Imam Al Razi
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Graduate Research Assistant
Also affiliated: Intel (United States) (2023); Bangladesh University of Engineering and Technology (2016)
Graduate Student Researcher
Research Areas
Links
Biography and Research Information
OverviewAI-generated summary
Imam Al Razi's research focuses on the design automation of multichip power modules (MCPMs). His work specifically addresses the development of design flows and tools, such as PowerSynth, to facilitate the creation of hierarchical and heterogeneous 2.5-D and high-density 3-D MCPMs. Al Razi investigates methods for fast and accurate parasitic extraction, including considerations for eddy-current losses and inductance, to optimize module layouts. His research also encompasses electromigration-aware reliability optimization within MCPM designs. He has co-authored numerous publications on these topics with collaborators including Yarui Peng, Quang Trung Le, H. Alan Mantooth, and Tristan M. Evans, all from the University of Arkansas at Fayetteville.
Metrics
- h-index: 7
- Publications: 21
- Citations: 219
Selected Publications
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Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules (2023)
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Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules (2023)
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PowerSynth 2: Physical Design Automation for High-Density 3-D Multichip Power Modules (2022)
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Electromigration-Aware Reliability Optimization of MCPM Layouts Using PowerSynth (2022)
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Fast and Accurate Parasitic Extraction in Multichip Power Module Design Automation Considering Eddy-Current Losses (2022)
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Hierarchical Layout Synthesis and Optimization Framework for High-Density Power Module Design Automation (2021)
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Fast and Accurate Inductance Extraction for Power Module Layout Optimization Using Loop-Based Method (2021)
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Designing a Graphical User Interface for the Power Module Optimization Tool PowerSynth (2021)
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PowerSynth Integrated CAD flow for High Density Power Modules (2021)
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PowerSynth-Guided Reliability Optimization of Multi-Chip Power Module (2021)
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PowerSynth Design Automation Flow for Hierarchical and Heterogeneous 2.5-D Multichip Power Modules (2021)
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Physical Design Automation for High-Density 3D Power Module Layout Synthesis and Optimization (2020)
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PowerSynth progression on layout optimization for reliability and signal integrity (2020)
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System-Level Thermal Management and Reliability of Automotive Electronics: Goals and Opportunities in the Next Generation of Electric and Hybrid Electric Vehicles (2019)
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Hierarchical Layout Synthesis and Design Automation for 2.5D Heterogeneous Multi-Chip Power Modules (2019)
Collaboration Network
Top Collaborators
- PowerSynth Design Automation Flow for Hierarchical and Heterogeneous 2.5-D Multichip Power Modules
- PowerSynth 2: Physical Design Automation for High-Density 3-D Multichip Power Modules
- Fast and Accurate Parasitic Extraction in Multichip Power Module Design Automation Considering Eddy-Current Losses
- Fast and Accurate Inductance Extraction for Power Module Layout Optimization Using Loop-Based Method
- PowerSynth-Guided Reliability Optimization of Multi-Chip Power Module
Showing 5 of 11 shared publications
- PowerSynth Design Automation Flow for Hierarchical and Heterogeneous 2.5-D Multichip Power Modules
- PowerSynth 2: Physical Design Automation for High-Density 3-D Multichip Power Modules
- Fast and Accurate Parasitic Extraction in Multichip Power Module Design Automation Considering Eddy-Current Losses
- Fast and Accurate Inductance Extraction for Power Module Layout Optimization Using Loop-Based Method
- PowerSynth Integrated CAD flow for High Density Power Modules
Showing 5 of 6 shared publications
- PowerSynth Design Automation Flow for Hierarchical and Heterogeneous 2.5-D Multichip Power Modules
- PowerSynth 2: Physical Design Automation for High-Density 3-D Multichip Power Modules
- Fast and Accurate Parasitic Extraction in Multichip Power Module Design Automation Considering Eddy-Current Losses
- Fast and Accurate Inductance Extraction for Power Module Layout Optimization Using Loop-Based Method
- PowerSynth Integrated CAD flow for High Density Power Modules
Showing 5 of 6 shared publications
- PowerSynth-Guided Reliability Optimization of Multi-Chip Power Module
- Electromigration-Aware Reliability Optimization of MCPM Layouts Using PowerSynth
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- PowerSynth Design Automation Flow for Hierarchical and Heterogeneous 2.5-D Multichip Power Modules
- PowerSynth 2: Physical Design Automation for High-Density 3-D Multichip Power Modules
- Fast and Accurate Parasitic Extraction in Multichip Power Module Design Automation Considering Eddy-Current Losses
- Electromigration-Aware Reliability Optimization of MCPM Layouts Using PowerSynth
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- PowerSynth Design Automation Flow for Hierarchical and Heterogeneous 2.5-D Multichip Power Modules
- Fast and Accurate Parasitic Extraction in Multichip Power Module Design Automation Considering Eddy-Current Losses
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- Factoring Interacting Stress Mechanisms in Design for Reliability of Extreme Environment Power Modules
- Designing a Graphical User Interface for the Power Module Optimization Tool PowerSynth
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