Ultra-fast spin Hall nano-oscillator based microwave spectral analysis

Abstract Ultra-fast spectrum analysis based on rapidly tuned spintronic nano-oscillators has been under development for the last few years and has already demonstrated promising results. Here, we demonstrate an ultra-fast microwave spectrum analyzer based on a chain of five mutually synchronized nano-constriction spin Hall nano-oscillators (SHNOs). As mutual synchronization affords the chain a much improved signal quality, with linewidths well below 1 MHz at close to a 10 GHz operating frequency, we observe an order of magnitude better frequency resolution bandwidth compared to previously reported spectral analysis based on single magnetic tunnel junction based spin torque nano-oscillators. The high-frequency operation and ability to synchronize long SHNO chains and large arrays make SHNOs ideal candidates for ultra-fast microwave spectral analysis.

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Publication Details

Journal
Communications Engineering
Published
2026-09-17
DOI
https://doi.org/10.1038/s44172-026-00761-x
Primary Topic
Mechanical and Optical Resonators
Type
article
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Ultra-fast spin Hall nano-oscillator based microwave spectral analysis

P. K. Muduli, Pankhuri Gupta, Maha Khademi, Akash Kumar et al.
Communications Engineering
Mechanical and Optical Resonators
article

Ultra-fast spin Hall nano-oscillator based microwave spectral analysis

P. K. Muduli, Pankhuri Gupta, Maha Khademi, Akash Kumar, Artem Litvinenko, Johan Åkerman
article en

Abstract

Abstract Ultra-fast spectrum analysis based on rapidly tuned spintronic nano-oscillators has been under development for the last few years and has already demonstrated promising results. Here, we demonstrate an ultra-fast microwave spectrum analyzer based on a chain of five mutually synchronized nano-constriction spin Hall nano-oscillators (SHNOs). As mutual synchronization affords the chain a much improved signal quality, with linewidths well below 1 MHz at close to a 10 GHz operating frequency, we observe an order of magnitude better frequency resolution bandwidth compared to previously reported spectral analysis based on single magnetic tunnel junction based spin torque nano-oscillators. The high-frequency operation and ability to synchronize long SHNO chains and large arrays make SHNOs ideal candidates for ultra-fast microwave spectral analysis.

Communications Engineering
Indian Institute of Technology Kharagpur (IN), Oakland University (US), Tohoku University (JP), Nanosc (Sweden) (SE), Spintronics Research Network of Japan (JP), Chalmers University of Technology (SE), Indian Institute of Technology Delhi (IN), University of Gothenburg (SE)
Openalex Percentile: Top 99%
Mechanical and Optical Resonators
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Ultra-fast spin Hall nano-oscillator based microwave spectral analysis — P. K. Muduli, Pankhuri Gupta, et al. · Communications Engineering (2026) | TGRS Research Map | TGRS