Mahsa Khalili
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Biography and Research Information
OverviewAI-generated summary
Mahsa Khalili's research interests encompass materials science, biomechanics, and health sciences. She has investigated the properties and applications of nanomaterials, including dendrimer-functionalized magnetic nanoparticles for hyperthermia and MRI diagnosis, and TiO2-decorated nanocomposite films for antibacterial and antifouling properties. Her work also includes studying the effects of processing techniques on material properties, such as the impact of multi-pass friction stir processing on brass alloys. In the health domain, Khalili has explored the potential of electrospun scaffolds for bone tissue engineering incorporating dendrimerized nanoparticles. She has also examined the usability and perceptions of power-assist devices among manual wheelchair users and investigated the detection of cardiac states using wearable photoplethysmography, with implications for out-of-hospital cardiac arrest detection. Khalili's scholarly contributions are reflected in her h-index of 9 and 290 total citations across 47 publications. She has collaborated with researchers at the University of Arkansas at Fayetteville, including Chidambaram Thamaraiselvan, Rohana Liyanage, Xianghong Qian, and Cannon Hackett.
Metrics
- h-index: 9
- Publications: 47
- Citations: 290
Selected Publications
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Synergistic effect of electrocoagulation and antifouling nanofiltration membranes for microcystin removal (2025)
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Synergistic Effect of Electrocoagulation and Antifouling Nanofiltration Membranes for Microcystin Removal (2024)
Collaboration Network
Top Collaborators
- Synergistic effect of electrocoagulation and antifouling nanofiltration membranes for microcystin removal
- Synergistic Effect of Electrocoagulation and Antifouling Nanofiltration Membranes for Microcystin Removal
- Synergistic effect of electrocoagulation and antifouling nanofiltration membranes for microcystin removal
- Synergistic Effect of Electrocoagulation and Antifouling Nanofiltration Membranes for Microcystin Removal
- Synergistic effect of electrocoagulation and antifouling nanofiltration membranes for microcystin removal
- Synergistic Effect of Electrocoagulation and Antifouling Nanofiltration Membranes for Microcystin Removal
- Synergistic effect of electrocoagulation and antifouling nanofiltration membranes for microcystin removal
- Synergistic Effect of Electrocoagulation and Antifouling Nanofiltration Membranes for Microcystin Removal
- Synergistic effect of electrocoagulation and antifouling nanofiltration membranes for microcystin removal
- Synergistic Effect of Electrocoagulation and Antifouling Nanofiltration Membranes for Microcystin Removal
- Synergistic Effect of Electrocoagulation and Antifouling Nanofiltration Membranes for Microcystin Removal
- Synergistic effect of electrocoagulation and antifouling nanofiltration membranes for microcystin removal
- Synergistic effect of electrocoagulation and antifouling nanofiltration membranes for microcystin removal
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