TY - JOUR
T1 - Coherent suppression of picosecond magnetization precession in the presence of spin waves in a Ni81 Fe19 microstripe
AU - Barman, Anjan
AU - Sakata, H.
AU - Kimura, T.
AU - Otani, Y.
AU - Fukuma, Y.
N1 - Funding Information:
We gratefully acknowledge the financial assistance from Ministry of Education, Science, Sports and Culture of Japan, Grant in Aid for Scientific Research (S).
PY - 2009
Y1 - 2009
N2 - We present the experimental and micromagnetic simulation studies of coherent suppression of picosecond magnetization precession in Ni81 Fe19 (Permalloy) microstripes with widths of 5, 10, and 12 μm and length of 100 μm in the presence of multiple spin wave modes. The lateral confinement of the microstripes causes spin wave modes of frequencies adjacent to each other, and the local suppression of the modes was experimentally achieved with field pulses of slightly different durations but with same rise time and fall time. Micromagnetic simulations show that application of the pulse field causes a large angle (∼135°) reorientation of the magnetization, followed by a precession. At a particular value of pulse duration (suppression time), the magnetization returns back to the equilibrium position and suddenly becomes parallel to the effective field so that the torque on the magnetization vanishes. However, this applies to localized regions due to the presence of spin wave modes of slightly different frequencies along the short axis of the microstripe. Pulses of little under- or overwidth cause the precession to continue at a slightly different frequency, suggesting that the spin wave modes are not truly localized but there are overlapping regions where one mode dominates but the other modes appear more prominently when the dominating mode is suppressed. For stripes of different widths, similar spatial dependence of suppression time was observed. However, the average value of the suppression time decreases with reduced width of the stripe as a result of the increase in precession frequency.
AB - We present the experimental and micromagnetic simulation studies of coherent suppression of picosecond magnetization precession in Ni81 Fe19 (Permalloy) microstripes with widths of 5, 10, and 12 μm and length of 100 μm in the presence of multiple spin wave modes. The lateral confinement of the microstripes causes spin wave modes of frequencies adjacent to each other, and the local suppression of the modes was experimentally achieved with field pulses of slightly different durations but with same rise time and fall time. Micromagnetic simulations show that application of the pulse field causes a large angle (∼135°) reorientation of the magnetization, followed by a precession. At a particular value of pulse duration (suppression time), the magnetization returns back to the equilibrium position and suddenly becomes parallel to the effective field so that the torque on the magnetization vanishes. However, this applies to localized regions due to the presence of spin wave modes of slightly different frequencies along the short axis of the microstripe. Pulses of little under- or overwidth cause the precession to continue at a slightly different frequency, suggesting that the spin wave modes are not truly localized but there are overlapping regions where one mode dominates but the other modes appear more prominently when the dominating mode is suppressed. For stripes of different widths, similar spatial dependence of suppression time was observed. However, the average value of the suppression time decreases with reduced width of the stripe as a result of the increase in precession frequency.
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U2 - 10.1063/1.3200963
DO - 10.1063/1.3200963
M3 - Article
AN - SCOPUS:69749103176
SN - 0021-8979
VL - 106
JO - Journal of Applied Physics
JF - Journal of Applied Physics
IS - 4
M1 - 043906
ER -