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Self-Supported Single Crystalline H2Ti8O_(17) Nanoarrays as Integrated Three-Dimensional Anodes for Lithium-Ion Microbatteries

机译:自支撑单晶H2Ti8O_(17)纳米阵列作为锂离子微电池的集成三维阳极

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摘要

Well-ordered, one-dimensional H2Ti2O5, H2Ti8O_(17), TiO2-B, and anatase TiO2/TiO2-B nanowire arrays were innovatively designed and directly grown on current collectors as high performance three dimensional (3D) anodes for binder and carbon free lithium ion batteries (LIBs). The prepared thin nanowires exhibited a single crystalline phase with highly uniform morphologies, diameters ranging from 70-80 nm, and lengths of around 15 μm. Specifically, reversible Li insertion and extraction reactions around 1.6-1.8 V with initial intercalation capacities of 326 and 271 mAh g~(-1) at a cycling rate of 0.1 C (where 1 C = 335 mA g~(-1)) were observed for H2Ti8O_(17) and TiO2-B nanowire arrays, respectively. Among the four compounds investigated, the H2Ti8O_(17) nanowire electrode demonstrated optimal cycling stability, delivering a high specific discharge capacity of 157.8 mA h g~(-1) with a coulombic efficiency of 100%, even after the 500th cycle at a current rate of 1 C. Furthermore, the H2Ti8O_(17) nanowire electrode displayed superior rate performance with rechargeable discharge capacities of 127.2, 111.4, 87.2, and 73.5 mA h g~(-1) at 5 C, 10 C, 20 C, and 30 C, respectively. These results present the potential opportunity for the development of high-performance LIBs based on nanostructured Ti-based anode materials in terms of high stability and high rate capability.
机译:创新地设计了有序的一维H2Ti2O5,H2Ti8O_(17),TiO2-B和锐钛矿型TiO2 / TiO2-B纳米线阵列,并将其直接生长在集电器上,作为用于粘合剂和无碳的高性能三维(3D)阳极锂离子电池(LIB)。制备的细纳米线显示出​​具有高度均匀的形态,直径范围为70-80 nm,长度约为15μm的单晶相。具体而言,在0.1 C的循环速率下,初始插入容量分别为326和271 mAh g〜(-1)的1.6-1.8 V附近的可逆Li插入和提取反应为(其中1 C = 335 mA g〜(-1))。分别观察到H2Ti8O_(17)和TiO2-B纳米线阵列。在所研究的四种化合物中,H2Ti8O_(17)纳米线电极表现出最佳的循环稳定性,即使在以电流速率进行第500次循环后,仍具有157.8 mA hg〜(-1)的高比放电容量和100%的库伦效率。此外,H2Ti8O_(17)纳米线电极在5 C,10 C,20 C和30 C时表现出优异的速率性能,可充电放电容量为127.2、111.4、87.2和73.5 mA hg〜(-1)。 , 分别。这些结果为基于纳米结构的钛基阳极材料的高性能LIB的高稳定性和高倍率性能提供了潜在的机会。

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