Boosting the Efficiency of Quantum Dot Sensitized Solar Cells through Modulation of Interfacial Charge Transfer

被引:428
作者
Kamat, Prashant V. [1 ]
机构
[1] Univ Notre Dame, Dept Chem & Biochem, Radiat Lab, Notre Dame, IN 46556 USA
关键词
SEMICONDUCTOR PARTICULATE SYSTEMS; MULTIPLE EXCITON GENERATION; ELECTRON-TRANSFER; ANCHORING SEMICONDUCTOR; SHUTTLING ELECTRONS; METAL NANOPARTICLES; ENERGY-CONVERSION; VISIBLE-LIGHT; CDSE; TIO2;
D O I
10.1021/ar200315d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The demand for clean energy will require the design of nanostructure-based light-harvesting assemblies for the conversion of solar energy into chemical energy (solar fuels) and electrical energy (solar cells). Semiconductor nanocrystals serve as the building blocks for designing next generation solar cells, and metal chalcogenides (e.g., CdS, CdSe, PbS, and PbSe) are particularly useful for harnessing size-dependent optical and electronic properties in these nanostructures. This Account focuses on photoinducecl electron transfer processes in quantum dot sensitized solar cells (QDSCs) and discusses strategies to overcome the limitations of various interfacial electron transfer processes. The heterojunction of two semiconductor nanocrystals with matched band energies (e.g., TiO2 and CdSe) facilitates charge separation. The rate at which these separated charge carriers are driven toward opposing electrodes is a major factor that dictates the overall photocurrent generation efficiency. The hole transfer at the semiconductor remains a major bottleneck in QDSCs. For example, the rate constant for hole transfer is 2-3 orders of magnitude lower than the electron injection from excited CdSe into oxide (e.g., TiO2) semiconductor. Disparity between the electron and hole scavenging rate leads to further accumulation of holes within the CdSe QD and increases the rate of electron-hole recombination. To overcome the losses due to charge recombination processes at the interface, researchers need to accelerate electron and hole transport. The power conversion efficiency for liquid junction and solid state quantum dot solar cells, which is in the range of 5-6%, represents a significant advance toward effective utilization of nanomaterials for solar cells. The design of new semiconductor architectures could address many of the issues related to modulation of various charge transfer steps. With the resolution of those problems, the efficiencies of QDSCs could approach those of dye sensitized solar cells (DSSC) and organic photovoltaics.
引用
收藏
页码:1906 / 1915
页数:10
相关论文
共 83 条
[61]   Cu2S Reduced Graphene Oxide Composite for High-Efficiency Quantum Dot Solar Cells. Overcoming the Redox Limitations of S2-/Sn2- at the Counter Electrode [J].
Radich, James G. ;
Dwyer, Ryan ;
Kamat, Prashant V. .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2011, 2 (19) :2453-2460
[62]   Quantum dot solar cells.: Harvesting light energy with CdSe nanocrystals molecularly linked to mesoscopic TiO2 films [J].
Robel, I ;
Subramanian, V ;
Kuno, M ;
Kamat, PV .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (07) :2385-2393
[63]   Size-dependent electron injection from excited CdSe quantum dots into TiO2 nanoparticles [J].
Robel, Istvan ;
Kuno, Masaru ;
Kamat, Prashant V. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2007, 129 (14) :4136-+
[64]   Iodide Chemistry in Dye-Sensitized Solar Cells: Making and Breaking I-I Bonds for Solar Energy Conversion [J].
Rowley, John G. ;
Farnum, Byron H. ;
Ardo, Shane ;
Meyer, Gerald J. .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2010, 1 (20) :3132-3140
[65]   Interparticle electron transfer between size-quantized CdS and TiO2 semiconductor nanoclusters [J].
Sant, PA ;
Kamat, PV .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2002, 4 (02) :198-203
[66]   Mn-Doped Quantum Dot Sensitized Solar Cells: A Strategy to Boost Efficiency over 5% [J].
Santra, Pralay K. ;
Kamat, Prashant V. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2012, 134 (05) :2508-2511
[67]   Peak External Photocurrent Quantum Efficiency Exceeding 100% via MEG in a Quantum Dot Solar Cell [J].
Semonin, Octavi E. ;
Luther, Joseph M. ;
Choi, Sukgeun ;
Chen, Hsiang-Yu ;
Gao, Jianbo ;
Nozik, Arthur J. ;
Beard, Matthew C. .
SCIENCE, 2011, 334 (6062) :1530-1533
[68]   Quantum Dot-Dye Bilayer-Sensitized Solar Cells: Breaking the Limits Imposed by the Low Absorbance of Dye Monolayers [J].
Shalom, Menny ;
Albero, Josep ;
Tachan, Zion ;
Martinez-Ferrero, Eugenia ;
Zaban, Arie ;
Palomares, Emilio .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2010, 1 (07) :1134-1138
[69]   Effect of ZnS coating on the photovoltaic properties of CdSe quantum dot-sensitized solar cells [J].
Shen, Qing ;
Kobayashi, Junya ;
Diguna, Lina J. ;
Toyoda, Taro .
JOURNAL OF APPLIED PHYSICS, 2008, 103 (08)
[70]   BIPOLAR CDSE/COS SEMICONDUCTOR PHOTOELECTRODE ARRAYS FOR UNASSISTED PHOTOLYTIC WATER SPLITTING [J].
SMOTKIN, ES ;
CERVERAMARCH, S ;
BARD, AJ ;
CAMPION, A ;
FOX, MA ;
MALLOUK, T ;
WEBBER, SE .
JOURNAL OF PHYSICAL CHEMISTRY, 1987, 91 (01) :6-8