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Connecting physics to systems with modular spin-circuits
- Source :
- npj Spintronics, Vol 2, Iss 1, Pp 1-12 (2024)
- Publication Year :
- 2024
- Publisher :
- Nature Portfolio, 2024.
-
Abstract
- Abstract An emerging paradigm in modern electronics is that of CMOS+ $${\mathsf{X}}$$ X requiring the integration of standard CMOS technology with novel materials and technologies denoted by $${\mathsf{X}}$$ X . In this context, a crucial challenge is to develop accurate circuit models for $${\mathsf{X}}$$ X that are compatible with standard models for CMOS-based circuits and systems. In this perspective, we present physics-based, experimentally benchmarked modular circuit models that can be used to evaluate a class of CMOS+ $${\mathsf{X}}$$ X systems, where $${\mathsf{X}}$$ X denotes magnetic and spintronic materials and phenomena. This class of materials is particularly challenging because they go beyond conventional charge-based phenomena and involve the spin degree of freedom which involves non-trivial quantum effects. Starting from density matrices—the central quantity in quantum transport—using well-defined approximations, it is possible to obtain spin-circuits that generalize ordinary circuit theory to 4-component currents and voltages (1 for charge and 3 for spin). With step-by-step examples that progressively become more complex, we illustrate how the spin-circuit approach can be used to start from the physics of magnetism and spintronics to enable accurate system-level evaluations. We believe the core approach can be extended to include other quantum degrees of freedom like valley and pseudospins starting from corresponding density matrices.
- Subjects :
- Electronics
TK7800-8360
Technology (General)
T1-995
Subjects
Details
- Language :
- English
- ISSN :
- 29482119
- Volume :
- 2
- Issue :
- 1
- Database :
- Directory of Open Access Journals
- Journal :
- npj Spintronics
- Publication Type :
- Academic Journal
- Accession number :
- edsdoj.9778b38e8814081a06e80d96366d118
- Document Type :
- article
- Full Text :
- https://doi.org/10.1038/s44306-024-00059-8