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The 50 nm-thick yttrium iron garnet films with perpendicular magnetic anisotropy

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【作者】 陈姝瑶谢云飞杨玉聪高栋刘冬华秦林严巍谭碧陈秋丽龚涛李恩毕磊刘涛邓龙江

【Author】 Shuyao Chen;Yunfei Xie;Yucong Yang;Dong Gao;Donghua Liu;Lin Qin;Wei Yan;Bi Tan;Qiuli Chen;Tao Gong;En Li;Lei Bi;Tao Liu;Longjiang Deng;National Engineering Research Center of Electromagnetic Radiation Control Materials,University of Electronic Science and Technology of China;School of Materials and Energy,University of Electronic Science and Technology of China;School of Electronic Science and Engineering,University of Electronic Science and Technology of China;

【通讯作者】 刘冬华;刘涛;

【机构】 National Engineering Research Center of Electromagnetic Radiation Control Materials,University of Electronic Science and Technology of ChinaSchool of Materials and Energy,University of Electronic Science and Technology of ChinaSchool of Electronic Science and Engineering,University of Electronic Science and Technology of China

【摘要】 Yttrium iron garnet(YIG) films possessing both perpendicular magnetic anisotropy(PMA) and low damping would serve as ideal candidates for high-speed energy-efficient spintronic and magnonic devices.However,it is still challenging to achieve PMA in YIG films thicker than 20 nm,which is a major bottleneck for their development.In this work,we demonstrate that this problem can be solved by using substrates with moderate lattice mismatch with YIG so as to suppress the excessive strain-induced stress release as increasing the YIG thickness.After carefully optimizing the growth and annealing conditions,we have achieved out-of-plane spontaneous magnetization in YIG films grown on sGGG substrates,even when they are as thick as 50 nm.Furthermore,ferromagnetic resonance and spin pumping induced inverse spin Hall effect measurements further verify the good spin transparency at the surface of our YIG films.

【Abstract】 Yttrium iron garnet(YIG) films possessing both perpendicular magnetic anisotropy(PMA) and low damping would serve as ideal candidates for high-speed energy-efficient spintronic and magnonic devices.However,it is still challenging to achieve PMA in YIG films thicker than 20 nm,which is a major bottleneck for their development.In this work,we demonstrate that this problem can be solved by using substrates with moderate lattice mismatch with YIG so as to suppress the excessive strain-induced stress release as increasing the YIG thickness.After carefully optimizing the growth and annealing conditions,we have achieved out-of-plane spontaneous magnetization in YIG films grown on sGGG substrates,even when they are as thick as 50 nm.Furthermore,ferromagnetic resonance and spin pumping induced inverse spin Hall effect measurements further verify the good spin transparency at the surface of our YIG films.

【基金】 supported by the National Natural Science Foundation of China (Grant Nos.52072060 and 52021001);the National Key R&D Program of China (Grant No.2021YFB2801600);the China Postdoctoral Science Foundation (Grant No.2021M700679)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2022年04期
  • 【分类号】O469
  • 【下载频次】26
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