Ahmed. A. Hashoosh
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.
Role not yet determined Is this you? Add your title
Also affiliated: University of Baghdad (2013); University of Technology - Iraq (2013)
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Ahmed A. Hashoosh's research focuses on materials science and its applications in biological systems and energy. He has investigated the biocompatibility of ether-based urethane films for dendritic cells and explored the use of gold nanorods to enhance immune cell targeting, specifically CD4+ Foxp3+ Tregulatory cells. His work also extends to semiconductor materials, with a publication on improving the efficiency of perovskite solar cells using doped polymers as hole transport layers. Additionally, he has explored fabrication techniques for nanomaterials, including aluminum nanowires and porous anodic alumina membranes. Hashoosh has collaborated with researchers including Alexandru S. Biris and Fumiya Watanabe at the University of Arkansas at Little Rock, and Ruud P.M. Dings at the University of Arkansas for Medical Sciences.
Metrics
- h-index: 2
- Publications: 3
- Citations: 8
Selected Publications
-
Improved efficiency of inverted planar perovskite solar cells with an ultrahigh work function doped polymer as an alternative hole transport layer (2022)
-
Gold nanorods enhance different immune cells and allow for efficient targeting of CD4+ Foxp3+ Tregulatory cells (2021)
-
Dendritic cell biocompatibility of ether‐based urethane films (2021)
Collaboration Network
Top Collaborators
- Gold nanorods enhance different immune cells and allow for efficient targeting of CD4+ Foxp3+ Tregulatory cells
- Dendritic cell biocompatibility of ether‐based urethane films
- Improved efficiency of inverted planar perovskite solar cells with an ultrahigh work function doped polymer as an alternative hole transport layer
- Gold nanorods enhance different immune cells and allow for efficient targeting of CD4+ Foxp3+ Tregulatory cells
- Dendritic cell biocompatibility of ether‐based urethane films
- Improved efficiency of inverted planar perovskite solar cells with an ultrahigh work function doped polymer as an alternative hole transport layer
- Gold nanorods enhance different immune cells and allow for efficient targeting of CD4+ Foxp3+ Tregulatory cells
- Dendritic cell biocompatibility of ether‐based urethane films
- Dendritic cell biocompatibility of ether‐based urethane films
- Improved efficiency of inverted planar perovskite solar cells with an ultrahigh work function doped polymer as an alternative hole transport layer
- Gold nanorods enhance different immune cells and allow for efficient targeting of CD4+ Foxp3+ Tregulatory cells
- Dendritic cell biocompatibility of ether‐based urethane films
- Gold nanorods enhance different immune cells and allow for efficient targeting of CD4+ Foxp3+ Tregulatory cells
- Dendritic cell biocompatibility of ether‐based urethane films
- Dendritic cell biocompatibility of ether‐based urethane films
- Dendritic cell biocompatibility of ether‐based urethane films
- Dendritic cell biocompatibility of ether‐based urethane films
- Dendritic cell biocompatibility of ether‐based urethane films
- Gold nanorods enhance different immune cells and allow for efficient targeting of CD4+ Foxp3+ Tregulatory cells
- Gold nanorods enhance different immune cells and allow for efficient targeting of CD4+ Foxp3+ Tregulatory cells
- Improved efficiency of inverted planar perovskite solar cells with an ultrahigh work function doped polymer as an alternative hole transport layer
Similar Researchers
Based on overlapping research topics