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Researcher
- Radu Custelcean
- Peeyush Nandwana
- Costas Tsouris
- Beth L Armstrong
- Gabriel Veith
- Guang Yang
- Gyoung Gug Jang
- Jeffrey Einkauf
- Lawrence {Larry} M Anovitz
- Michelle Lehmann
- Tomonori Saito
- Amit Shyam
- Benjamin L Doughty
- Blane Fillingim
- Brian Post
- Bruce Moyer
- Ethan Self
- Gs Jung
- Jaswinder Sharma
- Lauren Heinrich
- Nikki Thiele
- Rangasayee Kannan
- Robert Sacci
- Santa Jansone-Popova
- Sergiy Kalnaus
- Sudarsanam Babu
- Thomas Feldhausen
- Vera Bocharova
- Yousub Lee
- Alexander I Wiechert
- Alexey Serov
- Alex Plotkowski
- Amanda Musgrove
- Amit K Naskar
- Andres Marquez Rossy
- Andrew G Stack
- Anisur Rahman
- Anna M Mills
- Bruce A Pint
- Bryan Lim
- Chanho Kim
- Christopher Fancher
- Felipe Polo Garzon
- Georgios Polyzos
- Gordon Robertson
- Ilias Belharouak
- Ilja Popovs
- Jayanthi Kumar
- Jay Reynolds
- Jeff Brookins
- Jennifer M Pyles
- Jong K Keum
- Juliane Weber
- Jun Yang
- Junyan Zhang
- Khryslyn G Araño
- Laetitia H Delmau
- Logan Kearney
- Luke Sadergaski
- Matthew S Chambers
- Md Faizul Islam
- Michael Toomey
- Mina Yoon
- Nancy Dudney
- Nihal Kanbargi
- Parans Paranthaman
- Peng Yang
- Peter Wang
- Ryan Dehoff
- Sai Krishna Reddy Adapa
- Santanu Roy
- Saurabh Prakash Pethe
- Steven J Zinkle
- Subhamay Pramanik
- Tim Graening Seibert
- Tomas Grejtak
- Uvinduni Premadasa
- Weicheng Zhong
- Wei Tang
- Xiang Chen
- Xiang Lyu
- Yanli Wang
- Ying Yang
- Yingzhong Ma
- Yiyu Wang
- Yutai Kato

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,

The technologies provides for regeneration of anion-exchange resin.
Contact
To learn more about this technology, email partnerships@ornl.gov or call 865-574-1051.

Ruthenium is recovered from used nuclear fuel in an oxidizing environment by depositing the volatile RuO4 species onto a polymeric substrate.

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.

This invention describes a new class of amphiphilic chelators (extractants) that can selectively separate large, light rare earth elements from heavy, small rare earth elements in solvent extraction schemes.

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.

Among the methods for point source carbon capture, the absorption of CO2 using aqueous amines (namely MEA) from the post-combustion gas stream is currently considered the most promising.

The lack of real-time insights into how materials evolve during laser powder bed fusion has limited the adoption by inhibiting part qualification. The developed approach provides key data needed to fabricate born qualified parts.

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.