标题: Ⅱ-Ⅵ族半导体奈米晶粒(量子点)之合成与光学性质分析
Synthesis and Optical Characterization of Ⅱ-Ⅵ Group Semiconductor Nanocrystal (Quantum Dots)
作者: 周静怡
Jing-Yi Chou
韦光华
Kung-Hwa Wei
材料科学与工程学系
关键字: 奈米晶粒;量子点;nanocrystal;quantum dot
公开日期: 2002
摘要: 本论文以研究Ⅱ-Ⅵ族半导体奈米晶粒(量子点)的合成、光学性质和结构为主,并探讨形成核壳结构时对于光学性质的影响,从紫外光-可见光吸收光谱图和光激发光光谱图、X-ray绕射图谱、穿透式电子显微镜照片来了解Ⅱ-Ⅵ族奈米晶粒的光学性质及其结构。
以化学胶体合成法来制备CdSe与CdSe/ZnSe核壳结构之量子点,在固定的Cd/Se莫耳数比、相同的反应温度下,动力学控制利用反应时间的长短来合成不同粒径的量子点,并且经由同一时间的成核和成长机制来达到粒径分布均匀。
在光学性质方面,CdSe与CdSe/ZnSe核壳结构之量子点均呈现量子限量化效应,即表示随着粒子尺寸的增加,能隙(energy gap)变小,在光吸收和光激发图谱中有红位移(red shift)现象,此外,藉由紫外光-可见光吸收光谱图,利用公式估算粒径大小。在发光量子效率(quantum yield)的测量上,以coumarin 6为标准品,是一种有机染料,从光吸收和光激发图谱得到的测量值代入公式,计算得到Q.Y.值,经由Q.Y.值的增加,间接证明CdSe/ZnSe部分核壳结构形成。
在结构性质方面,CdSe量子点为wurtzite结构,属于六方最密堆积,从XRD的图形来看,的确符合理论值,但在短时间的反应下,CdO的peak出现,表示CdO反应不完全。CdSe/ZnSe核壳结构的XRD图形,peak没有位移的现象但有变宽的趋势,只能证明ZnSe部分成长在CdSe的表面,未达到完整的核壳结构。在TEM方面,只有针对反应时间为20分钟的CdSe,依照图中比例,约略估计粒径大小在5nm左右,与吸收图谱计算的结果,大约符合,至于CdSe/ZnSe核壳结构量子点,需要HR-TEM才能看到晶格影像,直接证明核壳结构的形成。
The synthesis, optical and structure properties of Ⅱ-Ⅵ group semiconductor nanocrystal (quantum dots) are investigated and the core-shell structures of the quantum dots exhibit interesting effects on optical properties. To comprehend optical and structure properties through UV-Vis absorbance spectra, photoluminescence spectra, X-ray diffraction spectra, TEM pictures.
To prepare quantum dots of CdSe and CdSe/ZnSe core-shell structure in chemical colloidal synthesis. At fixed Cd/Se molar ratio, the same reaction temperature, Kinetic control reaction time to produce different size quantum dots. The narrow size distribution were reached due to the mechanism of nucleation and growth.
In optical properties, CdSe and CdSe/ZnSe core-shell structure have quantum confinement effects. It means the band gap of nanocrystals decreases as their size increases. There is red shift phenomenon in absorbance and PL spectra. In addition, we can use a formular to compute particle size. Photoluminescence quantum yield values were measured relative coumarine 6. Coumarin 6 is an organic dye. To obtain Q.Y. values, we need the data from absorbance and PL spectra. It could indirectly prove the formation of CdSe/ZnSe core-shell structure via the raise of Q.Y.
In structure properties, CdSe is wurtzite structure, hexagonal closet packing. It conforms with theoretical values in XRD pattern. In XRD pattern, there are CdO’s peaks. It means that CdO reacts incompletely. The peaks are not shift but broading in CdSe/ZnSe core-shell structure’s XRD pattern. We figure CdSe overcoated with a potion ZnSe. The whole core-shell structure may not form yet. There are only TEM pictures of reaction time equal to twenty minutes. From these pictures, we estimate the particle sizes equal to 5nm. The result is to fit in with the data from absorbance spectra. As for CdSe/ZnSe core-shell structure, we need HR-TEM to see lattice images to prove directly the formation of core-shell structure.
URI: http://140.113.39.130/cdrfb3/record/nctu/#NT910159028
http://hdl.handle.net/11536/69915
显示于类别:Thesis