Tracking the Adsorption and Electron Injection Rates of CdSe Quantum Dots on TiO2: Linked versus Direct Attachment

被引:155
作者
Pernik, Douglas R. [1 ,2 ]
Tvrdy, Kevin [1 ,3 ]
Radich, James G. [1 ,2 ]
Kamat, Prashant V. [1 ,2 ,3 ]
机构
[1] Univ Notre Dame, Radiat Lab, Notre Dame, IN 46556 USA
[2] Univ Notre Dame, Dept Chem & Biomol Engn, Notre Dame, IN 46556 USA
[3] Univ Notre Dame, Dept Chem & Biochem, Notre Dame, IN 46556 USA
关键词
SOLAR-CELLS; ENERGY-CONVERSION; NANOPARTICLES; NANOCRYSTALS; FILMS; ARCHITECTURES; EFFICIENCY; SURFACES; DEPOSITION; CONVERTERS;
D O I
10.1021/jp203055d
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Understanding CdSe quantum dot (QD) adsorption phenomena on mesoscopic TiO2 films is important for improving the performance of quantum dot sensitized solar cells (QDSSCs). A kinetic adsorption model has been developed to elucidate both Langmuir-like submonolayer adsorption and QD aggregation processes. Removal of surface-bound trioctylphosphine oxide as well as the use of 3-mercaptopropionic acid (MPA) as a molecular linker improved the adsorption of toluene-suspended QDs onto TiO2 films. The adsorption constant K-ad for submonolayer coverage was (6.7 +/- 2.7) x 10(3) M-1 for direct adsorption and (4.2 +/- 2.0) x 10(4) M-1 for MPA-linked assemblies. Prolonged exposure of a TiO2 film to a CdSe QD suspension resulted in the assembly of aggregated particles regardless of the method of adsorption. A greater coverage of TiO2 was achieved with smaller QDs due to reduced size constraints. Ultrafast transient absorption spectroscopy demonstrated faster electron injection into TiO2 from directly adsorbed QDs (k(ET) = 7.2 x 10(9) s(-1)) compared with MPA-linked QDs (k(ET) = 2.3 x 10(9) s(-1)). The adsorption kinetic details presented in this study are useful for controlling CdSe QD adsorption on TiO2 and designing efficient photoanodes for QDSSCs.
引用
收藏
页码:13511 / 13519
页数:9
相关论文
共 46 条
[1]   Photosensitization of TiO2 Nanostructures with CdS Quantum Dots: Particulate versus Tubular Support Architectures [J].
Baker, David R. ;
Kamat, Prashant V. .
ADVANCED FUNCTIONAL MATERIALS, 2009, 19 (05) :805-811
[2]   Photochemical conversion of solar energy [J].
Balzani, Vincenzo ;
Credi, Alberto ;
Venturi, Margherita .
CHEMSUSCHEM, 2008, 1 (1-2) :26-58
[3]   Panchromatic Sensitized Solar Cells Based on Metal Sulfide Quantum Dots Grown Directly on Nanostructured TiO2 Electrodes [J].
Braga, Antonio ;
Gimenez, Sixto ;
Concina, Isabella ;
Vomiero, Alberto ;
Mora-Sero, Ivan .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2011, 2 (05) :454-460
[4]   Quantum dot solar cells.: Electrophoretic deposition of CdSe-C60 composite films and capture of photogenerated electrons with nC60 cluster shell [J].
Brown, Patrick ;
Kamat, Prashant V. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2008, 130 (28) :8890-+
[5]   Chemical bath deposition of CdS quantum dots onto mesoscopic TiO2 films for application in quantum-dot-sensitized solar cells [J].
Chang, Chi-Hsiu ;
Lee, Yuh-Lang .
APPLIED PHYSICS LETTERS, 2007, 91 (05)
[6]   Distance-Dependent Electron Transfer in Tethered Assemblies of CdS Quantum Dots and TiO2 Nanoparticles [J].
Dibbell, Rachel S. ;
Watson, David F. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2009, 113 (08) :3139-3149
[7]   Photoelectrochemical cells [J].
Grätzel, M .
NATURE, 2001, 414 (6861) :338-344
[8]   Solar cell efficiency tables (version 37) [J].
Green, Martin A. ;
Emery, Keith ;
Hishikawa, Yoshihiro ;
Warta, Wilhelm .
PROGRESS IN PHOTOVOLTAICS, 2011, 19 (01) :84-92
[9]  
Griffiths D.J., 2018, Introduction to Quantum Mechanics
[10]   CdSe Quantum Dot-Sensitized TiO2 Electrodes: Effect of Quantum Dot Coverage and Mode of Attachment [J].
Guijarro, Nestor ;
Lana-Villarreal, Teresa ;
Mora-Sero, Ivan ;
Bisquert, Juan ;
Gomez, Roberto .
JOURNAL OF PHYSICAL CHEMISTRY C, 2009, 113 (10) :4208-4214