Camsari Kerem Yunus, Ganguly Samiran, Datta Supriyo
School of Electrical and Computer Engineering, Purdue University, IN, 47907.
Sci Rep. 2015 Jun 11;5:10571. doi: 10.1038/srep10571.
There has been enormous progress in the last two decades, effectively combining spintronics and magnetics into a powerful force that is shaping the field of memory devices. New materials and phenomena continue to be discovered at an impressive rate, providing an ever-increasing set of building blocks that could be exploited in designing transistor-like functional devices of the future. The objective of this paper is to provide a quantitative foundation for this building block approach, so that new discoveries can be integrated into functional device concepts, quickly analyzed and critically evaluated. Through careful benchmarking against available theory and experiment we establish a set of elemental modules representing diverse materials and phenomena. These elemental modules can be integrated seamlessly to model composite devices involving both spintronic and nanomagnetic phenomena. We envision the library of modules to evolve both by incorporating new modules and by improving existing modules as the field progresses. The primary contribution of this paper is to establish the ground rules or protocols for a modular approach that can build a lasting bridge between materials scientists and circuit designers in the field of spintronics and nanomagnetics.
在过去二十年中取得了巨大进展,有效地将自旋电子学和磁学结合成一股强大力量,正在塑造存储设备领域。新材料和新现象继续以惊人的速度被发现,提供了越来越多的构建模块,可用于设计未来类似晶体管的功能器件。本文的目的是为这种构建模块方法提供定量基础,以便新发现能够被整合到功能器件概念中,进行快速分析和严格评估。通过与现有理论和实验进行仔细的基准测试,我们建立了一组代表不同材料和现象的基本模块。这些基本模块可以无缝集成,以模拟涉及自旋电子学和纳米磁学现象的复合器件。我们设想,随着该领域的发展,模块库将通过纳入新模块和改进现有模块来不断演进。本文的主要贡献是为模块化方法建立基本规则或协议,该方法能够在自旋电子学和纳米磁学领域的材料科学家和电路设计师之间搭建一座持久的桥梁。