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Ultrafast optical probe of coherent acoustic phonons in Co2MnAl Heusler film

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【作者】 闫炜王海龙赵建华张新惠

【Author】 Wei Yan;Hai-Long Wang;Jian-Hua Zhao;Xin-Hui Zhang;State Key Laboratory of Superlattices and Microstructures,Institute of Semiconductors,Chinese Academy of Sciences;

【机构】 State Key Laboratory of Superlattices and Microstructures,Institute of Semiconductors,Chinese Academy of Sciences

【摘要】 In this work, pronounced oscillations in the time-resolved reflectivity of Heusler alloy Co2MnAl films which are epitaxially grown on Ga As substrates are observed and investigated as a function of film thickness, probe wavelength,external magnetic field and temperature. Our results suggest that the oscillation response at 24.5 GHz results from the coherent phonon generation in Co2MnAl film and can be explained by a propagating strain pulse model. From the probe wavelength dependent oscillation frequency, a sound velocity of(3.85±0.1)×103m/s at 800 nm for the epitaxial Co2MnAl film is determined at room temperature. The detected coherent acoustic phonon generation in Co2MnAl reported in this work provides a valuable reference for exploring the high-speed magnetization manipulation via magnetoelastic coupling for future spintronic devices based on Heusler alloy films.

【Abstract】 In this work, pronounced oscillations in the time-resolved reflectivity of Heusler alloy Co2MnAl films which are epitaxially grown on Ga As substrates are observed and investigated as a function of film thickness, probe wavelength,external magnetic field and temperature. Our results suggest that the oscillation response at 24.5 GHz results from the coherent phonon generation in Co2MnAl film and can be explained by a propagating strain pulse model. From the probe wavelength dependent oscillation frequency, a sound velocity of(3.85±0.1)×103m/s at 800 nm for the epitaxial Co2MnAl film is determined at room temperature. The detected coherent acoustic phonon generation in Co2MnAl reported in this work provides a valuable reference for exploring the high-speed magnetization manipulation via magnetoelastic coupling for future spintronic devices based on Heusler alloy films.

【基金】 supported by the National Basic Research Program of China(Grant No.2013CB922303);the National Natural Science Foundation of China(Grant No.61334006)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2017年01期
  • 【分类号】O484
  • 【被引频次】1
  • 【下载频次】29
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