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Laser-induced porous graphene films from commercial polymers.


ABSTRACT: The cost effective synthesis and patterning of carbon nanomaterials is a challenge in electronic and energy storage devices. Here we report a one-step, scalable approach for producing and patterning porous graphene films with three-dimensional networks from commercial polymer films using a CO2 infrared laser. The sp(3)-carbon atoms are photothermally converted to sp(2)-carbon atoms by pulsed laser irradiation. The resulting laser-induced graphene (LIG) exhibits high electrical conductivity. The LIG can be readily patterned to interdigitated electrodes for in-plane microsupercapacitors with specific capacitances of >4?mF?cm(-2) and power densities of ~9?mW?cm(-2). Theoretical calculations partially suggest that enhanced capacitance may result from LIG's unusual ultra-polycrystalline lattice of pentagon-heptagon structures. Combined with the advantage of one-step processing of LIG in air from commercial polymer sheets, which would allow the employment of a roll-to-roll manufacturing process, this technique provides a rapid route to polymer-written electronic and energy storage devices.

SUBMITTER: Lin J 

PROVIDER: S-EPMC4264682 | biostudies-literature | 2014 Dec

REPOSITORIES: biostudies-literature

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Laser-induced porous graphene films from commercial polymers.

Lin Jian J   Peng Zhiwei Z   Liu Yuanyue Y   Ruiz-Zepeda Francisco F   Ye Ruquan R   Samuel Errol L G EL   Yacaman Miguel Jose MJ   Yakobson Boris I BI   Tour James M JM  

Nature communications 20141210


The cost effective synthesis and patterning of carbon nanomaterials is a challenge in electronic and energy storage devices. Here we report a one-step, scalable approach for producing and patterning porous graphene films with three-dimensional networks from commercial polymer films using a CO<sub>2</sub> infrared laser. The sp<sup>3</sup>-carbon atoms are photothermally converted to sp<sup>2</sup>-carbon atoms by pulsed laser irradiation. The resulting laser-induced graphene (LIG) exhibits high  ...[more]

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