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Cited 24 time in webofscience Cited 28 time in scopus
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Tuning of electron transport layers using MXene/metal-oxide nanocomposites for perovskite solar cells and X-ray detectorsopen access

Authors
Hussain, SajjadLiu, HailiangVikraman, DhanasekaranJaffery, Syed Hassan AbbasNazir, GhazanfarShahzad, FaisalBatoo, Khalid MujasamJung, JongwanKang, JungwonKim, Hyun-Seok
Issue Date
Apr-2023
Publisher
Royal Society of Chemistry
Keywords
Blending; Charge Transfer; Conversion Efficiency; Electron Transport Properties; Ii-vi Semiconductors; Magnetite; Perovskite; Perovskite Solar Cells; Zinc Oxide; Electron Transport Layers; Hydrophobic Nature; Interface Engineering; Metal Oxide Supports; Metal-oxide; Power Conversion Efficiencies; Smooth Surface; Surface-modification; Transfer Paths; X-ray Detector; X Ray Detectors
Citation
Nanoscale, v.15, no.16, pp 7329 - 7343
Pages
15
Indexed
SCIE
SCOPUS
Journal Title
Nanoscale
Volume
15
Number
16
Start Page
7329
End Page
7343
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/22424
DOI
10.1039/d3nr01196h
ISSN
2040-3364
2040-3372
Abstract
This work elaborates on the decoration of metal oxides (ZnO and Fe3O4) between MXene sheets for use as the supporting geometry of PCBM electron transport layers (ETLs) in perovskite solar cells and X-ray detectors. The metal oxide supports for carrying the plentiful charge carriers and the hydrophobic nature of MXenes provide an easy charge transfer path through their flakes and a smooth surface for the ETL. The developed interface engineering based on the MXene/ZnO and MXene/Fe3O4 hybrid ETL results in improved power conversion efficiencies (PCEs) of 13.31% and 13.79%, respectively. The observed PCE is improved to 25.80% and 30.34% by blending the MXene/ZnO and MXene/Fe3O4 nanoparticles with the PCBM layer, respectively. Various factors, such as surface modification, swift interfacial interaction, roughness decrement, and charge transport improvement, are strongly influenced to improve the device performance. Moreover, X-ray detectors with the MXene/Fe3O4-modulated PCBM ETL achieve a CCD-DCD, sensitivity, mobility, and trap density of 15.46 mu A cm(-2), 4.63 mA per Gy per cm(2), 5.21 x 10(-4) cm(2) V-1 s(-1), and 1.47 x 10(15) cm(2) V-1 s(-1), respectively. Metal oxide-decorated MXene sheets incorporating the PCBM ETL are a significant route for improving the photoactive species generation, long-term stability, and high mobility of perovskite-based devices.
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