| Literature DB >> 26738567 |
Arabinda Haldar1, Adekunle Olusola Adeyeye1.
Abstract
Information processing based on nanomagnetic networks is an emerging area of spintronics, as the energy consumption and integration density of the current semiconductor technology are reaching their fundamental limits. Nanomagnet-based devices rely on manipulating the magnetic ground states for device operations. While the static behavior of nanomagnets has been explored, little information is available on their dynamic behavior. Here, we demonstrate an additional functionality based on their collective dynamic response and explore the concept utilizing networks of bistable rhomboid nanomagnets. The control of the magnetic ground states of the networks was achieved by the geometrical design of the nanomagnets instead of the conventional interelement dipolar coupling. Dynamic responses of both the ferromagnetic and antiferromagnetic ground states were monitored using broadband ferromagnetic resonance spectroscopy, the Brillouin light scattering technique, and direct magnetic force microscopy. Micromagnetic simulations and numerical calculations validate our experimental observations. This method would have potential implications for low-power magnonic devices based on reconfigurable microwave properties.Keywords: ferromagnetic resonance spectroscopy; magnetic force microscopy; magnetization dynamics; magnetostatic interactions; nanomagnetic logic; nanomagnetic networks; spintronics
Year: 2016 PMID: 26738567 DOI: 10.1021/acsnano.5b07849
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881