Seyedeh Fahimeh Banihashemian
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Research Areas
Biography and Research Information
OverviewAI-generated summary
Seyedeh Fahimeh Banihashemian's research focuses on the development and advancement of semiconductor materials and devices, particularly within the fields of silicon photonics and photovoltaics. Her work investigates novel alloy compositions, such as CySiSn, for creating efficient and cost-effective multi-junction solar cells, with recent publications detailing designs for high-efficiency triple-junction solar cells. She also studies polarization mode dispersion in CMOS-integrated silicon photonic components, exploring simulation and experimental approaches. Banihashemian has collaborated with researchers at the University of Arkansas at Fayetteville, including Aboozar Mosleh and Hameed A. Naseem, on shared publications in these areas. Her research contributes to the ongoing development of next-generation electronic and energy technologies.
Metrics
- h-index: 3
- Publications: 11
- Citations: 48
Selected Publications
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High-Efficiency Triple-Junction Solar Cell Design using CySi1-x-ySnx Alloys on Low-Cost substrates (2025)
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Growth of CySi1-x-ySnx Alloys for Low-Cost High-Efficiency Multi-Junction Solar Cells (2024)
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Ternary CySi1-x-ySnx Alloys for Low-Cost High-Efficiency Multi-Junction Solar Cells (2021)
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Growth and characterization of low-temperature Si1-xSnx on Si using plasma enhanced chemical vapor deposition (2020)
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Investigation of Silicon Nanowires Produced by Metal-Assisted Chemical Etching Method (2020)
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Free Carrier Plasma GeSn Modulator for Mid-Infrared Integrated Microwave Photonics (2019)
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GePb Alloy Growth Using Layer Inversion Method (2018)
Collaboration Network
Top Collaborators
- GePb Alloy Growth Using Layer Inversion Method
- Growth and characterization of low-temperature Si1-xSnx on Si using plasma enhanced chemical vapor deposition
- Free Carrier Plasma GeSn Modulator for Mid-Infrared Integrated Microwave Photonics
- Investigation of Silicon Nanowires Produced by Metal-Assisted Chemical Etching Method
- Ternary CySi1-x-ySnx Alloys for Low-Cost High-Efficiency Multi-Junction Solar Cells
Showing 5 of 7 shared publications
- GePb Alloy Growth Using Layer Inversion Method
- Growth and characterization of low-temperature Si1-xSnx on Si using plasma enhanced chemical vapor deposition
- Ternary CySi1-x-ySnx Alloys for Low-Cost High-Efficiency Multi-Junction Solar Cells
- Growth of CySi1-x-ySnx Alloys for Low-Cost High-Efficiency Multi-Junction Solar Cells
- High-Efficiency Triple-Junction Solar Cell Design using CySi1-x-ySnx Alloys on Low-Cost substrates
- GePb Alloy Growth Using Layer Inversion Method
- Investigation of Silicon Nanowires Produced by Metal-Assisted Chemical Etching Method
- Ternary CySi1-x-ySnx Alloys for Low-Cost High-Efficiency Multi-Junction Solar Cells
- GePb Alloy Growth Using Layer Inversion Method
- Growth and characterization of low-temperature Si1-xSnx on Si using plasma enhanced chemical vapor deposition
- Free Carrier Plasma GeSn Modulator for Mid-Infrared Integrated Microwave Photonics
- GePb Alloy Growth Using Layer Inversion Method
- Free Carrier Plasma GeSn Modulator for Mid-Infrared Integrated Microwave Photonics
- GePb Alloy Growth Using Layer Inversion Method
- Free Carrier Plasma GeSn Modulator for Mid-Infrared Integrated Microwave Photonics
- GePb Alloy Growth Using Layer Inversion Method
- GePb Alloy Growth Using Layer Inversion Method
- GePb Alloy Growth Using Layer Inversion Method
- Free Carrier Plasma GeSn Modulator for Mid-Infrared Integrated Microwave Photonics
- Free Carrier Plasma GeSn Modulator for Mid-Infrared Integrated Microwave Photonics
- Free Carrier Plasma GeSn Modulator for Mid-Infrared Integrated Microwave Photonics
- Growth and characterization of low-temperature Si1-xSnx on Si using plasma enhanced chemical vapor deposition
- Growth and characterization of low-temperature Si1-xSnx on Si using plasma enhanced chemical vapor deposition
- Growth and characterization of low-temperature Si1-xSnx on Si using plasma enhanced chemical vapor deposition
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