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Antiferromagnetic-paramagnetic state transition of NiO synthesized by pulsed laser deposition

机译:脉冲激光沉积合成NiO的反铁磁-顺磁状态转变

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摘要

Thin films of nickel oxide (NiO) were deposited on Al substrates at different substrate temperatures using pulsed laser deposition (PLD). Microwave power absorption measurements at 9.4 GHz (X-band) were carried out on these PLD grown films. Multi-walled carbon nano-tubes (MWCNTs) were incorporated with NiO films and were found not to have any effect on the NiO magnetism at room temperature substrate deposition. The MWCNTs and NiO particles have been found to vary in size from 73 to 44 nm and 20 nm respectively from Raman spectroscopy study. These particle sizes are known be affected by substrate temperature during the deposition. Electron spin resonance (ESR) results demonstrated a strange anti-ferromagnetic to paramagnetic transition at a room temperature. This magnetic transition was attributed to the substrate temperature variations during the films growth. In addition, the angular dependence measurements were also carried out and were seen to enhance this magnetic transition from NiO films. Normally, such magnetic transitions are observed in situ with temperature variations in the ESR system. Both Raman and ESR measurements suggest the absence of detectable Magnons which act as disturbances to magnetism or electron spins.
机译:使用脉冲激光沉积(PLD)在不同的基板温度下将氧化镍(NiO)薄膜沉积在Al基板上。在这些PLD生长的膜上进行了9.4 GHz(X波段)的微波功率吸收测量。多壁碳纳米管(MWCNT)与NiO膜结合在一起,发现在室温衬底沉积时对NiO磁性没有任何影响。拉曼光谱研究发现,MWCNT和NiO颗粒的尺寸分别在73至44 nm和20 nm之间变化。已知这些粒度在沉积过程中受基材温度的影响。电子自旋共振(ESR)结果表明,在室温下,奇怪的反铁磁到顺磁转变。该磁跃迁归因于膜生长期间衬底温度的变化。此外,还进行了角度依赖性测量,发现增强了NiO膜的这种磁跃迁。通常,在ESR系统中会随温度变化在原位观察到此类磁性跃迁。拉曼光谱和ESR测量均表明不存在可检测出的对电磁或电子自旋产生干扰的磁振子。

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  • 来源
    《Applied Surface Science》 |2013年第15期|860-864|共5页
  • 作者单位

    CSIR-National Laser Centre, 626 Meiring Naude Rd, Brummeria, Pretoria 0001, South Africa,School of Physics, University of Witwatersrand, P/Bag X3, Johannesburg 2030, South Africa,DST/CSIR Nanotechnology Innovation Centre, National Centre for Nano-Structured Materials, Council for Scientific and Industrial Research, P.O. Box 395, Pretoria 0001, South Africa;

    CSIR-National Laser Centre, 626 Meiring Naude Rd, Brummeria, Pretoria 0001, South Africa,School of Physics, University of KwaZulu Natal, Private BagX54001, Durban 5000, South Africa;

    DST/CSIR Nanotechnology Innovation Centre, National Centre for Nano-Structured Materials, Council for Scientific and Industrial Research, P.O. Box 395, Pretoria 0001, South Africa;

    School of Physics, University of Witwatersrand, P/Bag X3, Johannesburg 2030, South Africa;

    School of Physics, University of Witwatersrand, P/Bag X3, Johannesburg 2030, South Africa;

    CSIR-National Laser Centre, 626 Meiring Naude Rd, Brummeria, Pretoria 0001, South Africa,School of Physics, University of Witwatersrand, P/Bag X3, Johannesburg 2030, South Africa,School of Physics, University of KwaZulu Natal, Private BagX54001, Durban 5000, South Africa;

    DST/CSIR Nanotechnology Innovation Centre, National Centre for Nano-Structured Materials, Council for Scientific and Industrial Research, P.O. Box 395, Pretoria 0001, South Africa;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    antiferromagnetic; paramagnetic; NiO; pulsed laser deposition;

    机译:反铁磁顺磁性氧化镍脉冲激光沉积;

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