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  Interfacial spin orbit coupling based superconducting spintronic devices


   Department of Physics

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  Dr N Banerjee, Dr F Dejene  No more applications being accepted  Self-Funded PhD Students Only

About the Project

Spin-based electronics (spintronics) which uses the electron spin for reading, writing and processing information plays a crucial role in modern computing and data storage technologies. However, spintronic devices still rely on dissipative charge currents as the source of spin currents and suffer from large heat dissipation. This problem could be potentially addressed using superconductors.

However, conventional superconductivity does not carry a net spin since it is formed of electron pairs with anti-parallel spins - the singlet Cooper pair. In the last decade several experiments[1,2] confirmed the existence of an exotic spin-triplet superconductivity in superconductor-ferromagnet (S/F) thin film hybrids which is formed of equal spin-paired electrons (triplet Cooper pairs) and carries a net spin. However, generating this triplet superconductivity usually requires S/F hybrid structures with complex magnetic textures[3].

Recently, we demonstrated that S/F hybrids with interfacial spin-orbit coupling and without complex magnetic textures can be used to generate triplets[4]. In addition to strikingly simplifying the thin film structures, presence of spin-orbit coupling in S/F structures raises intriguing new possibilities such as magnetisation reorientation purely driven by superconductivity or magnetically tunable superconducting transistors.

This PhD project will create functional devices (e.g. Josephson junctions) to utilise spin-polarised supercurrents generated by spin-orbit coupling to perform novel functionalities like spin transfer torque. The student will state-of-the-art thin film growth facilities to deposit thin film multilayers and use the departmental cleanroom for nanofabrication. The student will also develop expertise in low temperature magnetic and electrical characterisation of devices.

Through this project, the student will be able to contribute to the rapidly developing field of superconducting spintronics and get involved with our extensive international collaboration network in Europe and USA. This project is ideal for students with a strong interest in experimental condensed matter physics and materials science.

Supervisors

Primary supervisor: Dr Niladri Banerjee

Secondary supervisor: Dr Fasil Dejene

Entry requirements for United Kingdom

Applicants should have or expect to achieve at least a 2:1 honours degree (or equivalent international qualification) in physics, materials engineering, or a related discipline.

English language requirements

Applicants must meet the minimum English language requirements. Further details are available on the International website.

Find out more about research degree funding

How to apply

All applications should be made online. Under programme name, select Physics.

Please quote the advertised reference number PH/NB-Un1/2022 in your application.

Apply now


Physics (29)

Funding Notes

Tuition fees cover the cost of your teaching, assessment and operating University facilities such as the library, IT equipment and other support services. University fees and charges can be paid in advance and there are several methods of payment, including online payments and payment by instalment. Fees are reviewed annually and are likely to increase to take into account inflationary pressures.

References

[1] J. Linder and J. W. A. Robinson Nature Physics, 11, 307 (2015)
[2] N. Banerjee, et al., Physics World, 32, 4, (2019)
[3] N. Banerjee, et al., Nature Communications, 5:4771 (2014)
[4] N. Banerjee, et al., Phys. Rev. B, 97, 184521 (2018)

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