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Researcher
- Adam M Guss
- Radu Custelcean
- Costas Tsouris
- Josh Michener
- Bruce Moyer
- Gyoung Gug Jang
- Jeffrey Einkauf
- Liangyu Qian
- Andrzej Nycz
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- Carrie Eckert
- Daniel Jacobson
- Gs Jung
- Isaiah Dishner
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- Kuntal De
- Nikki Thiele
- Santa Jansone-Popova
- Serena Chen
- Udaya C Kalluri
- Vilmos Kertesz
- Xiaohan Yang
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- Chris Masuo
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- Debjani Pal
- Gerald Tuskan
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- Jayanthi Kumar
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- Jennifer M Pyles
- Jerry Parks
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- Jong K Keum
- Kyle Davis
- Laetitia H Delmau
- Luke Sadergaski
- Md Faizul Islam
- Mina Yoon
- Nandhini Ashok
- Parans Paranthaman
- Paul Abraham
- Santanu Roy
- Saurabh Prakash Pethe
- Subhamay Pramanik
- Uvinduni Premadasa
- Vera Bocharova
- Vincent Paquit
- William Alexander
- Yang Liu
- Yasemin Kaygusuz
- Yingzhong Ma

This invention is for bacterial strains that can utilize lignocellulose sugars. This will improve the efficiency of bioproduct formation in these strains and reduce the greenhouse-gas emission of an industrial bi

Orphan bHLH enhances plant biomass gain. The orphan bHLH gene has an exclusive nuclear subcellular localization with a transcriptional activator activity.

Demand for lithium is expected to increase drastically due to the use of rechargeable lithium-ion batteries used in portable electronics and electric vehicles. An efficient method to extract lithium is necessary to help meet this demand.

Technetium is a radioactive isotope that is a byproduct of nuclear processing; there are currently limited mechanisms to capture technetium when uranium is recycled, hindering the efficient recycling of spent nuclear fuel.

Targeted radionuclide therapy (TRT) has emerged as a promising method for cancer treatment, leveraging Meitner-Auger Electron (MAE)-emitting radionuclides.

Direct air capture (DAC) technologies that extract carbon dioxide directly from the atmosphere are critical for mitigating effects of climate change.

ORNL has developed bacterial strains that can utilize a common plastic co-monomer as a feedstock. This will help enable modern, petroleum-derived plastics to be converted into value-added chemicals.

Direct-acting antivirals are needed to combat coronavirus disease 2019 (COVID-19), which is caused by severe acute respiratory syndrome-coronavirus-2 (SARS-CoV-2).

Selenate and selenite oxyanions are crystallized together with sulfate anions using ligands. In this approach, we will take advantage of the tendency of these similar oxyanions to co-precipitate into crystalline solid solutions.