Ahmed Alzamly
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Assistant Professor of Chemistry
Also affiliated: University of Ottawa (2013–2014); United Arab Emirates University (2011–2026); Centre for Catalysis Research and Innovation (2014); University of California, Berkeley (2021)
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Ahmed Alzamly's research focuses on the development and application of advanced materials, particularly metal-organic frameworks (MOFs) and covalent organic frameworks (COFs), for various sensing and catalytic applications. His work investigates the use of these materials in creating highly sensitive and flexible gas sensors, such as those for H2S detection. Alzamly also explores the potential of MOFs as catalytic platforms for organic synthesis, including processes like linear $\alpha$-olefin oligomerization and polymerization. His research extends to the application of these materials in environmental remediation, with a review focusing on enzyme-mediated wastewater treatment.
In addition to materials science, Alzamly's scholarly contributions encompass the photoreduction of CO2 using covalent organic frameworks and the review of metal-organic frameworks for transducer-based gas sensors. His publication record also includes mechanistic studies of photoinduced degradation of Orange G using LC/MS. With an h-index of 26, over 107 publications, and more than 1,953 citations, Alzamly has established a significant body of work in these areas.
Metrics
- h-index: 26
- Publications: 107
- Citations: 1,961
Positions
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University of Arkansas at Little Rock publications 2026Chemistry ORCID
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Assistant Professor of Chemistry publications 2026University of Arkansas at Little Rock Institution web page
Selected Publications
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Visible-Light Photocatalytic Abatement of Diclofenac Potassium over Bismuth Sulfoiodide (2026)
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From Assembly to Application: A Comprehensive Review of Metal–Hydrogen-Bonded Organic Frameworks (2026)
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Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for recyclable trace-level removal of trimethoprim from wastewater (2026)
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Programmable Metal–Organic Complex Arrays with Precisely Controlled Metal Sequences as Tunable Multinuclear Scaffolds (2026)
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A Square-Net Europium(III) Metal–Organic Framework for Red-Emitting LEDs and Optical Temperature Sensing (2026)
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Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater (2026)
Collaboration Network
Top Collaborators
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for recyclable trace-level removal of trimethoprim from wastewater
- Visible-Light Photocatalytic Abatement of Diclofenac Potassium over Bismuth Sulfoiodide
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for recyclable trace-level removal of trimethoprim from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for recyclable trace-level removal of trimethoprim from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for recyclable trace-level removal of trimethoprim from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for recyclable trace-level removal of trimethoprim from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for recyclable trace-level removal of trimethoprim from wastewater
- A Square-Net Europium(III) Metal–Organic Framework for Red-Emitting LEDs and Optical Temperature Sensing
- From Assembly to Application: A Comprehensive Review of Metal–Hydrogen-Bonded Organic Frameworks
- A Square-Net Europium(III) Metal–Organic Framework for Red-Emitting LEDs and Optical Temperature Sensing
- From Assembly to Application: A Comprehensive Review of Metal–Hydrogen-Bonded Organic Frameworks
- A Square-Net Europium(III) Metal–Organic Framework for Red-Emitting LEDs and Optical Temperature Sensing
- From Assembly to Application: A Comprehensive Review of Metal–Hydrogen-Bonded Organic Frameworks
- Programmable Metal–Organic Complex Arrays with Precisely Controlled Metal Sequences as Tunable Multinuclear Scaffolds
- Visible-Light Photocatalytic Abatement of Diclofenac Potassium over Bismuth Sulfoiodide
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- Mixed-linker Zn(II) coordination polymer with structurally accessible binding sites for efficient and recyclable trimethoprim removal from wastewater
- A Square-Net Europium(III) Metal–Organic Framework for Red-Emitting LEDs and Optical Temperature Sensing
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