Area of research
Biomedical Engineering · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Materials science, Thermoelectric effect, Seebeck coefficient, PEDOT:PSS, Composite material, and Aerogel.
Multifunctional Carbon Foam with Nanoscale Chiral Magnetic Heterostructures for Broadband Microwave Absorption in Low Frequency
Construction of chiral magnetic structure with enhancement in magnetic coupling for efficient Low-Frequency microwave absorption
Construction of Chiral‐Magnetic‐Dielectric Trinity Structures with Different Magnetic Systems for Efficient Low‐Frequency Microwave Absorption
Recent developments in flexible thermoelectrics: From materials to devices
Thermoelectric polymer films with a significantly high Seebeck coefficient and thermoelectric power factor obtained through surface energy filtering
Thermodynamics of <scp>CO<sub>2</sub></scp> adsorption on cellulose‐derived biochar prepared in ionic liquid
Thermoelectric Properties of PEDOT:PSS
Flexible Quasi‐Solid State Ionogels with Remarkable Seebeck Coefficient and High Thermoelectric Properties
Characteristics of as‐prepared biochar derived from catalytic pyrolysis within moderate‐temperature ionic liquid for <scp>CO<sub>2</sub></scp> uptake
Preparation and characterization of cysteine‐formaldehyde cross‐linked complex for CO<sub>2</sub> capture
Recent Development of Thermoelectric Polymers and Composites
Polymer films with ultrahigh thermoelectric properties arising from significant seebeck coefficient enhancement by ion accumulation on surface
Enhancement of the thermoelectric properties of PEDOT:PSS <i>via</i> one-step treatment with cosolvents or their solutions of organic salts
Stretchable heaters with composites of an intrinsically conductive polymer, reduced graphene oxide and an elastomer for wearable thermotherapy
Higher PEDOT Molecular Weight Giving Rise to Higher Thermoelectric Property of PEDOT:PSS: A Comparative Study of Clevios P and Clevios PH1000
Significantly Enhanced Thermoelectric Properties of PEDOT:PSS Films through Sequential Post‐Treatments with Common Acids and Bases
Significant Enhancement in the Thermoelectric Properties of PEDOT:PSS Films through a Treatment with Organic Solutions of Inorganic Salts
Continuous Carbon Nanotube-Based Fibers and Films for Applications Requiring Enhanced Heat Dissipation
Post-Treatments for Multifunctional Property Enhancement of Carbon Nanotube Fibers from the Floating Catalyst Method
Continuous and scalable fabrication and multifunctional properties of carbon nanotube aerogels from the floating catalyst method
Advanced fabrication and oil absorption properties of super-hydrophobic recycled cellulose aerogels
Super-strong and highly conductive carbon nanotube ribbons from post-treatment methods
Formation mechanisms and morphological effects on multi-properties of carbon nanotube fibers and their polyimide aerogel-coated composites
Advanced multifunctional graphene aerogel – Poly (methyl methacrylate) composites: Experiments and modeling
Effects of heat treatment on the thermal properties of highly nanoporous graphene aerogels using the infrared microscopy technique
Morphology control and thermal stability of binderless-graphene aerogels from graphite for energy storage applications