| Literature DB >> 20672135 |
Minghui Deng1, Quanxin Zhang, Shuqing Huang, Dongmei Li, Yanhong Luo, Qing Shen, Taro Toyoda, Qingbo Meng.
Abstract
Cu2S nanocrystal particles were in situ deposited on graphite paper to prepare nano-sulfide/carbon composite counter electrode for CdS/CdSe quantum-dot-sensitized solar cell (QDSC). By optimization of deposition time, photovoltaic conversion efficiency up to 3.08% was obtained. In the meantime, this composite counter electrode was superior to the commonly used Pt, Au and carbon counter electrodes. Electrochemical impedance spectra further confirmed that low charge transfer resistance at counter electrode/electrolyte interface was responsible for this, implied the potential application of this composite counter electrode in high-efficiency QDSC.Entities:
Keywords: Carbon electrode; CdS/CdSe; Composite; Cu2S; Flexible; Quantum dot; Sensitized solar cell
Year: 2010 PMID: 20672135 PMCID: PMC2893919 DOI: 10.1007/s11671-010-9592-3
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1XRD pattern of solvent thermal synthesized Cu2S nanoparticles
Figure 2SEM images of the graphite paper surface a before and b after 5 h solvent thermal treatment
Figure 3I–V characteristics for QDSCs with counter electrodes of different Cu2S deposition time (Under illumination of AM 1.5)
Figure 4I–V characteristics for QDSCs with different counter electrodes (Under illumination of AM 1.5)
Photovoltaic parameters of tested QDSCs, together with R□ and R value of various counter electrodes
| Counter electrode | ||||||
|---|---|---|---|---|---|---|
| Nano-Cu2S/C | 10.68 | 497 | 0.581 | 3.08 | 0.044 | 0.063 |
| Graphite | 5.75 | 289 | 0.394 | 0.66 | 0.038 | 0.749 |
| Au/FTO | 7.57 | 484 | 0.269 | 0.98 | 0.24 | 0.196 |
| Pt/C | 5.93 | 458 | 0.376 | 1.02 | 0.042 | 1.088 |
| Pt/FTO | 6.73 | 374 | 0.271 | 0.68 | 0.015 | 0.886 |
| Carbon/C | 7.25 | 425 | 0.571 | 1.76 | 0.066 | 0.166 |
| Carbon/FTO | 6.48 | 387 | 0.495 | 1.24 | 14.6 | 0.795 |
Figure 5Nyquist plots (scattered) and their fitting results (line) of QDSCs with various counter electrodes under bias of V(under illumination of AM1.5). The inset (above) shows the detailed plots in the high-frequency region; (below) the equivalent circuit for the QDSC with the representation of impedance at CE/electrolyte interface (subscript CE), TiO2/CdS/CdSe/electrolyte interface (subscript 1) and series resistance (subscript s, including resistance in TiO2 film and electrolyte). The symbols R and CPE describe a resistance and a constant phase element, respectively; W accounts for finite-length Warburg diffusion