AI Article Synopsis

  • Measuring transient photoelectric signals in dye-sensitized solar cells (DSSCs) reveals valuable insights into electron transport and recombination processes.
  • Research focused on the energetic distribution of trap states in different sized DSSCs (0.16 cm x 1 cm) using techniques like time-resolved charge extraction and transient measurements.
  • Findings showed that larger working areas led to a deeper trap state distribution, which hindered electron transport, accelerated recombination, and lowered charge collection efficiency, highlighting the need for optimizing photoanodes in large-area solar cells for better performance.

Article Abstract

Measuring the transient photoelectric signals (photovoltage or photocurrent) after optically perturbing dye-sensitized solar cells (DSSCs) can provide information about electron transport and recombination. Herein, the energetic distribution of trap states in different working areas of DSSCs (0.16 cm 1 cm) and their impacts on charge transport and recombination were investigated by means of time-resolved charge extraction (TRCE), transient photovoltage (TPV) and transient photocurrent (TPC) measurements. The results indicated that increasing the working area deepened the energetic distribution of trap states (, increased the mean characteristic energy ), which hindered the electron transport within the photoanode, accelerated the electron recombination in high voltage regions, and reduced the charge collection efficiency. All abovementioned are the inherent reasons why the in larger working area cells is significantly smaller than that in smaller area cells (11.58 mA cm 17.17 mA cm). More importantly, as the investigation of high-efficiency large area solar cells is currently a promising research topic for new solar cells, we describe the importance of photoanode optimization to achieve high-efficiency DSSCs with large working area by improving charge collection efficiency.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059758PMC
http://dx.doi.org/10.1039/c8ra09330jDOI Listing

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