Prof. Dariush Semnani

Prof. Dariush Semnani

d_semnani@iut.ac.ir
Office
Department of Textile Engineering, Isfahan University of Technology, Isfahan, 84156-83111 IR
Phone
+98 311 3915006, +98 311 3912425
Fax
+98 311 3912444
Positions
Professor at Textile Engineering Faculty Isfahan University of Technology
Research Interests
Nanofibers
Fibrious Biostructures and Tissue Engineering
Medical and Orthopedic Textiles
Smart and Electronic Fibrous structuresS
Soft Computing and Artificial Intelligence Techniques
Data Analysis
Simulation and Modeling of Fibrious Materials
type: Journal
Title Date
Development of polyamide 6/polypyrrole conductive nanofibrous structure: the contribution of dopant type
Electroconductive Nanofiber/Myocardium Gel Scaffolds Applicable for Myocardial Infarction Therapy
Degradable and biocompatible nanofibrous scaffold incorporating a natural cell culture medium for skin tissue engineering
Evaluation of the effects of zein incorporation on physical, mechanical, and biological properties of polyhydroxybutyrate electrospun scaffold for bone tissue engineering applications
Fabrication of novel PCL/PGS fibrous scaffold containing HA and GO through simultaneous electrospinning-electrospray technique
Introduction a new structure made of hydroxyapatite and graphene nanoparticles incorporated into PCL/gelatine nano fibrous web as bone scaffold
Manufacturing and characterizing of the poly (<i>?</i>-caprolactone)/poly (N-vinyl-2-pyrrolidone) core-shell nanofibers loaded by multi-walled carbon nanotubes coated by polypyrrole via vapor phase and chemical method and its application as an electr
Nanocomposite with Fast Li<sup>+</sup> Ion Conductivity: A Solvent-Free Polymer Electrolyte Reinforced with Decorated Fe<sub>3</sub>O<sub>4</sub> Nanoparticles
Fabrication and characterization of electrospun nanofibrous mats of polycaprolactone/gelatin containing ZnO nanoparticles and cumin essential oil and their anti-staphylococcal potency in white cheese
Simulation and characterization of the mechanical properties of knitted esophageal stents using finite element and mathematical models