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First principles calculations of optoelectronic and magnetic properties of Co-doped and (Co, Al) co-doped ZnO

机译:第一个原理计算光电和磁性的掺杂和(Co,Al)共掺杂ZnO

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摘要

Based on first principles calculations within spin polarized-density functional theory, we investigate optoelectronic and magnetic properties of Co-doped and (Co, Al) co-doped ZnO. Our results demonstrate that Co substitution changes the nonspin polarized state of pure ZnO to spin polarized with total magnetic moment of 3μ_B. The origin of antiferromagnetic (AFM) coupling between Co spins in the ZnO lattice is guided mainly by a super-exchange mechanism without any additional defects. The effect of Al codoping on the ground state of Co-doped ZnO is also investigated, and we find that the additional electron introduced by Al codoping changes the magnetic ground state of Co-doped ZnO from AFM to FM state, and the estimated Curie temperature is expected to be higher than room temperature. The optical absorption spectra of pure ZnO and Co-doped systems for all compositions are investigated, and we find that with an increase in Co concentration, the bandgap of ZnO and the position of spin-allowed d-d transition peaks of Co spins exhibit a blueshift and redshift behavior, respectively, which are consistent with the experimental results. Al codoping produces absorption peaks near infrared light and visible-light regions and increases transition energy due to the Burstein-Moss effect. Furthermore, the bandgap and d-d transition peaks of Co spins are correlated with magnetic coupling, and we observed a redshift of fundamental bandgap and d-d transition peaks of Co ions for FM coupled Co spins, and blueshift for AFM coupled Co spin systems.
机译:基于自旋极化密度函数理论内的第一种原理计算,我们研究了共掺杂和(CO,Al)共掺杂ZnO的光电和磁性。我们的结果表明,CO取代改变了纯ZnO的非晶偏振状态,以通过3μm1b的总磁矩旋转偏振。 ZnO格子中CO旋转之间的反铁磁(AFM)耦合的起源主要由超交换机制引导,没有任何额外的缺陷。还研究了Al Copoping对共掺杂ZnO的地位状态的影响,并发现通过Al Copoping引入的附加电子将来自AFM的共掺杂ZnO的磁性接地状态改变为FM状态,并且估计的居里温度预计将高于室温。研究了所有组合物的纯ZnO和共掺杂系统的光学吸收光谱,并发现随着CO浓度的增加,ZnO的带隙和CO旋转的旋转DD过渡峰的位置表现出蓝色和分别与实验结果一致的红移行为。 Al Copoping在红外光和可见光区域附近产生吸收峰,并由于卷须 - 苔藓效应而增加过渡能量。此外,CO旋转的带隙和D-D转换峰与磁耦合相关,我们观察到用于FM耦合Co Spins的CO离子的CO离子的基本带隙和D-D转换峰的红移,以及用于AFM耦合CO旋转系统的蓝光。

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  • 来源
    《Journal of Applied Physics》 |2020年第6期|065707.1-065707.8|共8页
  • 作者单位

    Beijing Key Lab of Nanophotonics and Ultrafine Optoelectronic Systems and School of Physics Beijing Institute of Technology Beijing 100081 China;

    Beijing Key Lab of Nanophotonics and Ultrafine Optoelectronic Systems and School of Physics Beijing Institute of Technology Beijing 100081 China;

    Beijing Key Lab of Nanophotonics and Ultrafine Optoelectronic Systems and School of Physics Beijing Institute of Technology Beijing 100081 China Key Lab of Featured Metal Resources Utilization and Advanced Materials Development Nano and Energy Research Center School of Physics Guangxi University Nanning 530004 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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