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Journal article

Light absorption and recycling in hybrid metal halide perovskites photovoltaic devices

Abstract:
The production of highly efficient single‐ and multijunction metal halide perovskite (MHP) solar cells requires careful optimization of the optical and electrical properties of these devices. Here, precise control of CH3NH3PbI3 perovskite layers is demonstrated in solar cell devices through the use of dual source coevaporation. Light absorption and device performance are tracked for incorporated MHP films ranging from ≈67 nm to ≈1.4 µm thickness and transfer‐matrix optical modeling is utilized to quantify optical losses that arise from interference effects. Based on these results, a device with 19.2% steady‐state power conversion efficiency is achieved through incorporation of a perovskite film with near‐optimum predicted thickness (≈709 nm). Significantly, a clear signature of photon reabsorption is observed in perovskite films that have the same thickness (≈709 nm) as in the optimized device. Despite the positive effect of photon recycling associated with photon reabsorption, devices with thicker (>750 nm) MHP layers exhibit poor performance owing to competing nonradiative charge recombination in a “dead‐volume” of MHP. Overall, these findings demonstrate the need for fine control over MHP thickness to achieve the highest efficiency cells, and accurate consideration of photon reabsorption, optical interference, and charge transport properties.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1002/aenm.201903653

Authors



Publisher:
Wiley
Journal:
Advanced Energy Materials More from this journal
Volume:
10
Issue:
10
Article number:
1903653
Publication date:
2020-02-03
Acceptance date:
2019-12-18
DOI:
EISSN:
1614-6840
ISSN:
1614-6832


Language:
English
Keywords:
Pubs id:
pubs:1078370
UUID:
uuid:e4dcd072-bef0-43f3-acd4-1f8e12292281
Local pid:
pubs:1078370
Source identifiers:
1078370
Deposit date:
2019-12-18

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