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Spray-Deposited, Virus-Templated SnO2 Mesoporous Electron Transport Layer for High-Efficiency, Sequential-Deposited Perovskite Solar Cells

Title
Spray-Deposited, Virus-Templated SnO2 Mesoporous Electron Transport Layer for High-Efficiency, Sequential-Deposited Perovskite Solar Cells
Author(s)
Kumar, NeeteshLee, Hock BengTyagi, BarkhaOvhal, Manoj MayajiCho, SinyoungLee, Jong-SooOh, Jin-WooKang, Jae-Wook
Issued Date
2023-07
Citation
Solar RRL, v.7, no.13
Type
Article
Author Keywords
grain boundarieslarge areaM13 bacteriophagescalabilitytin oxide
Keywords
FILMSM13 BACTERIOPHAGEDIRECTED SYNTHESISTEMPERATUREPASSIVATIONNANOSHEETS
ISSN
2367-198X
Abstract
In recent years, researchers have developed spray deposition technology to fabricate tin oxide electron transport layer (ETL) with the aim of manufacturing high-efficiency, large-area perovskite solar cell (PSC). However, the power conversion efficiency (PCE) of PSC based on sprayed SnO2 ETL remains inferior to that of the spin-coated SnO2 ETL. Herein, the combined use of spray deposition and genetically engineered M13 bacteriophages for the deposition of M13-SnO2 biohybrid ETL over large-area (62.5 cm2) substrates is demonstrated. The spray-deposited M13-SnO2 ETLs exhibit mesoporous morphologies with >85% transmittance in UV–vis region. Through the use of M13-SnO2 ETL, the sequential-deposited PSCs achieve a maximum PCE of ≈22.1%. The improved performance of the PSC is attributable to the mesoporous morphology of M13-SnO2 ETL that facilitates the growth of larger perovskite grains. The PSCs based on M13-SnO2 ETLs also display highly consistent photovoltaic performance which manifests the excellent scalability of the spraying process. Furthermore, M13-SnO2-based PSCs exhibit higher ambient stability compared to the SnO2-based PSCs, showing that the use of M13 bacteriophage is incredibly beneficial to both the efficiency and stability of PSCs. © 2023 Wiley-VCH GmbH.
URI
http://hdl.handle.net/20.500.11750/47594
DOI
10.1002/solr.202300065
Publisher
Wiley
Related Researcher
  • 이종수 Lee, Jong-Soo
  • Research Interests Design of new type of multifunctional nanoparticles for energy-related devices; 다기능성 나노재료; 무기물 태양전지; 열전소자
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Department of Energy Science and Engineering MNEDL(Multifunctional Nanomaterials & Energy Devices Lab) 1. Journal Articles

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