Keyword search (4,164 papers available)

"Packirisamy M" Authored Publications:

Title Authors PubMed ID
1 Proximal sound printing: direct 3D printing of microstructures on polymers Foroughi S; Habibi M; Packirisamy M; 41500993
ENCS
2 Improved electrical performance of PDMS and PEDOT: PSS composites with MWCNT and AgNP particles Shafagh SH; Deen I; Packirisamy M; 41424586
ENCS
3 Robust and Compact Electrostatic Comb Drive Arrays for High-Performance Monolithic Silicon Photonics Fasihanifard M; Packirisamy M; 41156349
ENCS
4 Angled electrode comb drives for enhanced actuator in silicon photonic applications Fasihanifard M; Packirisamy M; 41130948
ENCS
5 Microfluidic Liquid Biopsy Minimally Invasive Cancer Diagnosis by Nano-Plasmonic Label-Free Detection of Extracellular Vesicles: Review Neriya Hegade KP; Bhat RB; Packirisamy M; 40650129
ENCS
6 Alzheimer model chip with microglia BV2 cells Yazdanpanah Moghadam E; Sonenberg N; Packirisamy M; 40623989
ENCS
7 Printing of Cantilevers and Millifluidic Devices Using Ultrasound Waves Foroughi S; Karamzadeh V; Habibi M; Packirisamy M; 40538575
ENCS
8 PEDOT:PSS-MWCNT Nanocomposite Wire for Routing in Energy Harvesting Devices Shafagh SH; Deen I; Mamsapuram Panneerselvam D; Packirisamy M; 40283259
ENCS
9 Microfluidic Wound-Healing Assay for Comparative Study on Fluid Dynamic, Chemical and Mechanical Wounding on Microglia BV2 Migration Yazdanpanah Moghadam E; Sonenberg N; Packirisamy M; 39203655
ENCS
10 Holographic direct sound printing Derayatifar M; Habibi M; Bhat R; Packirisamy M; 39107289
ENCS
11 Microfluidic Wound-Healing Assay for ECM and Microenvironment Properties on Microglia BV2 Cells Migration Yazdanpanah Moghadam E; Sonenberg N; Packirisamy M; 36832056
ENCS
12 Microfluidics in smart packaging of foods Pou KRJ; Raghavan V; Packirisamy M; 36192908
ENCS
13 Gold Nano-Bio-Interaction to Modulate Mechanobiological Responses for Cancer Therapy Applications Sohrabi Kashani A; Larocque K; Piekny A; Packirisamy M; 35839330
BIOLOGY
14 Microfluidic Platforms for the Isolation and Detection of Exosomes: A Brief Review Raju D; Bathini S; Badilescu S; Ghosh A; Packirisamy M; 35630197
ENCS
15 Direct sound printing Habibi M; Foroughi S; Karamzadeh V; Packirisamy M; 35387993
ENCS
16 Arraying of microphotosynthetic power cells for enhanced power output Kuruvinashetti K; Packirisamy M; 35359612
ENCS
17 Simple, Economical Methods for the Culture of Green Algae for Energy Harvesting from Photosynthesis in a Microfluidic Environment Kuruvinashetti K; Rahimi S; Pakkiriswami S; Packirisamy M; 34898042
ENCS
18 Magnetic particle based liquid biopsy chip for isolation of extracellular vesicles and characterization by gene amplification Bathini S; Pakkiriswami S; Ouellette RJ; Ghosh A; Packirisamy M; 34517262
ENCS
19 Cancer-Nano-Interaction: From Cellular Uptake to Mechanobiological Responses Sohrabi Kashani A; Packirisamy M; 34502495
ENCS
20 Optical Fiber Array Sensor for Force Estimation and Localization in TAVI Procedure: Design, Modeling, Analysis and Validation Bandari N; Dargahi J; Packirisamy M; 34450813
ENCS
21 Using intracellular plasmonics to characterize nanomorphology in human cells. Sohrabi Kashani A, Piekny A, Packirisamy M 33365137
BIOLOGY
22 Cancer cells optimize elasticity for efficient migration. Kashani AS; Packirisamy M; 33204453
ENCS
23 Gold Nano-Island Platforms for Localized Surface Plasmon Resonance Sensing: A Short Review. Badilescu S, Raju D, Bathini S, Packirisamy M 33066088
ENCS
24 Toward Task Autonomy in Robotic Cardiac Ablation: Learning-Based Kinematic Control of Soft Tendon-Driven Catheters. Jolaei M, Hooshiar A, Dargahi J, Packirisamy M 32678722
ENCS
25 Lab-On-A-Chip for the Development of Pro-/Anti-Angiogenic Nanomedicines to Treat Brain Diseases. Subramaniyan Parimalam S, Badilescu S, Sonenberg N, Bhat R, Packirisamy M 31817343
ENCS
26 Nano-Bio Interactions of Extracellular Vesicles with Gold Nanoislands for Early Cancer Diagnosis. Bathini S, Raju D, Badilescu S, Kumar A, Ouellette RJ, Ghosh A, Packirisamy M 31549028
ENCS
27 Flow force augmented 3D suspended polymeric microfluidic (SPMF3 ) platform. Marzban M, Dargahi J, Packirisamy M 30025169
ENCS
28 Tuning of Morphology and Stability of Gold Nanostars Through pH Adjustment. Kumar R, Badilescu S, Packirisamy M 30913757
ENCS
29 Efficient Low Shear Flow-based Trapping of Biological Entities. Sohrabi Kashani A, Packirisamy M 30940862
ENCS
30 Acoustofluidic Micromixing Enabled Hybrid Integrated Colorimetric Sensing, for Rapid Point-of-Care Measurement of Salivary Potassium. Surendran V, Chiulli T, Manoharan S, Knisley S, Packirisamy M, Chandrasekaran A 31141923
ENCS
31 The effect of hydrogen nanobubbles on the morphology of gold-gelatin bionanocomposite films and their optical properties. Alsawafta M, Badilescu S, Truong VV, Packirisamy M 22248640
PHYSICS

