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The short-circuit current density (Jsc) also slightly improves from 24.6 mA/cm to 25.8 mA/cm, resulting in an improved conversion efficiency of 15.4%.
Recently, we have reported the improved conversion efficiency of CdS QD-sensitized TiO2 nanotube array using ZnO energy barrier layer [26].
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One research direction to improve conversion efficiency of DSSCs is to construct a tandem DSSC in a sandwich configuration, which combines a photoanode from an n-type DSSC (n-DSSC) and a photocathode from a p-type DSSC (p-DSSC) [4, 5].
We'll improve conversion efficiency; we'll reduce the amount of silicon we use.
Developing chemical processes to overcome recalcitrance and improve ethanol yields from lignocellulosic materials by improving conversion efficiencies is an ongoing area of research [ 6].
The DSSC based on SiW11Cu modified photoelectrodes has an improved power conversion efficiency of 7.62%, which is 16% higher than that of traditional DSSC based on P25-Pt.
Under AM 1.5G illumination, the photoanodes had an improved power conversion efficiency of 1.44% using an aqueous polysulfide electrolyte with a short-circuit photocurrent density of 11.3 mA cm−2 when CdSe pebbles were annealed in a vacuum.
For instance, an enhanced light absorption was demonstrated by the bimetallic Ag-Au alloy nanoclusters through the expansion of LSPR bandwidth, which resulted in the significantly improved power conversion efficiency of photovoltaics as compared to the monometallic Ag or Au nanoclusters [15, 16].
Thus, we were able to further improve the conversion efficiency of the system.
More interestingly, larger dielectric constant is beneficial to improving power conversion efficiency of photovoltaic devices [52].
CuS was used as a counter electrode in order to improve the conversion efficiency of the QDSSCs.
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