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Interrogation of the Reaction Mechanism in a Na-O-2 Battery Using In Situ Transmission Electron Microscopy

机译:使用原位透射电子显微镜的Na-O-2电池中反应机理的询问

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Critical factors that govern the composition and morphology of discharge products are largely unknown for NaO2 batteries. Here we report a reversible oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) process in a sodium-oxygen battery observed using in situ environmental-transmission electron microscopy (TEM) experiment. The reaction mechanism and phase evolution are probed using in situ electron diffraction and TEM imaging. The reversible ORR and OER cycling lies upon the nanosized copper clusters that were formed in situ by sodiation of CuS. In situ electron diffraction revealed the formation of NaO2 initially, which then disproportionated into orthorhombic and hexagonal NaO2, and O-2. Na2O2 was the major final ORR product that uniformly covered the whole wire-shape cathode. This uniform product morphology largely increased the application feasibility of NaO2 batteries in industry. In the following OER process, the Na2O2 transformed to NaO2, which resulted in volume expansion at first, and then the NaO(2 )decomposed to sodium ions and O-2 gas. Galvanostatic charge/discharge profiles of CuS in real NaO2 cells revealed a maximum capacity over 3 mAh cm(-2) with a discharge cutoff voltage of 1.8 V and high cycling stability. The nanosized copper catalyst plays a dominating role in controlling the morphology, chemical composition of discharge products, and reversibility of this Na-O-2 battery. Our finding shines light on the exploration of effective catalysts for the Na-O-2 battery.
机译:为Nao2电池而言,控制排出产品的组成和形态的关键因素很大程度上是未知的。在这里,我们在使用原位环境透射电子显微镜(TEM)实验中观察到的钠 - 氧电池中,我们报告了可逆氧还原反应(ORR)和氧气演化反应(OER)方法。使用原位电子衍射和TEM成像探测反应机理和相位进化。可逆ORR和oer循环位于纳米化铜簇上,通过CUS调解原位形成。原位电子衍射揭示了NaO2的形成,然后厌死于正畸和六边形NaO 2和O-2。 Na2O2是主要的最终ORR产品,均匀地覆盖整个丝形阴极。这种均匀的产品形态在很大程度上提高了Nao2电池在工业中的应用可行性。在以下oer方法中,将Na 2 O 2转化为NaO2,从第一导致体积膨胀,然后将NaO(2)分解为钠离子和O-2气体。 Real Nao2细胞中CU的电压电荷/放电剖面显示出超过3mAhcm(-2)的最大容量,排出截止电压为1.8V和高循环稳定性。纳米化铜催化剂在控制输卵管的形态,化学成分以及该Na-O-2电池的可逆性方面起着主导作用。我们的发现光线探讨了Na-2电池的有效催化剂的探索。

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