论文标题
可充电钠电池的高压蜂窝层氧化物阳性电极
High-Voltage Honeycomb Layered Oxide Positive Electrodes for Rechargeable Sodium Batteries
论文作者
论文摘要
自然丰度,令人印象深刻的化学特征和经济可行性重新点燃了对可充电钠(NA)电池的呼吁,作为对不断增长的能源需求,环境可持续性和能源独立性的实用解决方案。但是,可行的积极电极材料的稀缺性仍然是该技术实现的巨大障碍。 In this paper, we explore honeycomb layered oxides adopting the composition Na$_2$Ni$_{2-x}$Co$_x$TeO$_6$ ($x = 0, 0.25$ and $0.50$) as feasible positive electrode (cathode) materials for rechargeable sodium batteries at both room- and elevated temperatures using ionic liquids.通过标准的GalvanoStatic评估和分析,我们证明,用Na $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _6 $替换镍$ _2 $ _6 $导致放电电压增加到近4 $ V(对na $^+$ / Na),na $ _2 $ _2 $ _2 $ _2 $ _co $ _ $ _ $ _co $ _ {对于大多数分层的氧化物阳性电极材料而言,材料超过了所达到的平均电压,这些材料有助于Na-ion丢弃。我们还验证了Na $ _2 $ ni $ _ {2-x} $ $ _x $ _x $ _x $ _6 $ honeycomb分层氧化物的Na $ _2 $ ni $ _ $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _6 $ _2 $ _2 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ honeycomb分层的氧化物,从而导致可充电Na电池可逆的可逆容量增加。这项研究的基础是同类物质过渡金属原子掺杂到Na $ _2 $ _2 $ ni $ _2 $ _2 $ teo $ _6 $的蜂窝结构,除了高温操作外,作为一种明智的途径,以增强类似氧化物的电化学性能。
Natural abundance, impressive chemical characteristics and economic feasibility have rekindled the appeal for rechargeable sodium (Na) batteries as a practical solution for the growing energy demand, environmental sustainability and energy independence. However, the scarcity of viable positive electrode materials remains a huge impediment to the actualization of this technology. In this paper, we explore honeycomb layered oxides adopting the composition Na$_2$Ni$_{2-x}$Co$_x$TeO$_6$ ($x = 0, 0.25$ and $0.50$) as feasible positive electrode (cathode) materials for rechargeable sodium batteries at both room- and elevated temperatures using ionic liquids. Through standard galvanostatic assessments and analyses we demonstrate that substitution of nickel with cobalt in Na$_2$Ni$_2$TeO$_6$ leads to an increase in the discharge voltage to nearly $4$ V (versus Na$^+$ / Na) for the Na$_2$Ni$_{2-x}$Co$_x$TeO$_6$ family of honeycomb layered oxide materials, which surpasses the attained average voltages for most layered oxide positive electrode materials that facilitate Na-ion desertion. We also verify the increased kinetics within the Na$_2$Ni$_{2-x}$Co$_x$TeO$_6$ honeycomb layered oxides during operations at elevated temperatures which lead to an increase in reversible capacity of the rechargeable Na battery. This study underpins the doping of congener transition metal atoms to the honeycomb structure of Na$_2$Ni$_2$TeO$_6$ in addition to elevated-temperature operation as a judicious route to enhance the electrochemical performance of analogous layered oxides.