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The Impact of Multifunctional Ambipolar Polymer Integration on the Performance and Stability of Perovskite Solar Cells

Title
The Impact of Multifunctional Ambipolar Polymer Integration on the Performance and Stability of Perovskite Solar Cells
Author(s)
Kim, Soo-KwanKim, JinseckChoi, SeongminYong, TaeyeongPark, Jin YoungLee, GyudongHan, SanghunYou, Hyung RyulKo, SeonkyungPark, GyuriAhn, HyungjuYang, JiwoongKim, YounghoonKim, Bumjoon J.Choi, Jongmin
Issued Date
2023-11
Citation
Advanced Energy Materials, v.13, no.41
Type
Article
Author Keywords
energy band engineeringinterfacespassivationperovskite solar cellsambipolar polymers
Keywords
PASSIVATIONEFFICIENTION MIGRATION
ISSN
1614-6832
Abstract
Effective passivation of grain boundaries in perovskite solar cells is essential for achieving high device performance and stability. However, traditional polymer-based passivation strategies can introduce challenges, including increased series resistance, disruption of charge transport, and insufficient passivation coverage. In this study, a novel approach is proposed that integrates a multifunctional ambipolar polymer into perovskite solar cells to address these issues. The ambipolar polymer is successfully incorporated into both the perovskite film and the hole transport layer (HTL), enabling comprehensive restoration of defect sites within the perovskite active layer. Moreover, this approach yields additional advantages for perovskite devices, such as enabling bidirectional charge transport, limiting pinhole formation at the HTL, reducing lithium-ion migration from the HTL to the perovskite, and minimizing both the band offset and surface energy difference between the perovskite film and HTL interface. With these benefits, the ambipolar polymer integrated device achieves a power conversion efficiency (PCE) of 24.0%. Remarkably, it also exhibits enhanced long-term stability, preserving 92% of its initial PCE after 2000h under ambient conditions, and 80% of its initial PCE after 432h under harsh conditions (at 85°C and 85 ± 5% RH). © 2023 Wiley-VCH GmbH.
URI
http://hdl.handle.net/20.500.11750/46373
DOI
10.1002/aenm.202301927
Publisher
Wiley
Related Researcher
  • 양지웅 Yang, Jiwoong
  • Research Interests Quantum Dots; Nanocrystals; Displays; Solar Energy; TEM; Photocatalyst
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Appears in Collections:
Department of Energy Science and Engineering NanoMaterials Laboratory 1. Journal Articles
Department of Energy Science and Engineering Chemical & Energy Materials Engineering (CEME) Laboratory 1. Journal Articles

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