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Researcher
- Ali Passian
- Gabriel Veith
- Guang Yang
- Michelle Lehmann
- Beth L Armstrong
- Joseph Chapman
- Nicholas Peters
- Robert Sacci
- Tomonori Saito
- Ethan Self
- Hsuan-Hao Lu
- Jaswinder Sharma
- Joseph Lukens
- Muneer Alshowkan
- Sergiy Kalnaus
- Soydan Ozcan
- Xianhui Zhao
- Alexandra Moy
- Alexey Serov
- Alex Roschli
- Amanda Musgrove
- Amit K Naskar
- Anees Alnajjar
- Anisur Rahman
- Anna M Mills
- Benjamin L Doughty
- Brian Williams
- Chanho Kim
- Claire Marvinney
- Dali Wang
- Erin Webb
- Evin Carter
- Georgios Polyzos
- Halil Tekinalp
- Harper Jordan
- Ilias Belharouak
- Jeremy Malmstead
- Jian Chen
- Joel Asiamah
- Joel Dawson
- Jun Yang
- Khryslyn G Araño
- Kitty K Mccracken
- Logan Kearney
- Mariam Kiran
- Matthew S Chambers
- Mengdawn Cheng
- Michael Toomey
- Nance Ericson
- Nancy Dudney
- Nihal Kanbargi
- Oluwafemi Oyedeji
- Paula Cable-Dunlap
- Sanjita Wasti
- Srikanth Yoginath
- Tyler Smith
- Varisara Tansakul
- Vera Bocharova
- Wei Zhang
- Xiang Lyu
- Zhili Feng

The present invention is a carbon nanofiber composite for use as the cathode matrix in an alkali-metal polysulfide flow battery. The CNF composite demonstrates an improvement in sulfur utilization compared to carbon paper alone.

We have developed a novel extrusion-based 3D printing technique that can achieve a resolution of 0.51 mm layer thickness, and catalyst loading of 44% and 90.5% before and after drying, respectively.

Process to coat air and or moisture sensitive solid electrolytes for all solid state batteries.
Contact
To learn more about this technology, email partnerships@ornl.gov or call 865-574-1051.

This invention utilizes a custom-synthesized vinyl trifluoromethanesulfonimide (VTFSI) salt and an alcohol containing small molecule or polymer for the synthesis of novel single-ion conducting polymer electrolytes for the use in Li-ion and beyond Li-ion batteries, fuel cells,

Here we present a solution for practically demonstrating path-aware routing and visualizing a self-driving network.

Technologies directed to polarization agnostic continuous variable quantum key distribution are described.
Contact:
To learn more about this technology, email partnerships@ornl.gov or call 865-574-1051.

The development of quantum networking requires architectures capable of dynamically reconfigurable entanglement distribution to meet diverse user needs and ensure tolerance against transmission disruptions.

Polarization drift in quantum networks is a major issue. Fiber transforms a transmitted signal’s polarization differently depending on its environment.

This is a novel approach to enhance the performance and durability of all-solid-state batteries (ASSBs) by focusing on two primary components: the Si anode and the thin electrolyte integration.