Advances in healthcare monitoring, human–machine interfaces, and soft robots require the development of wearable sensors that are efficient, scalable, and facile to prepare. Although laser-induced graphene (LIG) has recently attracted considerable attention in the fabrication of patterned graphene-based wearable sensors, the transfer process is inevitable due to the limited stretchability of carbon precursors. In this work, we proposed a strategy for in situ growth, transfer-free LIG on various flexible substrates (poly(dimethylsiloxane) (PDMS), poly(ethylene terephthalate) (PET), and paper). This was achieved by coating a biobased liquid carbon precursor (PGE-fa) on target substrates followed by laser irradiation under ambient conditions. ...
Laser-induced graphene (LIG) has received much attention since it enables simple and rapid synthesis...
We describe the mechanical properties of turbostratically graphitized carbon films obtained by carbo...
Laser-induced graphene (LIG) emerged as one of the most promising materials for flexible functional ...
International audienceThe paper presents the design and fabrication of a low-cost and easy-to-fabric...
Laser-induced graphene (LIG), which is directly fabricated by laser carbonization of polymers, has g...
Conductive reduced graphene oxide (rGO) patterns have been successfully fabricated on graphene oxid...
Flexible skin patch biosensors are promising for the noninvasive determination of physiological para...
Flexible tactile sensors show great potential for portable healthcare and environmental monitoring a...
The conversion of various polymer substrates into laser-induced graphene (LIG) with a CO2 laser in a...
Ultrathin, flexible, conformal, and skin-like electronic transducers are emerging as promising candi...
Laser-derived graphene (LDG) technology is gaining attention as a promising material for the develop...
Laser-induced graphene (LIG) has gained preponderance in recent years, as a very attractive material...
The laser-induced porous graphene (LIG) prepared in a straightforward fabrication method is presente...
Flexible skin patch biosensors are promising for the noninvasive determination of physiological para...
Laser-induced graphene (LIG) has received much attention since it enables simple and rapid synthesis...
We describe the mechanical properties of turbostratically graphitized carbon films obtained by carbo...
Laser-induced graphene (LIG) emerged as one of the most promising materials for flexible functional ...
International audienceThe paper presents the design and fabrication of a low-cost and easy-to-fabric...
Laser-induced graphene (LIG), which is directly fabricated by laser carbonization of polymers, has g...
Conductive reduced graphene oxide (rGO) patterns have been successfully fabricated on graphene oxid...
Flexible skin patch biosensors are promising for the noninvasive determination of physiological para...
Flexible tactile sensors show great potential for portable healthcare and environmental monitoring a...
The conversion of various polymer substrates into laser-induced graphene (LIG) with a CO2 laser in a...
Ultrathin, flexible, conformal, and skin-like electronic transducers are emerging as promising candi...
Laser-derived graphene (LDG) technology is gaining attention as a promising material for the develop...
Laser-induced graphene (LIG) has gained preponderance in recent years, as a very attractive material...
The laser-induced porous graphene (LIG) prepared in a straightforward fabrication method is presente...
Flexible skin patch biosensors are promising for the noninvasive determination of physiological para...
Laser-induced graphene (LIG) has received much attention since it enables simple and rapid synthesis...
We describe the mechanical properties of turbostratically graphitized carbon films obtained by carbo...
Laser-induced graphene (LIG) emerged as one of the most promising materials for flexible functional ...