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Researcher
- Rama K Vasudevan
- Sergei V Kalinin
- Yongtao Liu
- Isabelle Snyder
- Kevin M Roccapriore
- Kyle Kelley
- Maxim A Ziatdinov
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- Gs Jung
- Gurneesh Jatana
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- Hoyeon Jeon
- Huixin (anna) Jiang
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- Ivan Vlassiouk
- Jamieson Brechtl
- Jewook Park
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- Kai Li
- Kyle Gluesenkamp
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- Subho Mukherjee
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- Utkarsh Pratiush
- Viswadeep Lebakula
- Vivek Sujan
- Yarom Polsky
- Zhiming Gao

ORNL researchers have developed a deep learning-based approach to rapidly perform high-quality reconstructions from sparse X-ray computed tomography measurements.

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

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

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

Faults in the power grid cause many problems that can result in catastrophic failures. Real-time fault detection in the power grid system is crucial to sustain the power systems' reliability, stability, and quality.

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

Scanning transmission electron microscopes are useful for a variety of applications. Atomic defects in materials are critical for areas such as quantum photonics, magnetic storage, and catalysis.

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.

Water heaters and heating, ventilation, and air conditioning (HVAC) systems collectively consume about 58% of home energy use.

A human-in-the-loop machine learning (hML) technology potentially enhances experimental workflows by integrating human expertise with AI automation.