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Optical and Structural Properties of Si Nanocrystals in SiO2 Films

机译:SiO2薄膜中Si纳米晶体的光学和结构性质

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摘要

Optical and structural properties of Si nanocrystals (Si-nc) in silica films are described. For the SiOx (x < 2) films annealed above 1000 °C, the Raman signal of Si-nc and the absorption coefficient are proportional to the amount of elemental Si detected by X-ray photoelectron spectroscopy. A good agreement is found between the measured refractive index and the value estimated by using the effective-medium approximation. The extinction coefficient of elemental Si is found to be between the values of crystalline and amorphous Si. Thermal annealing increases the degree of Si crystallization; however, the crystallization and the Si–SiO2 phase separation are not complete after annealing at 1200 °C. The 1.5-eV PL quantum yield increases as the amount of elemental Si decreases; thus, this PL is probably not directly from Si-nc responsible for absorption and detected by Raman spectroscopy. Continuous-wave laser light can produce very high temperatures in the free-standing films, which changes their structural and optical properties. For relatively large laser spots, the center of the laser-annealed area is very transparent and consists of amorphous SiO2. Large Si-nc (up to ~300 nm in diameter) are observed in the ring around the central region. These Si-nc lead to high absorption and they are typically under compressive stress, which is connected with their formation from the liquid phase. By using strongly focused laser beams, the structural changes in the free-standing films can be made in submicron areas.
机译:描述了二氧化硅膜中的硅纳米晶体(Si-nc)的光学和结构性质。对于在1000°C以上退火的SiOx(x <2)膜,Si-nc的拉曼信号和吸收系数与X射线光电子能谱检测到的元素Si量成正比。在测得的折射率与使用有效介质近似值估算的值之间找到了很好的一致性。发现元素Si的消光系数在结晶Si和非晶Si的值之间。热退火提高了Si的结晶度;但是,在1200°C退火后,结晶和Si-SiO2相分离尚未完成。 1.5 eV PL量子产率随着元素Si含量的减少而增加;因此,该PL可能不是直接来自负责吸收并通过拉曼光谱法检测的Si-nc。连续波激光会在自支撑薄膜中产生非常高的温度,从而改变其结构和光学性能。对于较大的激光点,激光退火区域的中心非常透明,由非晶SiO2组成。在中心区域周围的环中观察到较大的Si-nc(直径可达〜300 nm)。这些Si-nc导致高吸收,并且它们通常处于压应力下,该压应力与它们从液相形成有关。通过使用强聚焦的激光束,可以在亚微米区域进行自支撑膜的结构变化。

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