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首页> 外文期刊>Angewandte Chemie >Transition-Metal Carbodiimides as Molecular Negative Electrode Materials for Lithium- and Sodium-Ion Batteries with Excellent Cycling Properties
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Transition-Metal Carbodiimides as Molecular Negative Electrode Materials for Lithium- and Sodium-Ion Batteries with Excellent Cycling Properties

机译:过渡金属碳二亚胺作为具有优异循环特性的锂离子电池和钠离子电池的分子负极材料

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摘要

We report evidence for the electrochemical activity of transition-metal carbodiimides versus lithium and sodium. In particular, iron carbodiimide, FeNCN, can be efficiently used as negative electrode material for alkali-metal-ion batteries, similar to its oxide analogue FeO. Based on Fe-57 Mossbauer and infrared spectroscopy (IR) data, the electrochemical reaction mechanism can be explained by the reversible transformation of the Fe-NCN into Li/Na-NCN bonds during discharge and charge. These new electrode materials exhibit higher capacity compared to well-established negative electrode references such as graphite or hard carbon. Contrary to its oxide analogue, iron carbodiimide does not require heavy treatments (such as nanoscale tailoring, sophisticated textures, or coating) to obtain long cycle life with current density as high as 9Ag(-1) for hundreds of charge-discharge cycles. Similar to the iron compound, several other transition-metal carbodiimides M-x(NCN)(y) with M=Mn, Cr, Zn can cycle successfully versus lithium and sodium. Their electrochemical activity and performance open the way to the design of a novel family of anode materials.
机译:我们报告了过渡金属碳二亚胺对锂和钠的电化学活性的证据。特别地,类似于其氧化物类似物FeO,碳二亚胺铁FeNCN可以有效地用作碱金属离子电池的负极材料。基于Fe-57 Mossbauer和红外光谱(IR)数据,可以通过在放电和充电过程中将Fe-NCN可逆转化为Li / Na-NCN键来解释电化学反应机理。与公认的负极参考材料(例如石墨或硬碳)相比,这些新型电极材料具有更高的容量。与它的氧化物类似物相反,碳二亚胺铁不需要大量的处理(例如纳米级剪裁,复杂的纹理或涂层),就可以在数百次充放电循环中以9Ag(-1)的电流密度获得较长的循环寿命。与铁化合物相似,M = Mn,Cr,Zn的其他几种过渡金属碳二亚胺M-x(NCN)(y)可以相对于锂和钠成功地循环。它们的电化学活性和性能为新型阳极材料系列的设计开辟了道路。

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