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An In‐Depth Investigation of the Combined Optoelectronic and Photovoltaic Properties of Lead‐Free Cs<sub>2</sub>AgBiBr<sub>6</sub> Double Perovskite Solar Cells Using DFT and SCAPS‐1D Frameworks

Md. Shihab UddinDepartment of Electrical and Electronic Engineering Islamic University Kushtia 7000 BangladeshM. Khalid HossainDepartment of Advanced Energy Engineering Science Interdisciplinary Graduate School of Engineering Sciences Kyushu University Fukuoka 816‐8580 JapanMd Borhan UddinDepartment of Materials Science and Engineering University of Rajshahi Rajshahi 6205 BangladeshGazi Farhan Ishraque TokiCollege of Materials Science and Engineering Donghua University Shanghai 201620 ChinaMohamed OuladsmaneDepartment of Chemistry College of Science King Saud University Riyadh 11451 Saudi ArabiaMirza H. K. RubelDepartment of Materials Science and Engineering University of Rajshahi Rajshahi 6205 BangladeshД.И. ТишкевичSSPA “Scientific‐Practical Materials Research Centre of NAS of Belarus” P. Brovki str. 19 Minsk 220072 BelarusP. SasikumarDepartment of Physics, Saveetha School of Engineering Saveetha Institute of Medical and Technical Sciences (SIMATS) Thandalam Chennai Tamil Nadu 602105 IndiaRajesh HaldharSchool of Chemical Engineering Yeungnam University Gyeongsan 38541 Republic of KoreaRahul PandeyVLSI Centre of Excellence Chitkara University Institute of Engineering and Technology Chitkara University Punjab 140401 India
2024en
ABI

Аннотация

Abstract In the backdrop of today's environmental priorities, where toxicity and stability hinder lead‐based perovskite solar cell (PSC) progress, the emergence of lead‐free alternatives like Cs 2 AgBiBr 6 perovskites has gained significance. This study revolves around the comprehensive evaluation of Cs 2 AgBiBr 6 as a potential photovoltaic (PV) material, using density functional theory (DFT) calculations with CASTEP. Revealing a vital bandgap of 1.654 eV and emphasizing the contributions of Ag‐4 d and Br‐4 p orbitals, this analysis also underscores Ag atoms' dominance in charge distribution. Optically, Cs 2 AgBiBr 6 exhibits UV absorption peaks around 15 eV, intensifying with photon energy up to 3.75 eV, hinting at its promise for solar applications. Guided by DFT, forty configurations involving various electron transport layers (ETLs) and hole transport layers (HTLs) are explored. Among these, CNTS emerges as the prime HTL due to ideal absorber alignment. The spotlight architecture, FTO/AZnO/Cs 2 AgBiBr 6 /CNTS/Au, boasts exceptional efficiency (23.5%), V oc (1.38 V), J sc (21.38 mA cm −2 ), and FF (79.9%). In contrast, FTO/CdZnS/Cs 2 AgBiBr 6 /CNTS/Au achieves a slightly lower 23.15% efficiency. Real‐world intricacies are probed, encompassing resistances, temperature, current–voltage ( J – V ) traits, and quantum efficiency (QE), enhancing practical relevance. These findings are thoughtfully contextualized within prior literature, showcasing the study's contributions to non‐toxic, inorganic perovskite solar technology. This work aspires to positively steer sustainable PV advancement.

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