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Researcher
- Alex Plotkowski
- Amit Shyam
- Joseph Chapman
- Nicholas Peters
- Hsuan-Hao Lu
- James A Haynes
- Joseph Lukens
- Muneer Alshowkan
- Sumit Bahl
- Alexander I Wiechert
- Alice Perrin
- Andres Marquez Rossy
- Anees Alnajjar
- Benjamin Manard
- Brian Williams
- Charles F Weber
- Costas Tsouris
- Gerry Knapp
- Govindarajan Muralidharan
- Isaac Sikkema
- Joanna Mcfarlane
- Jonathan Willocks
- Joseph Olatt
- Jovid Rakhmonov
- Kunal Mondal
- Mahim Mathur
- Mariam Kiran
- Matt Vick
- Mingyan Li
- Nicholas Richter
- Oscar Martinez
- Peeyush Nandwana
- Rose Montgomery
- Ryan Dehoff
- Sam Hollifield
- Sunyong Kwon
- Thomas R Muth
- Vandana Rallabandi
- Venugopal K Varma
- Ying Yang

Here we present a solution for practically demonstrating path-aware routing and visualizing a self-driving network.

High-gradient magnetic filtration (HGMF) is a non-destructive separation technique that captures magnetic constituents from a matrix containing other non-magnetic species. One characteristic that actinide metals share across much of the group is that they are magnetic.

Technologies directed to polarization agnostic continuous variable quantum key distribution are described.
Contact:
To learn more about this technology, email partnerships@ornl.gov or call 865-574-1051.

Currently available cast Al alloys are not suitable for various high-performance conductor applications, such as rotor, inverter, windings, busbar, heat exchangers/sinks, etc.

The development of quantum networking requires architectures capable of dynamically reconfigurable entanglement distribution to meet diverse user needs and ensure tolerance against transmission disruptions.

The invented alloys are a new family of Al-Mg alloys. This new family of Al-based alloys demonstrate an excellent ductility (10 ± 2 % elongation) despite the high content of impurities commonly observed in recycled aluminum.

Polarization drift in quantum networks is a major issue. Fiber transforms a transmitted signal’s polarization differently depending on its environment.

This invention addresses a key challenge in quantum communication networks by developing a controlled-NOT (CNOT) gate that operates between two degrees of freedom (DoFs) within a single photon: polarization and frequency.

Polarization drift in quantum networks is a major issue. Fiber transforms a transmitted signal’s polarization differently depending on its environment.

A quantum communication system enabling two-mode squeezing distribution over standard fiber optic networks for enhanced data security.