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基于生物质的少层缺陷石墨烯的质量提升及其在制氢中的应用

Quality Improvement of Few-Layers Defective Graphene from Biomass and Application for H Generation.

作者信息

He Jinbao, Anouar Aicha, Primo Ana, García Hermenegildo

机构信息

Instituto Universitario de Tecnología Química, Consejo Superior de Investigaciones Científicas-Universitat Politècnica de Valencia, Av. De los Naranjos s/n, 46022 Valencia, Spain.

出版信息

Nanomaterials (Basel). 2019 Jun 19;9(6):895. doi: 10.3390/nano9060895.

Abstract

Pyrolysis of filmogenic natural polymers gives rise to the formation of films of few-layers defective, undoped, and doped graphenes with low electrical conductivity (3000 to 5000 Ω/sq). For the sake of valorization of biomass wastes, it would be of interest to decrease the density of structural defects in order to increase the conductivity of the resulting few-layers graphene samples. In the present study, analytical and spectroscopic evidence is provided showing that by performing the pyrolysis at the optimal temperature (1100 °C), under a low percentage of H, a significant decrease in the density of defects related to the presence of residual oxygen can be achieved. This improvement in the quality of the resulting few-layers defective graphene is reflected in a decrease by a factor of about 3 or 5 for alginic acid and chitosan, respectively, of the electrical resistance. Under optimal conditions, few-layers defective graphene films with a resistance of 1000 Ω /sq were achieved. The electrode made of high-quality graphene prepared at 1100 °C under Ar/H achieved a H production of 3.62 µmol with a positive applied bias of 1.1 V under LED illumination for 16 h.

摘要

成膜天然聚合物的热解会形成具有低电导率(3000至5000Ω/sq)的几层缺陷、未掺杂和掺杂石墨烯薄膜。为了实现生物质废物的价值提升,降低结构缺陷密度以提高所得几层石墨烯样品的电导率将是有意义的。在本研究中,提供了分析和光谱证据表明,通过在最佳温度(1100°C)下、低H百分比下进行热解,可以显著降低与残余氧存在相关的缺陷密度。所得几层缺陷石墨烯质量的这种改善分别反映在藻酸和壳聚糖的电阻降低约3倍或5倍。在最佳条件下,获得了电阻为1000Ω/sq的几层缺陷石墨烯薄膜。在Ar/H气氛下于1100°C制备的由高质量石墨烯制成的电极在LED照明下施加1.1 V正偏压16 h时实现了3.62 μmol的析氢量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/14b1/6632024/8d9929507a96/nanomaterials-09-00895-sch001.jpg

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