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Researcher
- Kyle Kelley
- Rama K Vasudevan
- Venugopal K Varma
- Hongbin Sun
- Mahabir Bhandari
- Prashant Jain
- Sergei V Kalinin
- Adam Aaron
- Alexander I Wiechert
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- Anton Ievlev
- Ben Garrison
- Benjamin Manard
- Bogdan Dryzhakov
- Brad Johnson
- Brandon A Wilson
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- Christopher Hobbs
- Costas Tsouris
- Eddie Lopez Honorato
- Erin Webb
- Evin Carter
- Fred List III
- Govindarajan Muralidharan
- Hsin Wang
- Ian Greenquist
- Ilias Belharouak
- Isaac Sikkema
- Jeremy Malmstead
- Joanna Mcfarlane
- Jonathan Willocks
- Joseph Olatt
- Keith Carver
- Kevin M Roccapriore
- Kitty K Mccracken
- Kunal Mondal
- Liam Collins
- Mahim Mathur
- Marti Checa Nualart
- Matt Kurley III
- Matt Vick
- Maxim A Ziatdinov
- Mike Zach
- Mingyan Li
- Nate See
- N Dianne Ezell
- Nedim Cinbiz
- Neus Domingo Marimon
- Nithin Panicker
- Olga S Ovchinnikova
- Oluwafemi Oyedeji
- Oscar Martinez
- Pradeep Ramuhalli
- Praveen Cheekatamarla
- Richard Howard
- Rodney D Hunt
- Rose Montgomery
- Ruhul Amin
- Ryan Heldt
- Sam Hollifield
- Sergey Smolentsev
- Soydan Ozcan
- Stephen Jesse
- Steven J Zinkle
- Steven Randolph
- Thomas Butcher
- Thomas R Muth
- Tyler Gerczak
- Tyler Smith
- Ugur Mertyurek
- Vandana Rallabandi
- Vishaldeep Sharma
- Vittorio Badalassi
- Xianhui Zhao
- Yanli Wang
- Ying Yang
- Yongtao Liu
- Yutai Kato

High-gradient magnetic filtration (HGMF) is a non-destructive separation technique that captures magnetic constituents from a matrix containing other non-magnetic species. One characteristic that actinide metals share across much of the group is that they are magnetic.

The invention presented here addresses key challenges associated with counterfeit refrigerants by ensuring safety, maintaining system performance, supporting environmental compliance, and mitigating health and legal risks.

A pressure burst feature has been designed and demonstrated for relieving potentially hazardous excess pressure within irradiation capsules used in the ORNL High Flux Isotope Reactor (HFIR).

V-Cr-Ti alloys have been proposed as candidate structural materials in fusion reactor blanket concepts with operation temperatures greater than that for reduced activation ferritic martensitic steels (RAFMs).

The invention introduces a novel, customizable method to create, manipulate, and erase polar topological structures in ferroelectric materials using atomic force microscopy.

Sintering additives to improve densification and microstructure control of UN provides a facile approach to producing high quality nuclear fuels.

The use of biomass fiber reinforcement for polymer composite applications, like those in buildings or automotive, has expanded rapidly due to the low cost, high stiffness, and inherent renewability of these materials. Biomass are commonly disposed of as waste.

High coercive fields prevalent in wurtzite ferroelectrics present a significant challenge, as they hinder efficient polarization switching, which is essential for microelectronic applications.

A novel approach is presented herein to improve time to onset of natural convection stemming from fuel element porosity during a failure mode of a nuclear reactor.

Fusion reactors need efficient systems to create tritium fuel and handle intense heat and radiation. Traditional liquid metal systems face challenges like high pressure losses and material breakdown in strong magnetic fields.