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Researcher
- Beth L Armstrong
- Gabriel Veith
- Guang Yang
- Kyle Kelley
- Lawrence {Larry} M Anovitz
- Michelle Lehmann
- Rama K Vasudevan
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- Ali Riza Ekti
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- Huixin (anna) Jiang
- Ilias Belharouak
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- Isabelle Snyder
- Jamieson Brechtl
- Jewook Park
- Joseph Olatt
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- Jun Yang
- Junyan Zhang
- Kai Li
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- Kevin M Roccapriore
- Khryslyn G Araño
- Kunal Mondal
- Liam Collins
- Logan Kearney
- Mahim Mathur
- Marti Checa Nualart
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- Maxim A Ziatdinov
- Michael Toomey
- Mingyan Li
- Mostak Mohammad
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- Neus Domingo Marimon
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- Oscar Martinez
- Ozgur Alaca
- Peng Yang
- Peter L Fuhr
- Saban Hus
- Sai Krishna Reddy Adapa
- Sam Hollifield
- Steven Randolph
- Vera Bocharova
- Xiang Lyu
- Yarom Polsky
- Yongtao Liu

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.

This technology can help to increase number of application areas of Wireless Power Transfer systems. It can be applied to consumer electronics, defense industry, automotive industry etc.

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.

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

Faults in the power grid cause many problems that can result in catastrophic failures. Real-time fault detection in the power grid system is crucial to sustain the power systems' reliability, stability, and quality.

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