Salahaldein Ahmed
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Researcher
Also affiliated: Missouri University of Science and Technology (2015–2017)
Faculty Researcher
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Salahaldein Ahmed's research focuses on the development and characterization of electronic components designed for high-temperature environments. His work specifically investigates optocouplers and gate drivers integrated into power modules, utilizing Low-Temperature Co-fired Ceramics (LTCC) packaging to ensure operational integrity at temperatures up to 250°C. Ahmed has published on the design and electrical and thermal performance of these components, including optically isolated half-bridge modules for high-temperature operation and LTCC-based gate drivers for high-density power modules.
His publications also extend to DC-DC converter topologies, such as conventional buck converters and two-phase series-capacitor buck converters, exploring aspects like deadtime mismatch elimination in GaN-based systems. Ahmed collaborates with researchers at the University of Arkansas at Fayetteville, including Zhong Chen, Pengyu Lai, and Sudharsan Chinnaiyan, on these projects. His work contributes to advancing power electronics reliability in demanding thermal conditions.
Metrics
- h-index: 5
- Publications: 14
- Citations: 51
Selected Publications
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A 200 <sup>∘</sup>C SiC Phase-Leg Power Module With Integrated Gate Drivers: Development, Performance Assessment, and Path Forward (2025)
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Design and Characterization of 1.2 kV Optically Isolated Half-Bridge Modules for High Temperature Operation (2024)
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Electrical and thermal characterization of (250 °C) SiC power module integrated with LTCC-based isolated gate driver (2024)
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Demonstration and Optimization of a 250°C LTCC-based Gate Driver for High Density, High-Temperature Power Modules (2023)
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High-Temperature (250°C) SiC Power Module Integrated with LTCC-Based Isolated Gate Driver (2023)
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Eliminating deadtime mismatch due to inserting storage capacitor of a GaN-based two-phase series-capacitor buck DC-DC converter (2022)
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Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules (2022)
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Automatic Current Sharing Mechanism in Two-phase Series Capacitor Buck DC-DC Converter (2-pscB) (2022)
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Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications (2022)
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Investigating the CSM of a GaN-Based Two-Phase Series Capacitor Buck DC-DC Converter (2022)
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A Comparison between Conventional Buck and 2-pscB DC-DC Converters (2021)
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A High-Input Voltage Two-Phase Series-Capacitor DC-DC Buck Converter (2020)
Collaboration Network
Top Collaborators
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules
- High-Temperature (250°C) SiC Power Module Integrated with LTCC-Based Isolated Gate Driver
- Eliminating deadtime mismatch due to inserting storage capacitor of a GaN-based two-phase series-capacitor buck DC-DC converter
- Electrical and thermal characterization of (250 °C) SiC power module integrated with LTCC-based isolated gate driver
Showing 5 of 8 shared publications
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules
- High-Temperature (250°C) SiC Power Module Integrated with LTCC-Based Isolated Gate Driver
- Electrical and thermal characterization of (250 °C) SiC power module integrated with LTCC-based isolated gate driver
- Demonstration and Optimization of a 250°C LTCC-based Gate Driver for High Density, High-Temperature Power Modules
Showing 5 of 7 shared publications
- Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules
- High-Temperature (250°C) SiC Power Module Integrated with LTCC-Based Isolated Gate Driver
- Electrical and thermal characterization of (250 °C) SiC power module integrated with LTCC-based isolated gate driver
- Demonstration and Optimization of a 250°C LTCC-based Gate Driver for High Density, High-Temperature Power Modules
- Design and Characterization of 1.2 kV Optically Isolated Half-Bridge Modules for High Temperature Operation
Showing 5 of 6 shared publications
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules
- Demonstration and Optimization of a 250°C LTCC-based Gate Driver for High Density, High-Temperature Power Modules
- Design and Characterization of 1.2 kV Optically Isolated Half-Bridge Modules for High Temperature Operation
- A 200 <sup>∘</sup>C SiC Phase-Leg Power Module With Integrated Gate Drivers: Development, Performance Assessment, and Path Forward
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules
- A 200 <sup>∘</sup>C SiC Phase-Leg Power Module With Integrated Gate Drivers: Development, Performance Assessment, and Path Forward
- A Comparison between Conventional Buck and 2-pscB DC-DC Converters
- Design and Characterization of 1.2 kV Optically Isolated Half-Bridge Modules for High Temperature Operation
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules
- High-Temperature (250°C) SiC Power Module Integrated with LTCC-Based Isolated Gate Driver
- Electrical and thermal characterization of (250 °C) SiC power module integrated with LTCC-based isolated gate driver
- Demonstration and Optimization of a 250°C LTCC-based Gate Driver for High Density, High-Temperature Power Modules
- Design and Characterization of 1.2 kV Optically Isolated Half-Bridge Modules for High Temperature Operation
- Demonstration and Optimization of a 250°C LTCC-based Gate Driver for High Density, High-Temperature Power Modules
- Design and Characterization of 1.2 kV Optically Isolated Half-Bridge Modules for High Temperature Operation
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of LTCC-packaged optocouplers as optical galvanic isolation for high-temperature applications
- Development of High-Temperature Optocouplers for Gate Drivers Integrated in High-Density Power Modules
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