 

Title:Improved electrical performance of PDMS and PEDOT: PSS composites with MWCNT and AgNP particles
Authors:Shafagh SHDeen IPackirisamy M
Link:https://pubmed.ncbi.nlm.nih.gov/41424586/
DOI:10.1007/s44291-025-00136-0
Publication:Discover electronics
Keywords:Conductive polymer composites (CPCs)ConductivityElectromagnetic shielding (EMI)Multi-walled carbon nanotubes (MWCNTs) and silver nanoparticles (AgNP)PDMSPEDOT:PSSThermoelectric (TE) effect
PMID:41424586 Category: Date Added:2025-12-22
Dept Affiliation: ENCS
1 Optical Bio Microsystems Laboratory, Micro-Nano-Bio Integration Center, Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, Montreal, H3G 1M8 QC Canada.

Description:

The fabrication of conductive polymer composites (CPCs) using polydimethylsiloxane (PDMS) and poly(3,4-ethylene dioxythiophene): poly(4-styrene-sulfonate) (PEDOT: PSS) as a matrix with multi-walled carbon nanotubes (MWCNTs) and silver nanoparticles (AgNPs) as fillers was investigated to determine their potential for use in applications such as electromagnetic interference (EMI) shielding, sensors, and thermal switches/cut-offs. The effect of the fillers was investigated using MWCNTs of different sizes and including both MWCNTs and AgNPs at different ratios. Scanning electron microscopy (SEM) analyzed the morphology of the CPCs showed that the inclusion of AgNPs in the PDMS matrix resulted in a particle size gradient, with larger particles at the bottom of the CPC, although SEM confirmed that there was no separation between PDMS/AgNP and bulk PDMS. SEM of the PEDOT: PSS/MWCNT composites showed an anisotropic structure, with MWCNTs randomly oriented and dispersed throughout the polymer. Electrical characterization showed that the fabrication method and the MWCNT diameter and content affect the conductivity, with MWCNTs of smaller diameters at 45 wt% in CPCs synthesized using ultrasonication having the highest conductivity at 121.21 S/m. The analysis of CPCs synthesized with polyethylene glycol (PEG) and glycerol was also shown to be feasible and improved the flexibility of the composite, and resulted in a conductivity of 378.97 S/m, ~ 26% higher than that reported in the literature. Finally, thermal characterization showed that PDMS and PEDOT: PSS composites exhibit the thermoelectric (TE) effect, where a change in temperature creates an electric potential and vice versa, with the temperature of PDMS composites rising from room temperature (22?) to approximately 70? when a 5 V potential was applied. Under the same conditions, PDMS composites with 50 wt% MWCNTs rose from room temperature to 106?, while composites with 30 wt% MWCNTs only rose to 65?. and 50 wt% MWCNTs. The PEDOT: PSS/MWCNT composites also exhibited the TE effect, with the measured resistance varying with temperature. These results demonstrate that CPCs exhibit tunable properties that are suitable for use in various electrical applications.

Supplementary information: The online version contains supplementary material available at 10.1007/s44291-025-00136-0.





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