Abstract
Owing to their high electrical conductivity, tunable plasmonic absorption spectra, low cost, and abundance in nature, Cu2-xS nanocrystals are of great interest as functional materials for photovoltaic and photothermal applications. With the aim of developing low-cost high-efficiency quantum-dot-sensitized solar cells, solution-processed Cu2-xS nanocrystal films are synthesized and their phase transformations upon thermal treatment are investigated. A combination of experimental results and theoretical analysis illustrates the thermodynamic evolution of the crystal structures and the composition caused by the thermal-annealing process. The use of Cu2-xS nanocrystal films as counter electrodes in quantum-dot-sensitized solar cells is also explored. The devices have an optimized power-conversion efficiency of 5.81 % for tetragonal Cu2S nanocrystal films that are derived from annealed Cu1.8S nanocrystal films. Dotty about solar cells: Solution-processed Cu2-xS nanocrystal films are synthesized and their phase transformations upon thermal heating are investigated. The use of these Cu2-xS nanocrystal films as counter electrodes in quantum-dot-sensitized solar cells is also explored.
Original language | English |
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Pages (from-to) | 771-776 |
Number of pages | 6 |
Journal | ChemPhysChem |
Volume | 17 |
Issue number | 5 |
DOIs | |
Publication status | Published - 3 Mar 2016 |
Keywords
- copper sulfide nanocrystals
- phase transformations
- quantum dots
- solar cells
- thin films