构的纳米带中才能实现半金属性。出于自旋电子应用目的,我们还研究了半金属gt-CNRs的自旋输运特性。通过确定合适的gt-CNR构型,我们展示了开发一种自旋过滤效率(SFE)为100%的完美gt-CNR基自旋过滤器的可能性。考虑到上述显著的电子和磁性特性以及其高热稳定性,我们表明gt-CNR将是制造多功能自旋电子器件的卓越材料。