标题: 功能化二氧化钛奈米管阵列的基础研究与应用
Functional TiO/sub 2/ Nanochannel Array---Fundmental Study and Applications
作者: 刁维光
DIAU ERIC WEI-GUANG
国立交通大学应用化学系(所)
关键字: TiO2;阳极处理;奈米管阵列;超快光谱学;染料敏化太阳能电池;TiO2;anozidation;nanotube array;ultrafast spectroscopy;dye-sensitized solarcell (DSSC)
公开日期: 2007
摘要: 由于全球性的能源危机以及台湾环保意识的高涨,在这个两年期的国科会个人
计画中我们提出一个以低成本开发高效能染料敏化太阳能电池(DSSC)的方法。我们
的核心技术是利用电化学阳极处理的方法直接在钛薄板上制备大面积的功能性二氧
化钛奈米管阵列(ATO nanotube array)薄膜,其具有高表面积及可调控的特性故可
在吸附光敏染料后作为DSSC 的阳极,以取代传统以导电玻璃及TiO2 奈米颗粒为阳
极的Gratzel cell。在计画执行的第一年中,我们将利用不同奈米制程如阳极处理
法与溶胶-凝胶法来制作高品质之奈米级二氧化钛材料,再针对不同的实验参数对二
氧化钛的表面型态、结晶特性、光谱及光电特性等深入探讨,并将ATO 奈米管应用
于表面的自我清洁。第二年我们将利用第一年所制得之材料应用到DSSC 之元件封装
与光电流量测,改变的参数包括了ATO 奈米管的孔径大小、管子的长短、不同染料
与电解质的影响,并利用超快光谱技术来研究电子与电洞在染料与奈米管界面间传
递的动力行为。我们所提出的奈米管DSSC 将具有低成本、可挠曲、大面积、可回收
再使用等特性,若能提高光电转换效率与增长使用寿命,其发展潜力将无可限量!
Due to the global energy crisis and the sense of environmental protection in
Taiwan, in this two-year proposal we propose a method to develop dye-sensitized solar
cell (DSSC) with the possibility of low cost and high efficiency. Our core technology is
to make large-area anodic TiO2 (ATO) nanotube array directly on the surface of Ti-foil
utilizing the method of anodization. After sensitized with organic dye molecules, the
dye/ATO thin-films can be used as anode to replace the traditional TiO2
nanoparticle-based films used in Gratzel cell. For the first year, we will make
high-quality TiO2 nanostructures using both anodization and sol-gel methods. The
structure and morphology of the TiO2 surface will be investigated using XRD, SEM and
TEM; the spectral and photocurrent measurements (IPCE) will be performed to study the
opto-electric properties of the material. The ATO nanotube array can be applied to the
field of self-cleaning of surface. For the second year, we will fabricate DSSC using the
ATO nanotube array material optimized in the first year. Both IV curve and IPCE
measurements will be carried out in order to find the best condition of the cell; the
variables to be tested include the pore size and the length of the tubes, different dye
molecules (including Ru-complexes and porphyrins), and different composition of the
electrolytes. We will also study the relaxation dynamics of the electron-hole pair for the
key transport process in the interface between the dye molecules and the TiO2
nanostructures using ultrafast spectroscopy methods established in our laboratory. Our
goal is to find the best ATO-DSSC with the advantage of low cost, flexibility, large area
and reusability. We might provide an economical solution for the problem of the global
energy crisis if we succeed in promoting the efficiency of the cell and improving the
lifetime of the cell.
官方说明文件#: NSC96-2628-M009-018-MY2
URI: http://hdl.handle.net/11536/88916
https://www.grb.gov.tw/search/planDetail?id=1456367&docId=260524
显示于类别:Research Plans