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Researcher
- Gabriel Veith
- Beth L Armstrong
- Guang Yang
- Lawrence {Larry} M Anovitz
- Michelle Lehmann
- Robert Sacci
- Tomonori Saito
- Venkatakrishnan Singanallur Vaidyanathan
- Amir K Ziabari
- Ethan Self
- Jaswinder Sharma
- Philip Bingham
- Ryan Dehoff
- Sergiy Kalnaus
- Vincent Paquit
- Alexandra Moy
- Alexey Serov
- Amanda Musgrove
- Amit K Naskar
- Andrew G Stack
- Anisur Rahman
- Anna M Mills
- Benjamin L Doughty
- Bryan Lim
- Chanho Kim
- Diana E Hun
- Felipe Polo Garzon
- Georgios Polyzos
- Gina Accawi
- Gurneesh Jatana
- Ilias Belharouak
- Juliane Weber
- Jun Yang
- Junyan Zhang
- Khryslyn G Araño
- Logan Kearney
- Mark M Root
- Matthew S Chambers
- Michael Kirka
- Michael Toomey
- Nancy Dudney
- Nihal Kanbargi
- Obaid Rahman
- Peeyush Nandwana
- Peng Yang
- Philip Boudreaux
- Rangasayee Kannan
- Sai Krishna Reddy Adapa
- Tomas Grejtak
- Vera Bocharova
- Xiang Lyu
- Yiyu Wang

ORNL researchers have developed a deep learning-based approach to rapidly perform high-quality reconstructions from sparse X-ray computed tomography measurements.

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,

CO2 capture by mineral looping, either using calcium or magnesium precursors requires that the materials be calcined after CO2 is captured from the atmosphere. This separates the CO2 for later sequestration and returned the starting material to its original state.

We have been working to adapt background oriented schlieren (BOS) imaging to directly visualize building leakage, which is fast and easy.

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.

Fabrication methods are needed that are easily scalable, will enable facile manufacturing of SSEs that are < 50 µm thick to attain high energy density, and also exhibit good stability at the interface of the anode. Specifically, Wu et al.

We developed and incorporated two innovative mPET/Cu and mPET/Al foils as current collectors in LIBs to enhance cell energy density under XFC conditions.

A new nanostructured bainitic steel with accelerated kinetics for bainite formation at 200 C was designed using a coupled CALPHAD, machine learning, and data mining approach.