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首页> 外文期刊>Nature Communications >Interlayer gap widened α-phase molybdenum trioxide as high-rate anodes for dual-ion-intercalation energy storage devices
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Interlayer gap widened α-phase molybdenum trioxide as high-rate anodes for dual-ion-intercalation energy storage devices

机译:中间层间隙加宽了三氧化氧化钼作为双离子插入能量存储装置的高速阳极

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Employing high-rate ion-intercalation electrodes represents a feasible way to mitigate the inherent trade-off between energy density and power density for electrochemical energy storage devices, but efficient approaches to boost the charge-storage kinetics of electrodes are still needed. Here, we demonstrate a water-incorporation strategy to expand the interlayer gap of α-MoO 3 , in which water molecules take the place of lattice oxygen of α-MoO 3 . Accordingly, the modified α-MoO 3 electrode exhibits theoretical-value-close specific capacity (963?C?g -1 at 0.1?mV?s -1 ), greatly improved rate capability (from 4.4% to 40.2% at 100?mV?s -1 ) and boosted cycling stability (from 21 to 71% over 600 cycles). A fast-kinetics dual-ion-intercalation energy storage device is further assembled by combining the modified α-MoO 3 anode with an anion-intercalation graphite cathode, operating well over a wide discharge rate range. Our study sheds light on a promising design strategy of layered materials for high-kinetics charge storage.
机译:采用高速率离子插入电极代表可行的方式,以减轻电化学能量存储装置的能量密度和功率密度之间的固有折衷,但仍然需要有效地提高电极的电极电阻动力学。在这里,我们证明了一种用于扩展α-MOO 3的层间隙的水掺入策略,其中水分子取代α-moO 3的晶格氧。因此,改性的α-Moo 3电极表现出理论值 - 近距离的特定容量(963Ω·g -1,在0.1Ω·mVΔs-1),大大提高的速率能力(从100μl≤4%到40.2% ?S -1)并提高循环稳定性(从21〜71%超过600次循环)。通过将改性的α-Moo 3阳极与阴离子插入石墨阴极组合,在宽的放电速率范围内井,进一步组装快速动力学双离子插入能量存储装置。我们的研究揭示了高动力学电荷储存的有希望的分层材料设计策略。

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