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MnO Nanoparticle@Mesoporous Carbon Composites Grown on Conducting Substrates Featuring High-performance Lithium-ion Battery Supercapacitor and Sensor

机译:在具有高性能锂离子电池超级电容器和传感器的导电基底上生长的MnO纳米颗粒@中孔碳复合材料

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摘要

We demonstrate a facile, two-step coating/calcination approach to grow a uniform MnO nanoparticle@mesoporous carbon (MnO@C) composite on conducting substrates, by direct coating of the Mn-oleate precursor solution without any conducting/binding reagents, and subsequent thermal calcination. The monodispersed, sub-10 nm MnO nanoparticles offer high theoretical energy storage capacities and catalytic properties, and the mesoporous carbon coating allows for enhanced electrolyte transport and charge transfer towards/from MnO surface. In addition, the direct growth and attachment of the MnO@C nanocomposite in the supporting conductive substrates provide much reduced contact resistances and efficient charge transfer. These excellent features allow the use of MnO@C nanocomposites as lithium-ion battery and supercapacitor electrodes for energy storage, with high reversible capacity at large current densities, as well as excellent cycling and mechanical stabilities. Moreover, this MnO@C nanocomposite has also demonstrated a high sensitivity for H2O2 detection, and also exhibited attractive potential for the tumor cell analysis.
机译:我们演示了一种简便的两步涂覆/煅烧方法,该方法通过在不使用任何导电/结合剂的情况下直接涂覆油酸锰前驱体溶液,然后在导电基质上生长均匀的MnO纳米颗粒@中碳(MnO @ C)复合材料。热煅烧。单分散的亚10纳米以下的MnO纳米颗粒具有较高的理论储能能力和催化性能,中孔碳涂层可增强电解质向MnO表面的传输和电荷从MnO表面的迁移。此外,MnO @ C纳米复合材料在支撑导电基材中的直接生长和附着提供了大大降低的接触电阻和有效的电荷转移。这些出色的功能允许将MnO @ C纳米复合材料用作储能的锂离子电池和超级电容器电极,在大电流密度下具有高可逆容量,并具有出色的循环和机械稳定性。此外,该MnO @ C纳米复合材料还显示出对H2O2检测的高灵敏度,并且在肿瘤细胞分析中也显示出诱人的潜力。

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