Despite the ever-increasing demand for transparent power sources in wireless optoelectronics, most of them have still relied on synthetic chemicals, thus limiting their versatile applications. Here, a class of transparent nanocellulose paper microsupercapacitors (TNP-MSCs) as a beyond-synthetic-material strategy is demonstrated. Onto semi-interpenetrating polymer network-structured, thiol-modified transparent nanocellulose paper, a thin layer of silver nanowire and a conducting polymer (chosen as a pseudocapacitive electrode material) are consecutively introduced through microscale-patterned masks (which are fabricated by electrohydrodynamic jet printing) to produce a transparent conductive electrode (TNP-TCE) with planar interdigitated str...
Renewable and clean “green” electronics based on paper substrates is an emerging field with intensif...
Here we demonstrate an unconventional fabrication of highly transparent supercapacitors and electrod...
International audienceHere we demonstrate an unconventional fabrication of highly transparent superc...
Increasing attention has been paid to the next generation of ‘green’ electronic devices based on ren...
The ever-increasing demand for smart optoelectronics spurs the relentless pursuit of transparent wir...
Open Access Article. This article is licensed under a Creative Commons Attribution 3.0 Unported Lic...
Flexible electronics are developing rapidly due to promising applications in displays, sensors, and ...
A roll-to-roll compatible, high throughput process is reported for the production of highly conducti...
It is of great challenge to develop a transparent solid state electrochromic device which is foldabl...
A roll-to-roll compatible, high throughput process is reported for the production of highly conducti...
A roll-to-roll compatible, high throughput process is reported for the production of highly conducti...
We cannot see through ordinary paper because it's constituent micrometer sized cellulose fibers...
A roll-to-roll compatible, high throughput process is reported for the production of highly conducti...
Thin-film supercapacitors are promising candidates for energy storage in wearable electronics due to...
Optically transparent electrodes are a key component in variety of products including bioelectronics...
Renewable and clean “green” electronics based on paper substrates is an emerging field with intensif...
Here we demonstrate an unconventional fabrication of highly transparent supercapacitors and electrod...
International audienceHere we demonstrate an unconventional fabrication of highly transparent superc...
Increasing attention has been paid to the next generation of ‘green’ electronic devices based on ren...
The ever-increasing demand for smart optoelectronics spurs the relentless pursuit of transparent wir...
Open Access Article. This article is licensed under a Creative Commons Attribution 3.0 Unported Lic...
Flexible electronics are developing rapidly due to promising applications in displays, sensors, and ...
A roll-to-roll compatible, high throughput process is reported for the production of highly conducti...
It is of great challenge to develop a transparent solid state electrochromic device which is foldabl...
A roll-to-roll compatible, high throughput process is reported for the production of highly conducti...
A roll-to-roll compatible, high throughput process is reported for the production of highly conducti...
We cannot see through ordinary paper because it's constituent micrometer sized cellulose fibers...
A roll-to-roll compatible, high throughput process is reported for the production of highly conducti...
Thin-film supercapacitors are promising candidates for energy storage in wearable electronics due to...
Optically transparent electrodes are a key component in variety of products including bioelectronics...
Renewable and clean “green” electronics based on paper substrates is an emerging field with intensif...
Here we demonstrate an unconventional fabrication of highly transparent supercapacitors and electrod...
International audienceHere we demonstrate an unconventional fabrication of highly transparent superc...