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Hybrid ternary rice paper-manganese oxide-carbon nanotube nanocomposites for flexible supercapacitors

机译:三元混合大米paper-manganese oxide-carbon纳米管纳米复合材料的柔性超级电容器

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摘要

Modem portable electronic devices create a strong demand for flexible energy storage devices. Paper based nanocomposites are attractive as sustainable materials for such applications. Here, we directly explored the hydroxyl chemistry of cellulose fibers to synthesize hybrid ternary nanocomposites, comprised of rice paper, single-walled carbon nanotubes (SWCNTs) and manganese oxide nanoparticles. The functional groups on cellulose fibers can react with adsorbed permanganate ions, resulting in uniform deposition of manganese oxide nanoparticles. SWCNTs coated on top of manganese oxide nanoparticles form a highly conductive network connecting individual manganese oxide particles. By using the hybrid ternary composites as electrodes, the assembled two-electrode supercapacitors demonstrated high capacitance (260.2 F g~(-1)), energy (9.0 W h kg~(-1)), power (59.7 kW kg~(-1)), and cycle stability (12% drop after 3000 cycles). In addition, the nanocomposites show good strength and excellent mechanical flexibility, and their capacitance shows negligible changes after bending more than 100 times. These findings suggest that opportunities exist to further explore the rich chemistry of cellulose fibers for innovative energy applications.
机译:现代便携式电子设备创建一个强灵活的能源存储设备的需求。基于纳米复合材料有吸引力可持续材料等应用程序。这里,我们直接探讨了羟基化学纤维素纤维合成混合三元纳米复合材料,由米纸、单壁碳纳米管(SWCNTs)和锰氧化物纳米颗粒。组在纤维素纤维可以反应吸附高锰酸盐离子,导致制服锰氧化物纳米颗粒的沉积。SWCNTs涂层氧化锰纳米粒子形成一个高导电网络连接个人锰氧化物粒子。通过使用混合三元复合材料电极,组装二电极超级电容器证明高电容(260.2 F g ~(1)),能量(9.0 W h公斤~(1)),力量(59.7 kW公斤~(1)),和循环稳定性(下降12%在3000周期)。纳米复合材料表现出良好的实力和优秀的机械的灵活性,和他们的电容弯曲超过后显示的变化可以忽略不计100次。进一步探索丰富的机会存在纤维素纤维的化学创新能源的应用程序。

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