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Researcher
- Diana E Hun
- Peeyush Nandwana
- Rama K Vasudevan
- Philip Boudreaux
- Sergei V Kalinin
- Som Shrestha
- Yongtao Liu
- Kevin M Roccapriore
- Maxim A Ziatdinov
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- Rangasayee Kannan
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- Yousub Lee
- Zoriana Demchuk
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- Anton Ievlev
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- Catalin Gainaru
- Charles D Ottinger
- Christopher Fancher
- Gerd Duscher
- Gina Accawi
- Gordon Robertson
- Gurneesh Jatana
- Jay Reynolds
- Jeff Brookins
- Karen Cortes Guzman
- Kuma Sumathipala
- Liam Collins
- Mahshid Ahmadi-Kalinina
- Mark M Root
- Marti Checa Nualart
- Mengjia Tang
- Natasha Ghezawi
- Neus Domingo Marimon
- Olga S Ovchinnikova
- Ryan Dehoff
- Sai Mani Prudhvi Valleti
- Shiwanka Vidarshi Wanasinghe Wanasinghe Mudiyanselage
- Singanallur Venkatakrishnan
- Stephen Jesse
- Stephen M Killough
- Steven J Zinkle
- Sumner Harris
- Tim Graening Seibert
- Tomas Grejtak
- Utkarsh Pratiush
- Weicheng Zhong
- Wei Tang
- Xiang Chen
- Yanli Wang
- Ying Yang
- Yiyu Wang
- Yutai Kato
- Zhenglai Shen

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 lack of real-time insights into how materials evolve during laser powder bed fusion has limited the adoption by inhibiting part qualification. The developed approach provides key data needed to fabricate born qualified parts.

A new nanostructured bainitic steel with accelerated kinetics for bainite formation at 200 C was designed using a coupled CALPHAD, machine learning, and data mining approach.

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

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.

The incorporation of low embodied carbon building materials in the enclosure is increasing the fuel load for fire, increasing the demand for fire/flame retardants.

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

This work seeks to alter the interface condition through thermal history modification, deposition energy density, and interface surface preparation to prevent interface cracking.