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Researcher
- Diana E Hun
- Rama K Vasudevan
- Philip Boudreaux
- Sergei V Kalinin
- Som Shrestha
- Yongtao Liu
- Joseph Chapman
- Kevin M Roccapriore
- Kyle Kelley
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- Tomonori Saito
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- Hsuan-Hao Lu
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- Kashif Nawaz
- Mahabir Bhandari
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- Debangshu Mukherjee
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- Gs Jung
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- Gyoung Gug Jang
- Hoyeon Jeon
- Huixin (anna) Jiang
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- Ivan Vlassiouk
- Jamieson Brechtl
- Jewook Park
- Jong K Keum
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- Liam Collins
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- Neus Domingo Marimon
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- Saban Hus
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- Shiwanka Vidarshi Wanasinghe Wanasinghe Mudiyanselage
- Singanallur Venkatakrishnan
- Stephen M Killough
- Steven Randolph
- Sumner Harris
- Utkarsh Pratiush
- Zhenglai Shen
- Zhiming Gao

Dual-GP addresses limitations in traditional GPBO-driven autonomous experimentation by incorporating an additional surrogate observer and allowing human oversight, this technique improves optimization efficiency via data quality assessment and adaptability to unanticipated exp

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.

We have been working to adapt background oriented schlieren (BOS) imaging to directly visualize building leakage, which is fast and easy.

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 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.