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Inverted J–V Hysteresis in Perovskite Solar Cells: Insights from Photovoltaic Quantum Efficiency
ACS Energy Letters, Volume: 11, Issue: 2, Pages: 2173 - 2178
Swansea University Authors:
Carys Worsley, Trystan Watson
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DOI (Published version): 10.1021/acsenergylett.5c04035
Abstract
The most typical hysteresis in the current density–voltage (J–V) curve of perovskite solar cells (PSCs) shows better performance in the backward (BW) than in the forward (FW) voltage scan (normal hysteresis). The opposite, where the FW scan yields higher photocurrent, is known as inverted hysteresis...
| Published in: | ACS Energy Letters |
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| ISSN: | 2380-8195 2380-8195 |
| Published: |
American Chemical Society (ACS)
2026
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| Online Access: |
Check full text
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| URI: | https://cronfa.swan.ac.uk/Record/cronfa71486 |
| Abstract: |
The most typical hysteresis in the current density–voltage (J–V) curve of perovskite solar cells (PSCs) shows better performance in the backward (BW) than in the forward (FW) voltage scan (normal hysteresis). The opposite, where the FW scan yields higher photocurrent, is known as inverted hysteresis and is also frequently observed. Here, we examine PSCs exhibiting both normal and inverted hysteresis, depending on scan rate and preconditioning. Spectral changes in the external quantum efficiency (EQE) linked to ionic redistribution reveal that inverted hysteresis arises from blue-range photocurrent losses caused by enhanced recombination at the interfaces due to ionic accumulation. This trend is consistent across PSC architectures, as demonstrated for triple mesoscopic carbon-based (C-PSCs) and planar p-i-n devices. Combined with drift-diffusion simulations, the results show that ionic losses can be bidirectional, and the hysteresis direction depends on how the ionic distribution impacts charge collection efficiency. |
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| Item Description: |
Letter |
| College: |
Faculty of Science and Engineering |
| Funders: |
This research received funding from the European Union’s Horizon 2020 program under grant agreement no. 851676 (ERC StGrt). |
| Issue: |
2 |
| Start Page: |
2173 |
| End Page: |
2178 |

