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Black Anatase Titania with Ultrafast Sodium-Storage Performances Stimulated by Oxygen Vacancies

机译:黑色锐钛矿二氧化钛具有超快的储氧性能,受氧空位的刺激

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Nanostructured black anatase titania with oxygen vacancies (OVs) is efficiently obtained and employed as an anode in sodium-ion batteries (SIBs) for the first time. The incorporation of OVs into TiO2 is demonstrated to render considerably enhanced-rate performances, higher initial capacities, and an accelerated electrochemical activation process during cycling, derived from the boosted intrinsic electric conductivity and improved kinetics of Na uptake. Bestowed with the integrated merits of OVs and shortened Na ion diffusion length in the nanostructure, black titania delivers a reversible specific capacity of 207.6 mAh g(-1) at 0.2 C, retains 99.1% over 500 cycles at 1 C stably, and still maintains 91.2 mAh g(-1) even at the high rate of 20 C. Density functional theory (DFT) calculations suggest that the lower sodiation energy barrier of anatase with OVs enables a more favorable Na intercalation into black anatase. Thus, it is of great significance to introduce OVs into TiO2 to stimulate ultrafast and durable sodium-storage properties, which also offers a potential strategy to project more superior electrodes, utilizing internal defects.
机译:有效地获得具有氧空位(OVs)的纳米结构黑色锐钛矿型二氧化钛,并将其首次用作钠离子电池(SIB)的阳极。已证明将OVs掺入TiO2可以显着提高速率性能,提高初始容量并在循环过程中加速电化学活化过程,这归因于固有电导率的提高和Na吸收动力学的提高。凭借OVs的综合优点和缩短的纳米结构中Na离子扩散长度,黑二氧化钛在0.2 C时可逆比容量为207.6 mAh g(-1),在1 C的500个循环中可保持99.1%的稳定状态,并且仍保持即使在20 C的高速率下也能达到91.2 mAh g(-1)。密度泛函理论(DFT)计算表明,具有OVs的锐钛矿的较低糖化能垒使Na更好地插入黑色锐钛矿中。因此,将OVs引入TiO2以激发超快和持久的钠存储特性具有重要意义,这也提供了利用内部缺陷来投射更多优质电极的潜在策略。

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