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February 12, 2026International Journal of Modern Physics B0 citations

Impact of Carbon Quantum Dots Incorporation in Electron Transport Layer on the Performance of CsPbBr 3 -Based Perovskite Solar Cells

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HAHayder Hasan AliSASalah M. Abdul AzizATAhmed B. Taha

Key Points

  • The aim is to assess how incorporating carbon quantum dots into the electron transport layer affects the performance of perovskite solar cells.
  • Synthesis of carbon quantum dots using hydrothermal methods.
  • Integration of CQDs into SnO2 electron transport layer at 0%, 2%, and 4% concentrations.
  • Characterization of composite films for optical and electrical properties.
  • Measurement of power conversion efficiency and analysis of charge dynamics.
  • The composite films showed improved optical absorption and reduced optical bandgap.
  • Power conversion efficiency increased to 9.41% with 4% CQDs compared to 8.41% for pristine SnO2.
  • Enhanced charge extraction and reduced interfacial recombination were observed with CQDs incorporation.

Abstract

This study investigates the impact of incorporating carbon quantum dots (CQDs) into the SnO 2 electron transport layer (ETL) on the performance of all-inorganic CsPbBr 3 perovskite solar cells (PSCs). CQDs with abundant surface functional groups were synthesized hydrothermally and integrated into a low-temperature, solution-processed SnO 2 ETL at varying concentrations (0%, 2%, and 4%). Comprehensive characterization revealed that the SnO 2 :CQDs composite films exhibited enhanced optical absorption, a reduced optical bandgap, and improved film morphology with superior homogeneity and reduced pinholes. While XRD analysis confirmed that the CQDs did not alter the crystalline structure of SnO 2 , electrical characterization demonstrated a significant boost in device performance. The champion device utilizing the SnO 2 :CQDs (4%) ETL achieved a power conversion efficiency (PCE) of 9.41%, representing an 11.9% enhancement over the control device with pristine SnO 2 (8.41%). This improvement is attributed to superior charge extraction, reduced interfacial recombination, and optimized energy level alignment. This work underscores the efficacy of CQDs as a simple yet powerful interfacial modifier for advancing high-performance, inorganic PSCs.

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Cite This Study

Ali et al. (2026) studied this question.

synapsesocial.com/papers/698d6dd15be6419ac0d52fa7https://doi.org/10.1142/s0217979226500864
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