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A Carbon Foam with Sodiophilic Surface for Highly Reversible Ultra‐Long Cycle Sodium Metal Anode

机译:用于高度可逆超长循环钠金属阳极的碳泡沫

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摘要

Sodium metal anodes combine low redox potential (−2.71 V versus SHE) and high theoretical capacity (1165 mAh g−1), becoming a promising anode material for sodium‐ion batteries. Due to the infinite volume change, unstable SEI films, and Na dendrite growth, it is arduous to achieve a long lifespan. Herein, an oxygen‐doped carbon foam (OCF) derived from starch is reported. Heteroatom doping can significantly reduce the nucleation resistance of sodium metal; combined with its rich pore structure and large specific surface area, OCF provides abundant nucleation sites to effectively guide the nucleation and subsequent growth of sodium metal, and the nature of this foam can accommodate the deposited sodium. Furthermore, a more uniform, robust, and stable SEI layer is observed on the surface of OCF electrode, so it can maintain ultra‐high reversibility and excellent integrity for a long time without dendritic growth. As a result, when the current density is 10 mA cm−2, the electrode can maintain stable 2000 cycles and the coulombic efficiency can reach to 99.83%. Na@OCF||Na3V2(PO4)3 full cell also has extremely high capacity retention of about 97.53% over 150 cycles. These results provide a simple but effective method for achieving the safety and commercialization of sodium metal anode.
机译:钠金属阳极将低氧化还原电位(-2.71 V与她)和高理论能力(1165mAh G-1)组合,成为钠离子电池的有前途的阳极材料。由于无限的体积变化,不稳定的SEI薄膜和NA树突生长,达到了漫长的寿命艰巨。这里,报道了衍生自淀粉的氧掺杂碳泡沫(OCF)。杂原子掺杂可显着降低钠金属的成核抗性;结合其丰富的孔隙结构和大的比表面积,OCF提供丰富的成核位点,以有效引导核心和随后的金属生长,并且该泡沫的性质可以容纳沉积的钠。此外,在OCF电极的表面上观察到更均匀,稳健和稳定的SEI层,因此在没有树突状生长的情况下,它可以保持超高的可逆性和优异的完整性。结果,当电流密度为10mA cm-2时,电极可以保持稳定的2000个循环,库仑效率可以达到99.83%。 NA @ OCF || NA3V2(PO4)3全细胞也具有超过150次循环的高容量保留约97.53%。这些结果提供了一种简单但有效的方法,用于实现钠金属阳极的安全性和商业化。

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