Abbas Afkhami

ORCID: 0000-0002-3559-2080
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About
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Research Areas
  • Electrochemical Analysis and Applications
  • Electrochemical sensors and biosensors
  • Analytical Chemistry and Sensors
  • Analytical chemistry methods development
  • Analytical Chemistry and Chromatography
  • Advanced biosensing and bioanalysis techniques
  • Advanced Chemical Sensor Technologies
  • Molecular Sensors and Ion Detection
  • Adsorption and biosorption for pollutant removal
  • Analytical Methods in Pharmaceuticals
  • Conducting polymers and applications
  • Biosensors and Analytical Detection
  • Water Quality Monitoring and Analysis
  • Spectroscopy and Chemometric Analyses
  • Nanomaterials for catalytic reactions
  • Carbon and Quantum Dots Applications
  • Pharmacological Effects and Assays
  • Graphene and Nanomaterials Applications
  • Metal-Organic Frameworks: Synthesis and Applications
  • Mass Spectrometry Techniques and Applications
  • Nanocluster Synthesis and Applications
  • Environmental remediation with nanomaterials
  • Inorganic and Organometallic Chemistry
  • Covalent Organic Framework Applications
  • Gas Sensing Nanomaterials and Sensors

Bu-Ali Sina University
2016-2025

Hamedan University of Technology
2010-2021

Hamedan University of Medical Sciences
2006-2020

Faculty (United Kingdom)
2014-2017

Arak University
2009

Islamic Azad University, Shahr-e-Qods Branch
2008

Ottawa University
2002

Shiraz University
1990-1995

Abstract Fluorescence excitation‐emission matrix (EEM) measurements are useful in fields such as food science, analytical chemistry, biochemistry and environmental science. EEMs contain information which can be modeled using the parallel factor analysis (PARAFAC) model but data is often complicated due to both Rayleigh Raman scattering. There several established ways deal with scattering effects. However, all of these methods have associated problems. This paper develops a new method for...

10.1002/cem.978 article EN Journal of Chemometrics 2006-03-01

Abstract This study investigated the removal of Cd2+, Cu2+, Ni2+, and Pb2+ from aqueous solutions using nanoparticle sorbents (TiO2, MgO, Al2O3) with a range experimental approaches. The maximum uptake values (sum four metals) multiple component were 594.9, 114.6, 49.4 mg g−1, for Al2O3, TiO2, respectively. sorption equilibrium isotherms described Freundlich Langmuir models. best interpretation experiment data was given by model Ni2+ in single- multiple-component solutions. A first-order...

10.1080/00986445.2012.686939 article EN Chemical Engineering Communications 2012-11-28

10.1016/j.colsurfa.2009.05.024 article EN Colloids and Surfaces A Physicochemical and Engineering Aspects 2009-06-10
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