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Studies on electrochemical sodium storage into hard carbons with binder-free monolithic electrodes

机译:无粘结剂整体电极将钠电化学存储到硬碳中的研究

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Hard carbons emerge as one of the most promising candidate for an anode of Na-ion batteries. This research focuses on the carbon monolith derived from resorcinol-formaldehyde (RF) gels as a model hard carbon electrode. A series of binder-free monolithic carbon electrodes heat-treated at varied temperatures allow the comparative investigation of the correlation between carbon nanotexture and electrochemical Na+-ion storage. The increase in carbonization temperature exerts a favorable influence on electrode performance, especially in the range between 1600 degrees C and 2500 degrees C. The comparison between Li+- and Na+-storage behaviors in the carbon electrodes discloses that the Na+-trapping in nanovoids is negligible when the carbonization temperature is higher than 1600 degrees C. On the other hand, the high temperature sintering at 2500-3000 degrees C enlarges the resistance for Na+-insertion into interlayer spacing as well as Na+-filling into nanovoids. In addition, the study on the effect of pore size clearly demonstrates that not the BET surface area but the surface area related to meso- and macropores is a predominant factor for the initial irreversible capacity. The outcomes of this work are expected to become a benchmark for other hard carbon electrodes prepared from various precursors. (C) 2016 Elsevier B.V. All rights reserved.
机译:硬碳成为Na离子电池阳极最有希望的候选者之一。这项研究集中在由间苯二酚-甲醛(RF)凝胶衍生的碳整体材料上,作为模型硬碳​​电极。一系列在不同温度下进行热处理的无粘结剂整体式碳电极可以对碳纳米结构与电化学Na +离子存储之间的相关性进行比较研究。碳化温度的升高对电极性能产生有利的影响,尤其是在1600℃至2500℃的范围内。碳电极中Li +-和Na +-储存行为的比较表明,纳米空隙中的Na +捕获可以忽略不计当碳化温度高于1600℃时,另一方面,在2500-3000℃的高温烧结增大了Na +插入层间间距以及将Na +填充到纳米空隙中的阻力。另外,对孔径影响的研究清楚地表明,不是BET表面积而是与中孔和大孔有关的表面积是初始不可逆容量的主要因素。这项工作的成果有望成为由各种前体制备的其他硬碳电极的基准。 (C)2016 Elsevier B.V.保留所有权利。

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