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Наносистемы: физика, химия, математика

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CdS quantum dot sensitized zinc oxide based solar cell with aluminum counter electrode

https://doi.org/10.17586/2220-8054-2017-8-6-782-786

Аннотация

High cost conducting metals such as Au or Pt are generally used as counter electrodes in quantum dot sensitized solar cells. In this article, we report working of a CdS quantum dot sensitized ZnO thin film solar cell, having FTO as working electrode and aluminium as counter electrode. The CdS quantum dots are prepared by simple low cost chemical technique and characterized by absorption spectroscopy, X-ray diffraction, atomic force microscopy and high resolution trans electron microscopy. These quantum dots are used as an active layer in a solar cell and current density–voltage characteristic of the solar cell is obtained under white light illumination and dark conditions.

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Об авторах

A. Ganguly
National Institute of Technology
Индия

Silchar, Assam-788010



S. S. Nath
CIL, Assam University
Индия

Silchar, Assam-788011



G. Gope
CIL, Assam University
Индия

Silchar, Assam-788011



M. Choudhury
National Institute of Technology
Индия

Silchar, Assam-788010



Список литературы

1. Shockley W., Queisser H.J. Detailed balance limit of efficiency of p-n junction solar cells. Journal of Applied Physics, 1961, 32, P. 510–519.

2. Semonin O.E., Luther J.M., Beard M.C. Quantum dots for next-generation photovoltaics. Materials Today, 2012, 15, P. 508–515.

3. Beard M.C., Luther J.M., Semonin O.E., Nozik A.J. Third generation photovoltaics based on multiple exciton generation in quantum confined semiconductors. Accounts of Chemical Research, 2013, 46 (6), P. 1252–1260.

4. Nozik A.J., et al. Semiconductor Quantum Dots and Quantum Dot Arrays and Applications of Multiple Exciton Generation to Third-Generation Photovoltaic Solar Cells. Chem. Rev., 2010, 110, P. 6873–6890.

5. Shabaev A., Hellberg C.S., Efros A.L. Efficiency of Multiexciton Generation in Colloidal Nanostructures. Acc. Chem. Res., 2013, 46, P. 1242–1251.

6. Martinson A.B.F., Goes M.S., et al. Electron Transport in Dye-Sensitized Solar Cells Based on ZnO Nanotubes: Evidence for Highly Efficient Charge Collection and Exceptionally Rapid Dynamics. J. Phys. Chem. A, 2009, 113, P. 4015–4021.

7. Raja M., Muthukumarasamy N., et al. Enhanced photovoltaic performance of quantum dot-sensitized solar cell fabricated using Al-doped ZnO nanorod electrode. Superlattices and Microstructures, 2015, 80, P. 53–62.

8. Sealy C. Problems with platinum. Materials Today, 2008, 11 (12), P. 65–68.

9. Seo M.H., Hwang W.P., Kim Y.K., Kim M.R. Improvement of Quantum Dot-Sensitized Solar Cells based on Cds and CdSe Quantum Dots. 37th IEEE Photovoltaic Specialists Conference (PVSC), 2011, DOI: 10.1109/PVSC.2011.6186493.

10. Jun H.K., Careem M.A., Arof A.K. Performances of some low-cost counter electrode materials in CdS and CdSe quantum dot-sensitized solar cells. Nanoscale Res. Lett., 2014, 9 (1), P. 69.

11. Radich J.R., Dwyer R., Kamat P.V. Cu2S Reduced Graphene Oxide Composite for High-Efficiency Quantum Dot Solar Cells. Overcoming the Redox Limitations of S2/S2 at the Counter Electrode. J. Phys. Chem. Lett., 2011, 2 (19), P. 2453–2460.

12. Badawi A., Al-Hosiny N., et al. CdTe quantum dots sensitized TiO2 Electrodes for photovoltaic cells. J. Mater. Sci. Eng. A, 2011, 1, P. 942–947.

13. Nath S.S., Chakdar D., et al. Green luminescence of ZnS and ZnS:Cu quantum dots embedded in zeolite matrix. Journal of Applied Physics, 2009, 105 (9), P. 4305.

14. Walton A.K., Moss T.S., Ellis B. Determination of Effective mass in the Lead Salts by Infra-red Farady Effect. Proceedings of the Physical Society, 1962, 79 (5), P. 1065.

15. Das R., Gope G., Nath S.S., Chakdar D. Improving the tuning phenomenon of CdS quantum dot by Fe3+ Doping. J. Nanotech. Prog. Int., 2011, 4, P. 6.

16. Chen H., Li W., Liu H., Zhu L. CdS quantum dots sensitized single- and multi-layer porous ZnO nanosheets for quantum dots-sensitized solar cells. Electrochemistry Communications, 2011, 13, P. 331–334.


Рецензия

Для цитирования:


Ganguly A., Nath S.S., Gope G., Choudhury M. CdS quantum dot sensitized zinc oxide based solar cell with aluminum counter electrode. Наносистемы: физика, химия, математика. 2017;8(6):782-786. https://doi.org/10.17586/2220-8054-2017-8-6-782-786

For citation:


Ganguly A., Nath S.S., Gope G., Choudhury M. CdS quantum dot sensitized zinc oxide based solar cell with aluminum counter electrode. Nanosystems: Physics, Chemistry, Mathematics. 2017;8(6):782-786. https://doi.org/10.17586/2220-8054-2017-8-6-782-786

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ISSN 2220-8054 (Print)
ISSN 2305-7971 (Online)