Energy consumption analysis of graphene based all spin logic device with voltage controlled magnetic anisotropy
Author(s) -
Zhizhong Zhang,
Yue Zhang,
Zhenyi Zheng,
Guanda Wang,
Li Su,
Youguang Zhang,
Weisheng Zhao
Publication year - 2017
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4976581
Subject(s) - graphene , energy consumption , materials science , voltage , ferromagnetism , magnetic anisotropy , magnetization , spin (aerodynamics) , condensed matter physics , optoelectronics , nanotechnology , electrical engineering , magnetic field , physics , mechanical engineering , engineering , quantum mechanics
All spin logic device (ASLD) is a promising option to realize the ultra-low power computing systems. However, the low spin transport efficiency and the non-local switching of the detector have become two key challenges of the ASLD. In this paper, we analyze the energy consumption of a graphene based ASLD with the ferromagnetic layer switching assistance by voltage control magnetic anisotropy (VCMA) effect. This structure has significant potential towards ultra-low power consumption: the applied voltage can not only shorten switching time of the ferromagnetic layer, but also decreases the critical injection current; the graphene channel enhances greatly the spin transport efficiency. By applying the approximate circuit model, the impact of material configurations, interfaces and geometry can be synthetically studied. An accurate physic model was also developed, based on which, we carry out the micro-magnetic simulations to analyze the magnetization dynamics. Combining these electrical and magnetic investigations, the energy consumption of the proposed ASLD can be estimated. With the optimizing parameters, the energy consumption can be reduced to 2.5 pJ for a logic operation
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