Binary Oxide Ceramics (TiO2, ZnO, Al2O3, SiO2, CeO2, Fe2O3, and WO3) for Solar Cell Applications: A Comparative and Bibliometric Analysis
Бинарные оксидные керамические материалы (TiO2, ZnO, Al2O3, SiO2, CeO2, Fe2O3 и WO3) для применения в солнечных элементах: сравнительный и библиометрический анализ
2025-09-23
SCID: 54.1/pj2hvgrr
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bibliometric analysisbinary oxide ceramicselectron transport layerssolar cell applicationssurface passivation
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Abstract (AI)
Binary oxide ceramics have emerged as key materials in solar energy research due to their versatility, chemical stability, and tunable electronic properties. This study presents a comparative analysis of seven prominent oxides (TiO2, ZnO, Al2O3, SiO2, CeO2, Fe2O3, and WO3), focusing on their functional roles in silicon, perovskite, dye-sensitized, and thin-film solar cells. A bibliometric analysis covering over 50,000 publications highlights TiO2 and ZnO as the most widely studied materials, serving as electron transport layers, antireflective coatings, and buffer layers. Al2O3 and SiO2 demonstrate highly specialized applications in surface passivation and interface engineering, while CeO2 offers UV-blocking capability and Fe2O3 shows potential as an absorber material in photoelectrochemical systems. WO3 is noted for its multifunctionality and suitability for scalable, high-rate processing. Together, these findings suggest that binary oxide ceramics are poised to transition from supporting roles to essential components of stable, efficient, and environmentally safer next-generation solar cells.
Key Findings
1
A bibliometric analysis of over 50,000 publications identifies TiO2 and ZnO as the most extensively studied binary oxides.
2
Al2O3 and SiO2 are specialized for surface passivation and interface engineering, while CeO2 provides UV-blocking functionality.
3
Binary oxide ceramics may evolve from supporting materials into essential components of stable, efficient, and environmentally safer next-generation solar cells.
4
Fe2O3 shows potential as an absorber in photoelectrochemical systems, and WO3 offers multifunctionality with suitability for scalable, high-rate processing.
5
The study compares TiO2, ZnO, Al2O3, SiO2, CeO2, Fe2O3, and WO3 across silicon, perovskite, dye-sensitized, and thin-film solar cells.
6
TiO2 and ZnO commonly function as electron transport layers, antireflective coatings, and buffer layers in solar-cell architectures.
Research Object
Binary oxide ceramics (TiO2, ZnO, Al2O3, SiO2, CeO2, Fe2O3, and WO3) used in solar cells
Research Subject
Their comparative functional roles, application specialization, and research trends across silicon, perovskite, dye-sensitized, thin-film, and photoelectrochemical solar cells
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2025-09-23
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