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Title: Decay properties of microwave-magnetic-envelope solitons in yttrium iron garnet films

Journal Article · · Physical Review, B: Condensed Matter
; ; ;  [1]
  1. Department of Physics, Colorado State University, Fort Collins, Colorado 80523 (United States)

Microwave magnetic envelope (MME) wave-packet propagation in a 7.2-{mu}m-thick yttrium iron garnet film has been investigated to determine the decay properties of linear and nonlinear MME pulses. The data were obtained in the magnetostatic backward volume wave configuration with an in-plane static field of 1088 Oe and an operating frequency of 5 GHz. Output pulse profiles, peak powers, and integrated pulse energies were measured for 13 ns wide input pulses and propagation distances from 3 to 10 mm. The pulse energy decay rate {beta} is found to be 10.6{times}10{sup 6} rad/s and independent of the input power level up to 400 mW, even though the nonlinear response begins at 80 mW. This {beta} value is twice the relaxation rate {eta} from ferromagnetic resonance. In the linear regime below 80 mW, the amplitude decay rate {alpha} of the dynamic microwave magnetization peak amplitude is nearly constant at a value {alpha}{sub low}{approx}7.8{times}10{sup 6} rad/s, somewhat greater than {beta}/2 and significantly less than {beta}. This {alpha}{sub low} is greater than the decay rate due to damping, {eta}={beta}/2, because of dispersion. With the onset of the nonlinear soliton response above 80 mW, {alpha} gradually increases and saturates for input powers greater than 200 mW at a value {alpha}{sub high} equal to the energy decay rate {beta}. This result indicates that the amplitude decay rate for MME solitons is very close to twice the relaxation rate. This result is predicted in the limit of a vanishingly small damping. Experimentally, it appears to be valid even when the relaxation is significant. The transition region from {alpha}{sub low} to {alpha}{sub high} has been quantitatively modeled through the nonlinear Schroedinger equation, and demonstrates an explicit change in the critical propagation length for soliton formation from 8 mm at the low power end of the transition to 3 mm at the high power end. {copyright} {ital 1997} {ital The American Physical Society}

OSTI ID:
548817
Journal Information:
Physical Review, B: Condensed Matter, Vol. 55, Issue 22; Other Information: PBD: Jun 1997
Country of Publication:
United States
Language:
English

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