Michael Mastalish Data-verified
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Researcher
unknown
Research Areas
Biography and Research Information
OverviewAI-generated summary
Michael Mastalish is a researcher at the University of Arkansas at Fayetteville. His recent work focuses on the dielectric performance and cryogenic stability of materials, specifically cadmium trithiphosphate (CdPS3), for advanced electronic and quantum device applications. Mastalish has investigated the thickness-dependent properties and scalability of these materials at cryogenic temperatures. He has collaborated with several researchers at the University of Arkansas at Fayetteville, including Eun-Joo Dong, Janet Obaemo, and Uche Wejinya, on multiple publications. His research contributes to the field of materials science with a focus on semiconductor applications.
Metrics
- Publications: 4
Selected Publications
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Dielectric performance and cryogenic stability of CdPS3 for quantum device applications (2025)
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Thickness-Dependent and Scalability Study of Cadmium Trithiphosphate at Cryogenic Temperature for Advanced Electronic Applications (2025)
Collaboration Network
Top Collaborators
- Thickness-Dependent and Scalability Study of Cadmium Trithiphosphate at Cryogenic Temperature for Advanced Electronic Applications
- Dielectric performance and cryogenic stability of CdPS3 for quantum device applications
- Thickness-Dependent and Scalability Study of Cadmium Trithiphosphate at Cryogenic Temperature for Advanced Electronic Applications
- Dielectric performance and cryogenic stability of CdPS3 for quantum device applications
- Thickness-Dependent and Scalability Study of Cadmium Trithiphosphate at Cryogenic Temperature for Advanced Electronic Applications
- Dielectric performance and cryogenic stability of CdPS3 for quantum device applications
- Thickness-Dependent and Scalability Study of Cadmium Trithiphosphate at Cryogenic Temperature for Advanced Electronic Applications
- Dielectric performance and cryogenic stability of CdPS3 for quantum device applications
- Dielectric performance and cryogenic stability of CdPS3 for quantum device applications
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