2015
DOI: 10.1109/tnano.2015.2471092
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Injection-Locked Spin Hall-Induced Coupled-Oscillators for Energy Efficient Associative Computing

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Cited by 36 publications
(24 citation statements)
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“…11 Besides the generation of microwave signals, SHNOs have also been considered for use as microwave detectors 12 and modulators 13 and even in neuromorphic computing applications. 14 For most of these applications, the SHNO performance needs to be enhanced to offer low threshold currents (low power consumption), high microwave output power, and low linewidth. While it has been shown that the synchronization of two or more SHNOs can be used to improve the power and coherency of the generated microwave signal, [15][16][17] several studies have also focused on enhancing the efficiency of spin current generation by using other heavy metals with higher n SH , such as b-W, [18][19][20] b-Ta, 21 and V. 22 Compared to Pt, these materials typically suffer from excessive heating due to their higher resistivity, which can be problematic when a large number of them are placed together in a small area to operate collectively, increasing the proportion of the current going through the ferromagnetic layer.…”
mentioning
confidence: 99%
“…11 Besides the generation of microwave signals, SHNOs have also been considered for use as microwave detectors 12 and modulators 13 and even in neuromorphic computing applications. 14 For most of these applications, the SHNO performance needs to be enhanced to offer low threshold currents (low power consumption), high microwave output power, and low linewidth. While it has been shown that the synchronization of two or more SHNOs can be used to improve the power and coherency of the generated microwave signal, [15][16][17] several studies have also focused on enhancing the efficiency of spin current generation by using other heavy metals with higher n SH , such as b-W, [18][19][20] b-Ta, 21 and V. 22 Compared to Pt, these materials typically suffer from excessive heating due to their higher resistivity, which can be problematic when a large number of them are placed together in a small area to operate collectively, increasing the proportion of the current going through the ferromagnetic layer.…”
mentioning
confidence: 99%
“…(27b)]. For STNOs in [3], [21], the calculated linewidth using (18) shows a better resemblance to experimental data compared to (19), thus (18) will be employed in the above-threshold region. Lastly, in the near threshold region, the linewidth in (17) approaches zero (when ζ ≈ 1) which is not a realistic behavior.…”
Section: E Linewidthmentioning
confidence: 99%
“…Considering these advantages, three-terminal MTJ-SHNOs could be a promising candidate for next generation hybrid spintronic-CMOS architectures, e.g. in neuromorphic or associative computing [19], [20]. To enable such developments, a comprehensive model able to capture the analog characteristics of three-terminal MTJ-SHNOs is needed.…”
Section: Introductionmentioning
confidence: 99%
“…STNOs and SHNOs are the building blocks of future spintronic microwave devices for a wide range of applications. Microwave signal generators [9,35,55,83,88], microwave detectors [125], memories [126][127][128], and bioinspired computing [39,[129][130][131] are some examples of such applications, many of which require CMOS compatibility for integration. Power consumption, microwave output power, and signal coherency are some of the other criteria needed to compete with established semiconductor microwave technologies.…”
Section: Cmos-compatible Spin Hall Nano-oscillatorsmentioning
confidence: 99%