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Researcher
- Vivek Sujan
- Adam Siekmann
- Omer Onar
- Subho Mukherjee
- Blane Fillingim
- Brian Post
- Erdem Asa
- Isabelle Snyder
- Lauren Heinrich
- Peeyush Nandwana
- Sudarsanam Babu
- Thomas Feldhausen
- Yousub Lee
- Alexander I Wiechert
- Costas Tsouris
- Debangshu Mukherjee
- Diana E Hun
- Easwaran Krishnan
- Gs Jung
- Gyoung Gug Jang
- Hyeonsup Lim
- James Manley
- Jamieson Brechtl
- Joe Rendall
- Karen Cortes Guzman
- Kashif Nawaz
- Kuma Sumathipala
- Md Inzamam Ul Haque
- Mengjia Tang
- Muneeshwaran Murugan
- Olga S Ovchinnikova
- Radu Custelcean
- Ramanan Sankaran
- Shajjad Chowdhury
- Tomonori Saito
- Vimal Ramanuj
- Wenjun Ge
- Zoriana Demchuk

The growing demand for electric vehicles (EVs) has necessitated significant advancements in EV charging technologies to ensure efficient and reliable operation.

The growing demand for renewable energy sources has propelled the development of advanced power conversion systems, particularly in applications involving fuel cells.

Among the methods for point source carbon capture, the absorption of CO2 using aqueous amines (namely MEA) from the post-combustion gas stream is currently considered the most promising.

Estimates based on the U.S. Department of Energy (DOE) test procedure for water heaters indicate that the equivalent of 350 billion kWh worth of hot water is discarded annually through drains, and a large portion of this energy is, in fact, recoverable.

The incorporation of low embodied carbon building materials in the enclosure is increasing the fuel load for fire, increasing the demand for fire/flame retardants.

This invention presents a multiport converter (MPC) based power supply to charge the 12 V and 24 V auxiliary batteries in heavy duty (HD) fuel cell (FC) electric vehicle (EV) power train.

This invention presents an integrated strategy to reduce end-user electricity costs and grid carbon emissions by efficiently utilizing Distributed Energy Resources (DER) and grid-scale electrical energy storage systems, such as batteries.

This work seeks to alter the interface condition through thermal history modification, deposition energy density, and interface surface preparation to prevent interface cracking.

Additive manufacturing (AM) enables the incremental buildup of monolithic components with a variety of materials, and material deposition locations.