J.V. Harzer, B. Hillebrands, et al.
Journal of Magnetism and Magnetic Materials
We have investigated experimentally a novel type of self-synchronizing two-dimensional Josephson junction arrays based on special symmetry breaking network architectures. The measurements confirm the theoretical prediction that in such "selector Josephson networks" the Josephson oscillators mutually synchronize into a coherent in-phase state and that such arrays are capable of emitting maximum coherent microwave power in the entire theoretically expected frequency range. The DC biased oscillator array operates coherently even without a reinjection of the generated microwave by an external load or by a resonator cavity. The selector network possesses a much higher tolerance against imperfections, perturbations and load parameter variations than conventional regular two-dimensional or one-dimensional arrays. The experimental sample has been fabricated in an industrial process using Nb-technology, in effect providing relatively large spreads in the array junction parameters. The measured frequency range goes from 85 GHz up to 380 GHz with a maximum microwave power of 0.16//W matched to a coupled load for an array with only 100 active Nb-A10x-Nb junctions. © 1999 IEEE.
J.V. Harzer, B. Hillebrands, et al.
Journal of Magnetism and Magnetic Materials
Eloisa Bentivegna
Big Data 2022
Frank R. Libsch, Takatoshi Tsujimura
Active Matrix Liquid Crystal Displays Technology and Applications 1997
Shu-Jen Han, Dharmendar Reddy, et al.
ACS Nano