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Researcher
- William Carter
- Alex Roschli
- Andrzej Nycz
- Brian Post
- Chris Masuo
- Hongbin Sun
- Luke Meyer
- Prashant Jain
- Ryan Dehoff
- Adam Stevens
- Alex Walters
- Alice Perrin
- Amy Elliott
- Cameron Adkins
- Christopher Ledford
- Erin Webb
- Evin Carter
- Ian Greenquist
- Ilias Belharouak
- Isha Bhandari
- Jeremy Malmstead
- Joshua Vaughan
- Kitty K Mccracken
- Liam White
- Michael Borish
- Michael Kirka
- Nate See
- Nithin Panicker
- Oluwafemi Oyedeji
- Patxi Fernandez-Zelaia
- Peter Wang
- Pradeep Ramuhalli
- Praveen Cheekatamarla
- Rangasayee Kannan
- Roger G Miller
- Ruhul Amin
- Sarah Graham
- Soydan Ozcan
- Sudarsanam Babu
- Tyler Smith
- Vishaldeep Sharma
- Vittorio Badalassi
- William Peter
- Xianhui Zhao
- Yan-Ru Lin
- Ying Yang
- Yukinori Yamamoto

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.

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.

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.

Recent advances in magnetic fusion (tokamak) technology have attracted billions of dollars of investments in startups from venture capitals and corporations to develop devices demonstrating net energy gain in a self-heated burning plasma, such as SPARC (under construction) and

High strength, oxidation resistant refractory alloys are difficult to fabricate for commercial use in extreme environments.