Completed Physics & Astronomy Computing & AI

Superconducting Spintronics

In plain English

AI plain-English summary

Every time a current flows through a wire in a computer chip, some energy is lost as heat. This programme aims to build a new type of computing component that eliminates that waste by combining two normally incompatible phenomena: superconductivity, where electricity flows with zero resistance, and magnetism, which is used to store and process data in today’s hard drives. The problem is that conventional spintronics—which uses the spin of electrons rather than just their charge—generates significant heat from the currents needed to create spin-polarised electrons. Superconductors can carry charge without heat, but their electron pairs have opposite spins, so they cannot carry a spin current. Recent discoveries, however, show that in carefully engineered superconductor/magnet devices, spin, charge, and superconducting coherence can work together. If successful, the team will demonstrate two prototype devices: a memory cell that stores data indefinitely but switches with ultra-low energy, and a logic device that could eventually replace semiconductor-based circuits. The goal is to combine the scalability of conventional spintronics with the speed and zero-resistance of superconductors. The work is fundamental science—exploring which of many predicted effects are viable—but it could define a new technology field for ultra-efficient computing.

View original technical description
This programme will study the synergy between superconductivity and magnetism which can be engineered in certain devices and use this to demonstrate superconducting spintronics as future computing technology. In ferromagnetic metals, an internal exchange field generates an imbalance in the number of electrons with up and down spins which means that currents that emerge from ferromagnets into non-magnetic metals carry a net spin in addition to charge. Such spin polarized currents are utilized for logic and sensor applications (for example in hard disk drives), and finding ways to generate and control them is a major goal of spin electronics (spintronics). However, the heat loss from the charge currents used to generate spin currents can be considerable and this is one reason why applications of spintronics, such as integrated memory chips, are presently limited. In superconductors charge can flow without dissipation but, since the Cooper pairs consist of electrons with antiparallel spins, charge currents cannot carry spin. Further, since Cooper pairs are easily disrupted by magnetism, the coupling of superconductivity and ferromagnetism might appear useless for applications in spintronics. However, during the past few years a series of discoveries have shown that, not only can magnetism and superconductivity be made to cooperate, but in carefully engineered superconductor/magnet systems new functionality can be created in which spin, charge and superconducting phase coherence can work together. By combining these different degrees of freedom a whole new spectrum of recent predictions is waiting to be explored experimentally. Through this ambitious programme we have the chance to transform this array of predictions and discoveries about the interaction between superconductivity and magnetism into a demonstration technology which could eventually be developed as a replacement for large-scale semiconductor-based logic. Our ideas for the proposed field of superconducting spintronics go far beyond the simple ideas of eliminating resistive losses inherent in conventional spin electronic (spintronic) circuits, but instead aim to exploit unique attributes of the superconducting state to control spin currents and spin accumulation. The programme brings together teams from three different specialties - superconducting devices, high speed spintronics and theory of strong correlations in mesoscopic physics - which will work together to identify and investigate the key underpinning science. This basic science which will emerge from the programme will allow us to understand which of the many predicted effects are viable for long-term development. The flexibility of a Programme Grant will allow us to work in parallel on all the potential elements and then progressively focus on those that show most promise for demonstrator devices: firstly a memory device which can store data indefinitely but can be switched with ultra-low energy and, secondly, some form of logic device. The latter may be a transistor-like structure or one of the all-spin logic devices proposed for conventional spintronics. The ambition for these superconducting spintronic devices is that they will combine the scalability inherent in conventional spintronics and the high speed and low power offered by superconductors. The risks are such that we may not be able to realise all of these ideas but, by working in parallel on a wide range of different phenomena which couple superconductivity and spin transport, we have a unique opportunity to define a new technology field.

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Researchers

Andrew Ferguson (Co-Investigator)Hidekazu Kurebayashi (Co-Investigator)Jason Robinson (Principal Investigator)Lesley Cohen (Co-Investigator)Mark Blamire (Principal Investigator)Matthias Eschrig (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Spin Transfer Torque in Ferromagnetic Semiconductors and Hybrid Devices for Nanospintronics
Theory Of Spintronics
Superconducting Spintronics for Highly Energery Efficient Cryogenic Memory Applications
Copy of Andreev Reflection in Superconducting Spin Polarised Devices
Ferromagnetic Oxide & Unconventional Superconductor Heterostructures for Superconducting Spintronics

Original classification

Research Grant

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