Magnetization dynamics of single-domain nanodots and minimum energy dissipation during either irreversible or reversible switching
Articolo
Data di Pubblicazione:
2017
Abstract:
Single- or multi-layered planar magnetic dots, with lateral dimensions ranging from tens to hundreds of nanometers, are used as elemental switches in current and forthcoming devices for information and communication technology (ICT), including magnetic memories, spin-torque oscillators and nano-magnetic logic gates. In this review article, we will first discuss energy dissipation during irreversible switching protocols of dots of different dimensions, ranging from a few tens of nanometers to the micrometric range. Then we will focus on the fundamental energy limits of adiabatic (slow) erasure and reversal of a magnetic nanodot, showing that dissipationless operation is achievable, provided that both dynamic reversibility (arbitrarily slow application of external fields) and entropic reversibility (no free entropy increase) are insured. However, recent theoretical and experimental tests of magnetic-dot erasure reveal that intrinsic defects related to materials imperfections such as roughness or polycrystallinity, may cause an excess of dissipation if compared to the minimum theoretical limit. We will conclude providing an outlook on the most promising strategies to achieve a new generation of power-saving nanomagnetic logic devices based on clusters of interacting dots and on straintronics.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
Landauer limit; magnetic nanodots; magnetization dynamics; nanomagnetic logic
Elenco autori:
Carlotti, Giovanni; Tacchi, Silvia; Gubbiotti, Gianluca
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