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Researcher
- Kyle Kelley
- Lawrence {Larry} M Anovitz
- Rama K Vasudevan
- Mike Zach
- Sergei V Kalinin
- Stephen Jesse
- An-Ping Li
- Andrew F May
- Andrew G Stack
- Andrew Lupini
- Anton Ievlev
- Ben Garrison
- Bogdan Dryzhakov
- Brad Johnson
- Bruce Moyer
- Charlie Cook
- Christopher Hershey
- Craig Blue
- Daniel Rasmussen
- Debjani Pal
- Hoyeon Jeon
- Hsin Wang
- Huixin (anna) Jiang
- James Klett
- Jamieson Brechtl
- Jeffrey Einkauf
- Jennifer M Pyles
- Jewook Park
- John Lindahl
- Juliane Weber
- Justin Griswold
- Kai Li
- Kashif Nawaz
- Kevin M Roccapriore
- Kuntal De
- Laetitia H Delmau
- Liam Collins
- Luke Sadergaski
- Marti Checa Nualart
- Maxim A Ziatdinov
- Nedim Cinbiz
- Neus Domingo Marimon
- Olga S Ovchinnikova
- Ondrej Dyck
- Padhraic L Mulligan
- Peng Yang
- Saban Hus
- Sai Krishna Reddy Adapa
- Sandra Davern
- Steven Randolph
- Tony Beard
- Yongtao Liu

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.

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

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

Distortion in scanning tunneling microscope (STM) images is an unavoidable problem. This technology is an algorithm to identify and correct distorted wavefronts in atomic resolution STM images.

Mineral looping is a promising method for direct air capture of CO2. However, reduction of sorbent reactivity after each loop is likely to be significant problems for mineral looping by MgO.

The technologies provide a system and method of needling of veiled AS4 fabric tape.

Moisture management accounts for over 40% of the energy used by buildings. As such development of energy efficient and resilient dehumidification technologies are critical to decarbonize the building energy sector.

Spherical powders applied to nuclear targetry for isotope production will allow for enhanced heat transfer properties, tailored thermal conductivity and minimize time required for target fabrication and post processing.

ORNL will develop an advanced high-performing RTG using a novel radioisotope heat source.