Vashanti Storr
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Graduate Assistant
Research Areas
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Biography and Research Information
OverviewAI-generated summary
Vashanti Storr's research investigates the application of cold plasma technology to enhance material properties and chemical synthesis. Recent publications focus on plasma-enhanced graphene coatings on Ti-6Al-4V for non-destructive characterization, and the role of cold plasma in ammonia synthesis over porous silica, examining the influence of reactor morphology. Storr has also explored plasma-induced performance enhancements in SAPO-34 membranes for CO2 and CH4 mixtures, as well as tuning product distribution in plasma-activated water by modifying reactor design. Storr has a h-index of 2 with 14 citations across 5 publications. Key collaborators include Maria L. Carreon, Fnu Gorky, Fernando Maia de Oliveira, and Grace Jones, all from the University of Arkansas at Fayetteville.
Metrics
- h-index: 2
- Publications: 5
- Citations: 14
Positions
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Graduate Assistant publications 2024–2026University of Arkansas at Fayetteville Ralph E. Martin Department of Chemical Engineering ORCID
Selected Publications
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Tuning Product Distribution in Plasma‐Activated Water by Modifying Reactor Design (2026)
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Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization (2026)
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Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization (2026)
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Cold-Plasma-Driven Ammonia Synthesis over Porous Silica: The Role of the Morphology (2025)
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Performance and Enhanced Efficiency Induced by Cold Plasma on SAPO-34 Membranes for CO2 and CH4 Mixtures (2024)
Collaboration Network
Top Collaborators
- Cold-Plasma-Driven Ammonia Synthesis over Porous Silica: The Role of the Morphology
- Performance and Enhanced Efficiency Induced by Cold Plasma on SAPO-34 Membranes for CO2 and CH4 Mixtures
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Performance and Enhanced Efficiency Induced by Cold Plasma on SAPO-34 Membranes for CO2 and CH4 Mixtures
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Performance and Enhanced Efficiency Induced by Cold Plasma on SAPO-34 Membranes for CO2 and CH4 Mixtures
- Tuning Product Distribution in Plasma‐Activated Water by Modifying Reactor Design
- Cold-Plasma-Driven Ammonia Synthesis over Porous Silica: The Role of the Morphology
- Performance and Enhanced Efficiency Induced by Cold Plasma on SAPO-34 Membranes for CO2 and CH4 Mixtures
- Cold-Plasma-Driven Ammonia Synthesis over Porous Silica: The Role of the Morphology
- Tuning Product Distribution in Plasma‐Activated Water by Modifying Reactor Design
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Performance and Enhanced Efficiency Induced by Cold Plasma on SAPO-34 Membranes for CO2 and CH4 Mixtures
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization
- Tuning Product Distribution in Plasma‐Activated Water by Modifying Reactor Design
- Tuning Product Distribution in Plasma‐Activated Water by Modifying Reactor Design
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