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Laser-assisted scanning probe alloying nanolithography (LASPAN) and its application in gold-silicon system

机译:激光辅助扫描探针合金纳米平版印刷术(LASPAN)及其在金硅体系中的应用

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摘要

Nanoscale science and technology demand novel approaches and new knowledge to further advance. Nanoscale fabrication has been widely employed in both modern science and engineering. Micro/nano lithography is the most common technique to deposit nanostructures. Fundamental research is also being conducted to investigate structural, physical and chemical properties of the nanostructures. This research contributes fundamental understanding in surface science through development of a new methodology. Doing so, experimental approaches combined with energy analysis were carried out. A delicate hardware system was designed and constructed to realize the nanometer scale lithography. We developed a complete process, namely laser-assisted scanning probe alloying nanolithography (LASPAN), to fabricate well-defined nanostructures in gold-silicon (Au-Si) system. As a result, four aspects of nanostructures were made through different experimental trials. A non-equilibrium phase (AuSi3) was discovered, along with a non-equilibrium phase diagram. Energy dissipation and mechanism of nanocrystalization in the process have been extensively discussed. The mechanical energy input and laser radiation induced thermal energy input were estimated. An energy model was derived to represent the whole process of LASPAN.
机译:纳米科学技术要求进一步发展的新颖方法和新知识。纳米级制造已广泛应用于现代科学和工程领域。微米/纳米光刻是沉积纳米结构的最常用技术。还正在进行基础研究以研究纳米结构的结构,物理和化学性质。这项研究通过开发新方法为表面科学的基础理解做出了贡献。为此,进行了结合能量分析的实验方法。设计并构建了精密的硬件系统以实现纳米级光刻。我们开发了完整的工艺,即激光辅助扫描探针合金纳米光刻(LASPAN),以在金-硅(Au-Si)系统中制造定义明确的纳米结构。结果,通过不同的实验试验制成了纳米结构的四个方面。发现了非平衡相(AuSi3),以及非平衡相图。对该过程的能量耗散和纳米晶化机理进行了广泛的讨论。估算了机械能输入和激光辐射诱导的热能输入。导出了一个能量模型来表示LASPAN的整个过程。

著录项

  • 作者

    Peng Luohan;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
  • 中图分类

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