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Researcher
- Vandana Rallabandi
- Subho Mukherjee
- Amit Shyam
- Beth L Armstrong
- Peeyush Nandwana
- Burak Ozpineci
- Gui-Jia Su
- Omer Onar
- Shajjad Chowdhury
- Alex Plotkowski
- Brian Post
- Jun Qu
- Mostak Mohammad
- Rangasayee Kannan
- Sudarsanam Babu
- Veda Prakash Galigekere
- Yong Chae Lim
- Zhili Feng
- Blane Fillingim
- Corson Cramer
- Himel Barua
- James A Haynes
- Jian Chen
- Lauren Heinrich
- Meghan Lamm
- Pedro Ribeiro
- Rafal Wojda
- Ryan Dehoff
- Steve Bullock
- Sumit Bahl
- Thomas Feldhausen
- Tomas Grejtak
- Wei Zhang
- Ying Yang
- Yousub Lee
- Adam Stevens
- Alexander I Wiechert
- Alice Perrin
- Andres Marquez Rossy
- Benjamin Manard
- Ben Lamm
- Bruce A Pint
- Bryan Lim
- Charles F Weber
- Christopher Fancher
- Christopher Ledford
- Costas Tsouris
- Dali Wang
- David J Mitchell
- Dean T Pierce
- Erdem Asa
- Ethan Self
- Gabriel Veith
- Gerry Knapp
- Glenn R Romanoski
- Gordon Robertson
- Govindarajan Muralidharan
- Hongbin Sun
- James Klett
- Jay Reynolds
- Jeff Brookins
- Jiheon Jun
- Joanna Mcfarlane
- Jonathan Willocks
- Jon Wilkins
- Jordan Wright
- Jovid Rakhmonov
- Khryslyn G Araño
- Lingxiao Xue
- Marm Dixit
- Matthew S Chambers
- Matt Vick
- Michael Kirka
- Nancy Dudney
- Nicholas Richter
- Nishanth Gadiyar
- Peter Wang
- Praveen Cheekatamarla
- Praveen Kumar
- Priyanshi Agrawal
- Roger G Miller
- Rose Montgomery
- Sarah Graham
- Sergiy Kalnaus
- Steven J Zinkle
- Sunyong Kwon
- Thomas R Muth
- Tim Graening Seibert
- Tolga Aytug
- Trevor Aguirre
- Venugopal K Varma
- Vishaldeep Sharma
- Vivek Sujan
- Weicheng Zhong
- Wei Tang
- William Peter
- Xiang Chen
- Yanli Wang
- Yiyu Wang
- Yukinori Yamamoto
- Yutai Kato

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.

New demands in electric vehicles have resulted in design changes for the power electronic components such as the capacitor to incur lower volume, higher operating temperatures, and dielectric properties (high dielectric permittivity and high electrical breakdown strengths).

This invention describes a new combustion synthesis route to produce high purity, high performance DRX cathodes for next-generation Li-ion batteries.

A new, simpler power module and manifold design shows lower weight and volume, which allows higher power density compared with current state of the art.

Wind or hydro power are predominantly large-scale with giant generators to convert wind or water captured by turbines into electricity. But residential-sized wind turbines could generate power for a whole house.

There is a strong drive to improve the electrical performance of a power module for power electronics applications including transportation, buildings, renewables, and power delivery.

The co-processing of cathode and composite electrolyte for solid state polymer batteries has been developed. A traditional uncalendared cathode of e.g.

The first wall and blanket of a fusion energy reactor must maintain structural integrity and performance over long operational periods under neutron irradiation and minimize long-lived radioactive waste.