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Core/shell TiO2-MnO2/MnO2 heterostructure anodes for high-performance lithium-ion batteries

机译:高性能锂离子电池芯/壳TiO2-MnO2 / MnO2异质结构阳极

摘要

Core/shell TiO2-MnO2/MnO2 heterostructures were synthesized by combining an electrospinning technique with a hydrothermal reaction. To create the starting materials, porous TiO2-carbon nanofibers were first prepared using a simple electrospinning technique followed by calcination. The porous structure in TiO2-carbon nanofibers caused by the partial decomposition of polystyrene is beneficial to the diffusion of KMnO4 from the outer surface into inner fibers to completely react with carbon and produce MnO2 nanosheets. Some MnO2 nanosheets in the TiO2 core connect with other MnO2 nanosheets surrounding the TiO2 core to form core/shell TiO2-MnO2/MnO2, which can enhance the stability of the structure. The large surface area of the resulting materials offers a sufficient electrode-electrolyte interface to promote the charge-transfer reactions, which yields a better rate capability. The porous structure of TiO2-MnO2/MnO2 nanofibers not only facilitates Li-ion access, but also accommodates large volumetric expansion during the charging-discharging processes, resulting in an excellent cycle performance. As an anode, this material delivered a high reversible capacity of 891 mA h g(-1) at the first cycle and maintained the capacity of 888 mA h g(-1) after 50 cycles at the current density of 0.1 A g(-1); it also showed a remarkable rate capability of 2 A g(-1) while retaining a capacity of 185 mA h g(-1) after 500 cycles. Given their enhanced electrochemical performance, core/shell TiO2-MnO2/MnO2 heterostructure nanofibers are promising anode candidates for lithium-ion batteries.
机译:通过将电纺丝技术与水热反应相结合,合成了核/壳TiO2-MnO2 / MnO2异质结构。为了产生起始材料,首先使用简单的静电纺丝技术,然后进行煅烧,制备多孔的TiO2-碳纳米纤维。聚苯乙烯部分分解引起的TiO2-碳纳米纤维中的多孔结构有利于KMnO4从外表面扩散到内纤维中,从而与碳完全反应并生成MnO2纳米片。 TiO2核中的一些MnO2纳米片与围绕TiO2核的其他MnO2纳米片连接,形成核/壳TiO2-MnO2 / MnO2,可以增强结构的稳定性。所得材料的大表面积提供了足够的电极-电解质界面以促进电荷转移反应,从而产生了更好的速率能力。 TiO2-MnO2 / MnO2纳米纤维的多孔结构不仅有利于锂离子的进入,而且在充放电过程中还可以容纳较大的体积膨胀,从而具有出色的循环性能。作为阳极,这种材料在第一个循环中提供了891 mA hg(-1)的高可逆容量,并在50个循环后在0.1 A g(-1)的电流密度下保持了888 mA hg(-1)的容量。 ;它还显示了2 A g(-1)的显着速率能力,同时在500个循环后仍保持185 mA h g(-1)的容量。鉴于其增强的电化学性能,核/壳TiO2-MnO2 / MnO2异质结构纳米纤维有望成为锂离子电池的阳极候选材料。

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