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首页> 外文期刊>RSC Advances >Transforming lignin into porous graphene via direct laser writing for solid-state supercapacitors
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Transforming lignin into porous graphene via direct laser writing for solid-state supercapacitors

机译:通过用于固态超级电容器的直接激光书写将木质素转化为多孔石墨烯

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摘要

Cost-effective valorization of lignin into carbon-based electrode materials remains a challenge. Here we reported a facile and ultrafast laser writing technique to convert lignin into porous graphene as active electrode material for solid-state supercapacitors (SCs). During laser writing, alkaline lignin experienced graphitization. By controlling laser parameters such as power the porous structure and graphitization degree can be well modulated. Graphene obtained at 80% of laser power setting (LIG-80) had higher graphene quality and more porous structure than that obtained at the lower power levels (i.e., 50%, 70%). TEM images revealed that LIG-80 had few-layer graphene structure with fringe-like patterns. LIG-80 proved to be an active electrode material for SCs with a specific capacitance as high as 25.44 mF cm(-2) in a H2SO4/PVA gel electrolyte, which is comparable or even superior to SCs based on pristine LIG obtained from other carbon precursors. Taken together, our proposed technical route for lignin-based LIG and subsequent application in SCs would not only open a new avenue to lignin valorization, but also produce porous graphene from a renewable carbon precursor for energy storage applications.
机译:木质素成本效益纳入碳基电极材料仍然是挑战。在这里,我们报道了一种容易和超快激光书写技术,将木质素转化为多孔石墨烯作为用于固态超级电容器(SCS)的有源电极材料。在激光书写期间,碱性木质素经历了石墨化。通过控制诸如电源的激光参数,可以很好地调节多孔结构和石墨化程度。在80%的激光功率设定(Lig-80)中获得的石墨烯具有更高的石墨烯质量和更多孔的结构,而不是在较低功率水平(即50%,70%)上获得的结构。 TEM图像显示Lig-80具有几层石墨烯结构,具有边缘状图案。 Lig-80被证明是在H2SO4 / PVA凝胶电解质中具有高达25.44mF cm(-2)的特定电容的活性电极材料,其在基于从其他碳获得的原始Lig的可比性或甚至优于SCS前体。我们一起服用,我们提出的基于木质素的LIG和随后的SCS应用的技术途径不仅为木质素储存开辟了新的途径,而且还从可再生碳前体生产多孔石墨烯,用于储能应用。

著录项

  • 来源
    《RSC Advances》 |2019年第39期|共8页
  • 作者单位

    Univ Missouri Dept Biomed Biol &

    Chem Engn Columbia MO 65211 USA;

    Univ Missouri Dept Mech &

    Aerosp Engn Columbia MO 65211 USA;

    Univ Missouri Dept Mech &

    Aerosp Engn Columbia MO 65211 USA;

    Univ Missouri Electron Microscopy Core Columbia MO 65211 USA;

    Univ Missouri Dept Mech &

    Aerosp Engn Columbia MO 65211 USA;

    Univ Missouri Dept Biomed Biol &

    Chem Engn Columbia MO 65211 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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