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Rescaling of metal oxide nanocrystals for energy storage having high capacitance and energy density with robust cycle life

机译:具有高电容和高能量密度且循环寿命长的用于能量存储的金属氧化物纳米晶体的定标

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摘要

Nanocrystals are promising structures, but they are too large for achieving maximum energy storage performance. We show that rescaling 3-nm particles through lithiation followed by delithiation leads to high-performance energy storage by realizing high capacitance close to the theoretical capacitance available via ion-to-atom redox reactions. Reactive force-field (ReaxFF) molecular dynamics simulations support the conclusion that Li atoms react with nickel oxide nanocrystals (NiO-n) to form lithiated core–shell structures (Ni:Li2O), whereas subsequent delithiation causes Ni:Li2O to form atomic clusters of NiO-a. This is consistent with in situ X-ray photoelectron and optical spectroscopy results showing that Ni2+ of the nanocrystal changes during lithiation–delithiation through Ni0 and back to Ni2+. These processes are also demonstrated to provide a generic route to rescale another metal oxide. Furthermore, assembling NiO-a into the positive electrode of an asymmetric device enables extraction of full capacitance for a counter negative electrode, giving high energy density in addition to robust capacitance retention over 100,000 cycles.
机译:纳米晶体是很有前途的结构,但它们太大了,无法实现最大的能量存储性能。我们表明,通过实现锂离子化然后再进行去锂化来重新定标3nm颗粒,可以通过实现高电容来实现高性能的能量存储,该电容接近于可通过离子对原子氧化还原反应获得的理论电容。反应力场(ReaxFF)分子动力学模拟支持以下结论:锂原子与氧化镍纳米晶体(NiO-n)反应形成锂化的核-壳结构(Ni:Li2O),而随后的脱锂导致Ni:Li2O形成原子团簇NiO-a。这与原位X射线光电子和光谱结果一致,表明纳米晶的Ni 2 + 在锂化过程中通过Ni 0 脱锂并返回Ni 2 + 。还证明了这些工艺为重新定标另一种金属氧化物提供了通用途径。此外,将NiO-a组装到不对称设备的正极中,可以提取反负极的全部电容,除了在100,000次循环中保持稳定的电容外,还具有很高的能量密度。

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