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Synthesis of manganese (IV) oxide at activated carbon on reduced graphene oxide sheets via laser irradiation technique for organic binder-free electrodes in flexible supercapacitors

机译:通过激光照射技术对柔性超级电容器中的有机粘合剂电极的激光照射技术在活性炭上合成锰(IV)氧化物

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摘要

We report a novel, green, scalable technique to synthesize binder-free, high-purity conductive composite comprising activated carbon (AC), manganese dioxide nanorods (MnO2), and reduced graphene oxide sheets (rGO) for flexible supercapacitors with outstanding electrochemical performance. UV pulsed laser irradiation of GO-based composite dispersion (AC/GO or MnO2@AC/GO) in ethanol aqueous medium was used to induce a photocatalytic reduction of GO and simultaneous anchor AC particles or AC loaded MnO2 nanorods (MnO2@AC) on the reduced GO sheets (rGO) at room temperature and atmospheric pressure. rGO sheets serve as a large surface area, conductive binder to enhance the ion adsorption, electrical conductivity, and mechanical flexibility of supercapacitor electrodes. This laser-induced photocatalytic reduction method was used to prepare two different rGO-based colloidal composites AC/rGO (CG) and MnO2@AC/rGO (MCG). The prepared rGO-based colloidal composites were used to fabricate symmetric supercapacitors (CG//CG and MCG//MCG) and asymmetric supercapacitors (MCG//CG) in which MCG is the positive electrode and CG is the negative one. All prepared rGO-based supercapacitors demonstrated significant improvement in their electrochemical performance compared with rGO-free AC based supercapacitors. The enhancement in the electrochemical properties of rGO-based supercapacitors could be attributed to the intrinsic characteristics of rGO, such as high surface area, excellent electrical conductivity, and super mechanical flexibility. Our approach is a one-step, scalable, cost-effective synthesis technique to produce all binder-free AC/rGO based composites for flexible energy-storage devices.
机译:我们报道了一种新型、绿色、可扩展的技术,用于合成无粘结剂、高纯度的导电复合材料,包括活性炭(AC)、二氧化锰纳米棒(MnO2)和还原石墨烯氧化物片(rGO),用于具有优异电化学性能的柔性超级电容器。紫外脉冲激光辐照GO基复合色散(AC/GO或MnO2@AC/GO)在乙醇-水介质中被用于诱导GO的光催化还原,同时锚定AC颗粒或负载AC的MnO2纳米棒(MnO2@AC)在室温和大气压下还原GO片(rGO)上。rGO片材用作大表面积导电粘合剂,以增强超级电容器电极的离子吸附、导电性和机械柔性。采用这种激光诱导光催化还原方法制备了两种不同的rGO基胶体复合材料AC/rGO(CG)和MnO2@AC/rGO(MCG)。制备的rGO基胶体复合材料用于制备对称超级电容器(CG//CG和MCG//MCG)和以MCG为正极、CG为负极的不对称超级电容器(MCG//CG)。与无rGO的交流超级电容器相比,所有制备的rGO基超级电容器的电化学性能都有显著改善。rGO基超级电容器电化学性能的提高可归因于rGO的固有特性,如高比表面积、优异的导电性和超机械柔性。我们的方法是一种一步、可扩展、经济高效的合成技术,用于生产用于柔性储能设备的无粘结剂AC/rGO基复合材料。

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