标题: 以硫化镉奈米线为主体之异质结构:载子动力学与其光能转换应用
CdS Nanowire-based Heterostructures: Interfacial Charge Carrier Dynamics and Their Photoconversion Applications
作者: 林宜芳
Lin, Yi-Fang
徐雍蓥
材料科学与工程学系所
关键字: 硫化镉;载子动力学;光能转换;奈米线;异质结构;CdS;Charge Carrier Dynamics;Photoconversion;Heterostructures;Nanowire
公开日期: 2013
摘要: 利用各种半导体能带结构的不同,透过适当的选择与搭配所形成的type-II奈米异质结构,可获得或改善原单一半导体所无法得到的光转换效率与光电特性。本论文之重点在于研究由CdSnO3及Cu2O奈米晶体所分别修饰的CdS奈米线异质结构之特性,对CdS-CdSnO3而言,其能带结构的组合可使光激发电子传递至CdSnO3奈米晶体,电洞留在CdS奈米线上,进而得到载子分离的效果,藉由时间解析萤光光谱的量测可量化其界面载子的传输效率,结果显示CdSnO3接枝含量达到2.5 at% 时,有最显着的载子分离效率,当CdSnO3 的含量超越此最佳值时,横跨界面的载子再复合程序会使得整体载子分离效果下降,进而导致载子传输速率减低,此结果与其应用于光催化分解污染物时的分解速率趋势一致,因此可知横跨界面的载子再复合行为为造成CdSnO3含量超过最佳值时,其光催化速率下降的主要因素。另一方面,利用Cu2O奈米晶体的修饰,使得CdS奈米线的光激发电洞可导出至Cu2O,避免CdS累积过多的电洞,进而改善其光腐蚀现象,实验结果显示,透过Cu2O的修饰不仅可提升CdS的光电转换效率,亦可增强其稳定性并能长时间的重复使用之。
Semiconductor nanoheterostructures with type-II band offset have exhibited unique optoelectronic properties that are beneficial to photoconversion applications. Debatable arguments however exist in the literature for interpreting the most enhanced photocatalytic performance of type-II semiconductor nanoheterostructures when an optimal content of the constituents is employed. In this work, time-resolved photoluminescence is used to investigate the interfacial charge carrier dynamics for CdSnO3-decorated CdS nanowires (NWs), a prototype type-II nanoheterostructures system, with varying CdSnO3 contents. Our results show that the CdSnO3 content of 2.5 at% rendered CdS-CdSnO3 NWs the most significant charge carrier separation, above which electron-hole recombination across CdS/CdSnO3 interface mediated carrier transfer to compromise the overall charge separation efficiency. The carrier dynamics results are in good accordance with that of photoconversion performance evaluation in dye photodegradation, which assists in resolving the very critical but still controversial issue as to the factors causing the depressed photocatalytic efficiency of type-II nanoheterostructures when the constituent content exceeds the optimal value. On the other hand, in order to improve the long-term stability and recyclability of CdS NWs, Cu2O nanoparticles were used to decorate CdS . Because of the higher valance band potential of Cu2O nanoparticles than that of CdS, the holes would transfer to Cu2O upon light irradiation, alleviating the possible photocorrosion issue and increasing the long-term stability of CdS NWs during their use as photocatalysts.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT079918575
http://hdl.handle.net/11536/73571
显示于类别:Thesis