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Mohammad Barati

Mohammad Barati

Assistant Professor

College: Faculty of Chemistry

Department: Chemistry

Degree: Ph.D

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Mohammad Barati

Assistant Professor Mohammad Barati

College: Faculty of Chemistry - Department: Chemistry Degree: Ph.D |

Assistant Professor

Applied Chemistry, University of Kashan, Kashan, Iran, 2015-Now.

Fields of Research: Gaseous, liquid and solid fuels production from bio resources. Biodiesel production from algae and other oily biomasses in supercritical conditions. Water, methanol, hexane and acetone in supercritical conditions is used for biomass conversion to biofuels in our Lab. Nanocomposites for bio applications is my other field of research. Extraction of chemicals from medicinal herbs for using in controlled drug delivery systems, especially polymer nanocomposites.

Current research projects: Kinetic study of biodiesel production processes in supercritical environment and conversion studies of bio-aviation fuels production processes in supercritical environment.

 

PhD

Applied Chemistry, University of Tehran, Tehran-Iran, 2011-2015.

Field of Research: Catalytic renewable fuels production from biomass.

More specifically, in my PhD thesis, I have focused on the production of hydrogen gas from biomass feedstock using catalytic sub and supercritical water gasification.  Ni, Ru, Cu and K are the metals we are working on. Renewable liquid fuels production especially higher alcohols and ethers is our parallel aim in the thesis. With progressing the experimental steps of thesis, we could produce relatively significant amounts of higher alcohols from a catalytic subcritical methanol/water process as well as hydrogen production was successful.
 

 

Master of Science

Applied Chemistry, University of Tabriz, Tabriz-Iran, 2008-2011.

Field of Study: Anticorrosion behavior of electroactive polymer coatings on steel.

In MSc thesis we try to inhibit the steel electrochemical corrosion with polymer nanocomposite coatings. The polymer matrix contain polyaniline as an electroactive polymer and Zn metal nanoparticles was applied as additive.  The nanocomposite coatings exhibited good anticorrosion performance. The field included courses such as preparation of polymer nanocomposites and electrochemical tests as CV and electrochemical impedance spectroscopy.

 

Bachelor of Science

Applied Chemistry, University of Tabriz, Tabriz-Iran, 2008-2011.

نمایش بیشتر

Hydrogen production via supercritical water gasification of bagasse using Ni–Cu/γ-Al2O3 nano-catalysts

AuthorsMehrani. R, Barati. M, Tavasoli. A, Karimi. A
JournalENVIRON TECHNOL
Paper TypeFull Paper
Published At2015-5-01
Journal GradeScientific - research
Journal TypeElectronic
Journal CountryIran, Islamic Republic Of
Journal IndexISI ,SCOPUS, PubMed

Abstract

Biomass gasification in supercritical water media is a promising method for the production of hydrogen. In this research, Cu-promoted Ni/γ-Al2O3 nano-catalysts were prepared with 2.5– 30 wt% Ni and 0.6– 7.5 wt% Cu loadings via the microemulsion method. Nano-catalysts were characterized by inductively coupled plasma (ICP), Brunauer Emmett Teller (BET) technique, X-Ray Diffraction (XRD), H2 chemisorption and Transmission Electron Microscopy (TEM) technique, as well as Carbon-Hydrogen-Nitrogen-Sulfur (CHNS) analysis was carried out for elemental analysis of bagasse. Nano-catalysts were assessed in a batch micro-reactor under 400°C and 240 bar. The microemulsion method decreased the catalyst average particle size and increased the percentage dispersion and reduction of the catalysts. The total gas yield increased with an increase in Ni and Cu loadings up to 20 wt% Ni and 5 wt% Cu and then started to decrease. Using the microemulsion technique for the preparation of Ni–Cu/γ-Al2O3 nano-catalyst, increased the hydrogen yield to 11.76 (mmol of H2/g of bagasse), CO yield to 2.67 (mmol of CO/g of bagasse) and light gaseous hydrocarbons to 0.6 (mmol of light gaseous hydrocarbons/g of bagasse). Promotion of Ni/γ-Al2O3 with copper increased the mole fraction of hydrogen in the final gasification products to 58.1 mol%.

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