The circuit paradigm and design methods can be applied beyond electrical devices. The viability of a spin-based computing device (SBC) within a circuit environment can be assessed by constructing its equivalent circuit model and comparing it to that of a conventional electronic device. System-level characteristics of electronic devices, such as power gain, scalability, and error tolerance, can be analyzed using SPICE simulations at the circuit level. Circuit models serve as a bridge between physics and electronic applications, enabling the optimization of magnetoelectric interfaces (MEIs), which are critical components of all SBCs. This chapter will present examples of how circuit models can be constructed for nanomagnets, magnonic (spin wave) devices, and spin-torque oscillators (STOs) and how they can be used to address system-level challenges. (Significant parts of this chapter are based on the papers: Csaba, Gyorgy, Markus Becherer, and Wolfgang Porod. “Development of CAD tools for nanomagnetic logic devices.” International Journal of Circuit Theory and Applications 41, no. 6 (2013): 634–645. and Csaba, Gyorgy, Wolfgang Porod, Paolo Lugli, and Árpád I. Csurgay. “Activity in field-coupled nanomagnet arrays.” International Journal of Circuit Theory and Applications 35, no. 3 (2007): 281–293.)

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

The Utility of the Circuit Paradigm in Spin-Based Computing Devices

  • György Csaba

摘要

The circuit paradigm and design methods can be applied beyond electrical devices. The viability of a spin-based computing device (SBC) within a circuit environment can be assessed by constructing its equivalent circuit model and comparing it to that of a conventional electronic device. System-level characteristics of electronic devices, such as power gain, scalability, and error tolerance, can be analyzed using SPICE simulations at the circuit level. Circuit models serve as a bridge between physics and electronic applications, enabling the optimization of magnetoelectric interfaces (MEIs), which are critical components of all SBCs. This chapter will present examples of how circuit models can be constructed for nanomagnets, magnonic (spin wave) devices, and spin-torque oscillators (STOs) and how they can be used to address system-level challenges. (Significant parts of this chapter are based on the papers: Csaba, Gyorgy, Markus Becherer, and Wolfgang Porod. “Development of CAD tools for nanomagnetic logic devices.” International Journal of Circuit Theory and Applications 41, no. 6 (2013): 634–645. and Csaba, Gyorgy, Wolfgang Porod, Paolo Lugli, and Árpád I. Csurgay. “Activity in field-coupled nanomagnet arrays.” International Journal of Circuit Theory and Applications 35, no. 3 (2007): 281–293.)