Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/180930
Title: Interfacial spintronic THz emission
Authors: Agarwal, Piyush
Medwal, Rohit
Dongol, Keynesh
Mohan, John Rex
Yang, Yingshu
Asada, Hironori
Fukuma, Yasuhiro
Singh, Ranjan
Keywords: Physics
Issue Date: 2024
Source: Agarwal, P., Medwal, R., Dongol, K., Mohan, J. R., Yang, Y., Asada, H., Fukuma, Y. & Singh, R. (2024). Interfacial spintronic THz emission. Advanced Optical Materials, 12(22), 2400077-. https://dx.doi.org/10.1002/adom.202400077
Project: MOE-T2EP50121-0009 
Journal: Advanced Optical Materials
Abstract: The broken inversion symmetry at the ferromagnet (FM)/heavy-metal (HM) interface leads to spin-dependent degeneracy of the energy band, forming spin-polarized surface states. As a result, the interface serves as an effective medium for converting spin accumulation into 2D charge current through the inverse Rashba–Edelstein effect. Exploring and assessing this spin-to-charge conversion (SCC) phenomenon at the FM/HM interface can offer a promising avenue to surpass the presumed limits of SCC in bulk HM layers. Spintronic heterostructures are utilized as a platform to measure the SCC experienced by photoexcited spin currents. Therefore, FM/HM heterostructures emitting terahertz electric field upon illumination by femtosecond laser pulses enable quantitative measure of the ultrafast SCC process. This results demonstrate a robust interfacial spin-to-charge conversion (iSCC) within a synthetic antiferromagnetic heterostructure, specifically for the NiFe/Ru/NiFe configuration, by isolating the SCC contribution originating from the interface and the bulk heavy-metal (HM). Through the measurements of the emitted terahertz pulse, the iSCC at the NiFe/Ru interface is identified to be ≈27% of the strength as compared to SCC from the highest spin-Hall conducting heavy-metal, Pt. The results thus highlight the significance of interfacial engineering as a promising pathway for achieving efficient ultrafast spintronic devices.
URI: https://hdl.handle.net/10356/180930
ISSN: 2195-1071
DOI: 10.1002/adom.202400077
Schools: School of Physical and Mathematical Sciences 
Research Centres: Centre for Disruptive Photonic Technologies (CDPT) 
The Photonics Institute
Rights: © 2024 Wiley-VCH GmbH. All rights reserved.
Fulltext Permission: none
Fulltext Availability: No Fulltext
Appears in Collections:SPMS Journal Articles

SCOPUSTM   
Citations 50

1
Updated on May 2, 2025

Page view(s)

63
Updated on May 6, 2025

Google ScholarTM

Check

Altmetric


Plumx

Items in DR-NTU are protected by copyright, with all rights reserved, unless otherwise indicated.