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Magnetic dipolar coupling and collective effects for binary information codification in cost-effective logic devices

机译:磁偶极耦合和集体效应,可在经济高效的逻辑设备中进行二进制信息编码

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摘要

Physical limitations foreshadow the eventual end to traditional Complementary Metal Oxide Semiconductor (CMOS) scaling. Therefore, interest has turned to various materials and technologies aimed to succeed to traditional CMOS. Magnetic Quantum dot Cellular Automata (MQCA) are one of these technologies. Working MQCA arrays require very complex techniques and an excellent control on the geometry of the nanomagnets and on the quality of the magnetic thin film, thus limiting the possibility for MQCA of representing a definite solution to cost-effective, high density and low power consumption device demand. Counter-intuitively, moving towards bigger sizes and lighter technologies it is still possible to develop multi-state logicdevices, as we demonstrated, whose main advantage is cost-effectiveness. Applications may be seen in low costlogicdevices where integration and computational power are not the main issue, eventually using flexible substrates and taking advantage of the intrinsic mechanical toughness of systems where long range interactions do not need wirings. We realized cobalt micrometric MQCA arrays by means of Electron Beam Lithography, exploiting cost-effective processes such as lift-off and RF sputtering that usually are avoided due to their low control on array geometry and film roughness. Information relative to the magnetic configuration of MQCA elements including their eventual magnetic interactions was obtained from Magnetic Force Microscope (MFM) images, enhanced by means of a numerical procedure and presented in differential maps. We report the existence of bi-stable magnetic patterns, as detected by MFM while sampling the z-component of magnetic induction field, arising from dipolar inter-element magnetostatic coupling, able to store and propagate binaryinformation. This is achieved despite the array quality and element magnetic state, which are low and multi-domain, respectively. We discuss in detail shape, inter-element spacing and dot profile effects on the magneticcoupling. Numerical Finite Element Method (FEM) simulations show a possible microspin arrangement producing such magnetostatic coupling
机译:物理上的局限性预示着传统互补金属氧化物半导体(CMOS)结垢的最终终结。因此,人们的兴趣转向了旨在继承传统CMOS的各种材料和技术。磁性量子点细胞自动机(MQCA)是这些技术之一。工作中的MQCA阵列需要非常复杂的技术,并且需要对纳米磁体的几何形状和磁性薄膜的质量进行出色的控制,因此限制了MQCA代表一种确定的解决方案的可行性,从而可以解决经济高效,高密度和低功耗的设备需求。与直觉相反,正朝着更大的尺寸和更轻的技术发展,如我们所展示的,仍然有可能开发多状态逻辑器件,其主要优势是成本效益。可以在低成本逻辑设备中看到其应用,在这些设备中,集成和计算能力不是主要问题,最终使用柔性衬底并利用了系统的固有机械韧性,该系统的长距离交互不需要布线。我们通过电子束光刻技术实现了钴微米级MQCA阵列的开发,利用了成本低廉的工艺(例如剥离和RF溅射),这些工艺通常由于对阵列几何形状和薄膜粗糙度的控制程度低而可以避免。从磁力显微镜(MFM)图像获得了与MQCA元素的磁性构型有关的信息,包括它们最终的磁性相互作用,该信息通过数字方法进行了增强并显示在微分图中。我们报告了存在双稳态磁模式,这是由MFM在采样由偶极元素间静磁耦合引起的能够存储和传播二进制信息的磁感应场的z分量时检测到的。尽管阵列质量和元件磁态分别为低域和多域,但仍可以实现这一点。我们详细讨论了形状,元素间间距和点轮廓对磁耦合的影响。数值有限元方法(FEM)仿真表明,可能存在产生这种静磁耦合的微旋转装置

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