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Researcher
- Ali Passian
- Joseph Chapman
- Nicholas Peters
- Hsuan-Hao Lu
- Joseph Lukens
- Muneer Alshowkan
- Soydan Ozcan
- Xianhui Zhao
- Yaosuo Xue
- Alex Roschli
- Anees Alnajjar
- Brian Williams
- Claire Marvinney
- Erin Webb
- Evin Carter
- Fei Wang
- Halil Tekinalp
- Harper Jordan
- Jeremy Malmstead
- Joel Asiamah
- Joel Dawson
- Kitty K Mccracken
- Mariam Kiran
- Mengdawn Cheng
- Nance Ericson
- Oluwafemi Oyedeji
- Paula Cable-Dunlap
- Phani Ratna Vanamali Marthi
- Rafal Wojda
- Sanjita Wasti
- Sreenivasa Jaldanki
- Srikanth Yoginath
- Suman Debnath
- Sunil Subedi
- Tyler Smith
- Varisara Tansakul
- Yonghao Gui

We have developed a novel extrusion-based 3D printing technique that can achieve a resolution of 0.51 mm layer thickness, and catalyst loading of 44% and 90.5% before and after drying, respectively.

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

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.

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

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.

The use of biomass fiber reinforcement for polymer composite applications, like those in buildings or automotive, has expanded rapidly due to the low cost, high stiffness, and inherent renewability of these materials. Biomass are commonly disposed of as waste.