Abstract Thickness-controlled transparent conducting films (TCFs) were fabricated by transfer printing a 100 nm thick Cu micromesh structure onto poly(vinyl alcohol) (PVA) substrates of different thicknesses (~ 50, ~ 80, and ~ 120 μm) to develop a lightweight transparent wearable heater with short response time. The Cu mesh-based TCF fabricated on a ~ 50 µm thick PVA substrate exhibited excellent optical and electrical properties with a light transmittance of 86.7% at 550 nm, sheet resistance of ~ 10.8 Ω/sq, and figure-of-merit of approximately 236, which are comparable to commercial indium tin oxide film-based transparent conductors. The remarkable flexibility of the Cu mesh-based TCF was demonstrated through cyclic mechanical bending test...
Ultraflexible transparent film heaters have been fabricated by embedding conductive silver (Ag) nano...
This thesis focuses on the development of high-performance copper (Cu) based transparent electrodes ...
Thermoelectric devices that are flexible and optically transparent hold unique promise for future el...
Copper electrodes with a micromesh/nanomesh structure were fabricated on a polyimide substrate using...
Flexible transparent film heaters (FTHs) are used in a variety of applications, including smart wind...
We present the scalable fabrication of a novel transparent heater (TH) architecture by continuously ...
The development of scalable synthesis techniques for optically transparent, electrically conductive ...
Transparent conducting electrodes (TCE) are widely used in a variety of applications including displ...
Transparent conductors are important as the top electrode for a variety of optoelectronic devices, i...
Metal mesh is a significant candidate of flexible transparent electrodes to substitute the current s...
We demonstrate a new concept for the fabrication of flexible transparent thin film heaters based on ...
Metal nanowires have been considered as essential components for flexible transparent conducting ele...
In this study, we present an environmentally friendly and solution-based synthesis for copper nanowi...
Due to the high abundance of copper on the earth and its high intrinsic electrical conductivity, cop...
In this study, we present solution-based processes for producing copper (Cu) meshes which can be uti...
Ultraflexible transparent film heaters have been fabricated by embedding conductive silver (Ag) nano...
This thesis focuses on the development of high-performance copper (Cu) based transparent electrodes ...
Thermoelectric devices that are flexible and optically transparent hold unique promise for future el...
Copper electrodes with a micromesh/nanomesh structure were fabricated on a polyimide substrate using...
Flexible transparent film heaters (FTHs) are used in a variety of applications, including smart wind...
We present the scalable fabrication of a novel transparent heater (TH) architecture by continuously ...
The development of scalable synthesis techniques for optically transparent, electrically conductive ...
Transparent conducting electrodes (TCE) are widely used in a variety of applications including displ...
Transparent conductors are important as the top electrode for a variety of optoelectronic devices, i...
Metal mesh is a significant candidate of flexible transparent electrodes to substitute the current s...
We demonstrate a new concept for the fabrication of flexible transparent thin film heaters based on ...
Metal nanowires have been considered as essential components for flexible transparent conducting ele...
In this study, we present an environmentally friendly and solution-based synthesis for copper nanowi...
Due to the high abundance of copper on the earth and its high intrinsic electrical conductivity, cop...
In this study, we present solution-based processes for producing copper (Cu) meshes which can be uti...
Ultraflexible transparent film heaters have been fabricated by embedding conductive silver (Ag) nano...
This thesis focuses on the development of high-performance copper (Cu) based transparent electrodes ...
Thermoelectric devices that are flexible and optically transparent hold unique promise for future el...