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Synthesis and characterization of transition-metal-doped zinc oxide nanocrystals for spintronics.

机译:自旋电子学中过渡金属掺杂的氧化锌纳米晶体的合成与表征。

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摘要

Spintronics (spin transport electr onics), in which both spin and charge of carriers are utilized for information processing, is believed to challenge the current microelectronics and to become the next-generation electronics. Nanostructured spintronic materials and their synthetic methodologies are of paramount importance for manufacturing future nanoscale spintronic devices. This thesis aims at studying synthesis, characterization, and magnetism of transition-metal-doped zinc oxide (ZnO) nanocrystals---a diluted magnetic semiconductor (DMS)---for potential applications in future nano-spintronics.;A simple bottom-up-based synthetic strategy named a solvothermal technique is introduced as the primary synthetic approach and its crystal growth mechanism is scrutinized. N-type cobalt-doped ZnO-based DMS nanocrystals are employed as a model system, and characterized by a broad spectrum of advanced microscopic and spectroscopic techniques. It is found that the self-orientation growth mechanism, imperfect oriented attachment, is intimately correlated with the high-temperature ferromagnetism via defects. The influence of processing on the magnetic properties, such as compositional variations, reaction conditions, and post-growth treatment, is also studied. In this way, an in-depth understanding of processing-structure-property interrelationships and origins of magnetism in DMS nanocrystals are obtained in light of the theoretical framework of a spin-split impurity band model. In addition, a nanoscale spinodal decomposition phase model is also briefly discussed.;Following the similar synthetic route, copper- and manganese-doped ZnO nanocrystals have been synthesized and characterized. They both show high-temperature ferromagnetism in line with the aforementioned theoretical model(s). Moreover, they display interesting exchange biasing phenomena at low temperatures, revealing the complexity of magnetic phases therein.;The crystal growth strategy demonstrated in this work not only provides a more convenient approach to directly tailor magnetic properties of advanced multifunctional spintronic materials on a nanometer scale but also contributes to a deeper insight into the microscopic origin of magnetism in wide-band-gap oxide DMSs.
机译:自旋电子学(自旋运输电子学)将载流子的自旋和电荷都用于信息处理,据信将挑战当前的微电子学,并成为下一代电子学。纳米结构的自旋电子材料及其合成方法对于制造未来的纳米级自旋电子器件至关重要。本论文旨在研究过渡金属掺杂的氧化锌(ZnO)纳米晶体(一种稀释的磁半导体(DMS))的合成,表征和磁性,以便在未来的纳米自旋电子学中潜在应用。引入了一种称为溶剂热技术的基于up的合成策略作为主要合成方法,并研究了其晶体生长机理。 N型钴掺杂的ZnO基DMS纳米晶体被用作模型系统,其特征是具有广泛的先进显微和光谱技术。发现自定向生长机制,即不完全定向的附着,通过缺陷与高温铁磁性紧密相关。还研究了加工对磁性能的影响,例如组成变化,反应条件和生长后处理。以此方式,根据自旋分裂杂质带模型的理论框架,获得了对DMS纳米晶体中加工结构性质相互关系和磁性起源的深入理解。此外,还简要讨论了纳米级旋节线分解相模型。按照相似的合成路线,已经合成并表征了铜和锰掺杂的ZnO纳米晶体。它们都显示出符合上述理论模型的高温铁磁性。此外,它们在低温下表现出有趣的交换偏斜现象,揭示了其中的磁相的复杂性。这项工作中证明的晶体生长策略不仅为直接定制纳米级先进多功能自旋电子材料的磁性提供了更方便的方法。而且还有助于更深入地了解宽带隙氧化物DMS中磁性的微观来源。

著录项

  • 作者

    Wang, Xuefeng.;

  • 作者单位

    The Chinese University of Hong Kong (Hong Kong).;

  • 授予单位 The Chinese University of Hong Kong (Hong Kong).;
  • 学科 Engineering Electronics and Electrical.;Physics Condensed Matter.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 158 p.
  • 总页数 158
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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