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连接剂辅助的CdSe量子点与TiO₂的附着:时间和浓度依赖性吸附、团聚及敏化光电流

Linker-assisted attachment of CdSe quantum dots to TiO2: Time- and concentration-dependent adsorption, agglomeration, and sensitized photocurrent.

作者信息

Kern Meghan E, Watson David F

机构信息

Department of Chemistry, University at Buffalo, The State University of New York , Buffalo, New York 14260-3000, United States.

出版信息

Langmuir. 2014 Nov 11;30(44):13293-300. doi: 10.1021/la503211k. Epub 2014 Oct 31.

Abstract

We have characterized the concentration and time dependences of the attachment of colloidal CdSe quantum dots (QDs) to 16-mercaptohexadanoic acid (MHDA)-functionalized nanocrystalline TiO2 thin films. The amount of QDs and the extent of their agglomeration on MHDA-functionalized TiO2 films were characterized by transmission- and reflectance-mode UV/vis absorption spectroscopy and scanning electron microscopy. Optically transparent films with spatially homogeneous coloration and minimal agglomeration of QDs were prepared from 2.2 and 5.0 μM toluene dispersions of QDs at short reaction times (<5 h). In contrast, prolonged exposure of MHDA-functionalized TiO2 films to 22 μM dispersions of QDs yielded relatively opaque QD-functionalized films with spatially inhomogeneous coloration and substantial agglomeration of QDs. Agglomeration of QDs decreased the absorbed photon-to-current efficiencies of QD-sensitized solar cells (QDSSCs) by almost 3-fold. These results highlight the profound influence of agglomeration on the optical properties and interfacial electron-transfer reactivity of QD-functionalized TiO2 films prepared by in situ linker-assisted assembly as well as the photoelectrochemical performance of QDSSCs incorporating such films.

摘要

我们已经表征了胶体CdSe量子点(QDs)附着到16-巯基己二酸(MHDA)功能化的纳米晶TiO₂薄膜上的浓度和时间依赖性。通过透射和反射模式紫外/可见吸收光谱以及扫描电子显微镜对MHDA功能化TiO₂薄膜上量子点的数量及其团聚程度进行了表征。在短反应时间(<5小时)内,由2.2和5.0 μM量子点的甲苯分散体制备出了具有空间均匀着色且量子点团聚最少的光学透明薄膜。相比之下,将MHDA功能化的TiO₂薄膜长时间暴露于22 μM的量子点分散体中,会产生相对不透明的量子点功能化薄膜,其具有空间不均匀的着色以及大量量子点的团聚。量子点的团聚使量子点敏化太阳能电池(QDSSCs)的吸收光子到电流的效率降低了近3倍。这些结果突出了团聚对通过原位连接体辅助组装制备的量子点功能化TiO₂薄膜的光学性质和界面电子转移反应性以及包含此类薄膜的量子点敏化太阳能电池的光电化学性能的深远影响。

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