Archana Mishra
This is a likely match — the affiliation was inferred from OpenAlex, ORCID, and web sources but has not been fully confirmed. Treat with appropriate caution.
Associate Professor
Also affiliated: Wichita State University (2015–2016); Doon University (2022); Ravenshaw University (2022–2026)
Research Areas
Links
Biography and Research Information
OverviewAI-generated summary
Archana Mishra's research interests encompass a range of topics in chemistry and materials science. Her work includes the synthesis of enamides through hydro-functionalization and hydrohalogenation of ynamides, as well as the regio- and stereocontrolled hydroboration of ynamides. She has also investigated strain-induced interfacial modification in Au-Ag bimetallic nanoparticles coated on activated sand using DFT-supported experimental methods. Additionally, Mishra has explored the dynamics of zwitterionic micelles and their hydration waters via dielectric spectroscopy, and conducted molecular modeling of cationic surfactants in solutions and micelles. Her recent publications also include work on the construction of acyclic vicinal all-carbon quaternary and tertiary carbon stereocenters via stereoselective Claisen rearrangement and the investigation of quinclorac binding to human serum albumin using spectroscopy and molecular docking.
Metrics
- h-index: 5
- Publications: 14
- Citations: 103
Positions
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Associate Professor publications 2026University of Arkansas – Fort Smith Institution web page
Selected Publications
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The Mechanism of R2ab-mediated Attachment to Polystyrene Surfaces in Staphylococcus epidermidis (2026)
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DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation (2026)
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DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation (2026)
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Investigating Quinclorac Binding to Human Serum Albumin using Spectroscopy and Molecular Docking (2026)
Collaboration Network
Top Collaborators
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- The Mechanism of R2ab-mediated Attachment to Polystyrene Surfaces in Staphylococcus epidermidis
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- The Mechanism of R2ab-mediated Attachment to Polystyrene Surfaces in Staphylococcus epidermidis
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- The Mechanism of R2ab-mediated Attachment to Polystyrene Surfaces in Staphylococcus epidermidis
- Investigating Quinclorac Binding to Human Serum Albumin using Spectroscopy and Molecular Docking
- The Mechanism of R2ab-mediated Attachment to Polystyrene Surfaces in Staphylococcus epidermidis
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- DATASET: The S. epidermidis Amidase Domain Uses Distinct Interfaces to Mediate Surface Attachment in Biofilm Formation
- Investigating Quinclorac Binding to Human Serum Albumin using Spectroscopy and Molecular Docking
- Investigating Quinclorac Binding to Human Serum Albumin using Spectroscopy and Molecular Docking
- Investigating Quinclorac Binding to Human Serum Albumin using Spectroscopy and Molecular Docking
- Investigating Quinclorac Binding to Human Serum Albumin using Spectroscopy and Molecular Docking
- The Mechanism of R2ab-mediated Attachment to Polystyrene Surfaces in Staphylococcus epidermidis
- The Mechanism of R2ab-mediated Attachment to Polystyrene Surfaces in Staphylococcus epidermidis
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