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Updated: Nov 19, 2025

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Published on: January 10, 2017
Defect mediated improved charge carrier dynamics in hybrid bulk-heterojunction solar cell induced by phase pure iron
Punit Sharma1, Aniket Rana1, Sobia Waheed1
1Organic & Hybrid Electronic Device Laboratory (OHEDL), Centre for Energy Studies, Indian Institute of Technology Delhi, New Delhi 110016, India.
Abstract:
In this article, the synthesis of phase pure iron pyrite nanocubes (FeS2NCs) and their various effects on the charge carrier dynamics and photovoltaic performances of P3HT:PC71BM based hybrid bulk-heterojunction solar cells have been studied. The optimum doping concentration of FeS2NCs was found to be 0.3 wt%. For the optimally doped devices, the short-circuit current density was found to have improved from 5.47 to 7.99 mA cm-2leading to an overall cell efficiency improvement from 2.10% to 3.22% as compared to the undoped reference devices. The enhancement in photovoltaic performance is mainly attributed to the formation of localized energy states near the band edges leading to higher carrier generation rate by 72% whereas carrier dissociation probability is also increased by 13%. Urbach energy estimation reveals that the optimally doped devices have achieved a relatively balanced amount of localized states resulting in reduced non-radiative recombination. Such localized defect states formation with FeS2NCs doping was also found to have significant influence over the charge carrier dynamics of the active layer. Transient photocurrent and photovoltage studies revealed that FeS2NCs assist in faster carrier extraction by reducing the transport time from 1.4 to 0.6μs and by enhancing carrier recombination time from 51.7 to 78.9μs for the reference and optimum devices respectively. Such an unorthodox approach of defect state assisted efficiency improvement demonstrates the importance of simultaneously understanding the charge carrier dynamics and photovoltaic performance for rational device optimization, and opens new prospects for developing high-efficiency solution processable hybrid devices.
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