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Rice husk-derived hard carbons as high-performance anode materials for sodium-ion batteries

机译:稻壳衍生的硬碳作为钠离子电池的高性能阳极材料

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Sodium-ion batteries (SIBs) have drawn ever-increasing attention for scalable electrical energy storage owing to the inexhaustible sources and wide distribution of sodium. However, to develop feasible anode materials still remains a great challenge for the practical application of SIBs. Here, we report hard carbons derived from a plentiful and deserted biomass of rice husk through a facile acid treatment and subsequent pyrolysis. The investigation illustrates that the electrochemical properties of the rice husk-derived hard carbons (RHHCs) are significantly influenced by the pyrolysis temperature because of the discrepancy in their microstructure. The RHHC pyrolyzed at 1300 degrees C (RHHC-1300) shows the highest reversible capacity of 372 mAh g(-1) and good cycling stability and rate performance due to its large interlayer distance and suitable oxygen content. Moreover, full sodium-ion batteries are assembled to examine the application prospect using Na3V2(PO4)(2)F-3/C and RHHC-1300 as cathode and anode materials, respectively, delivering a high-energy density of 185 Wh kg(-1) and stable cycling performance. This work could intensify the fundamental understanding of the sodium storage mechanism in biomass-derived hard carbons. (C) 2017 Elsevier Ltd. All rights reserved.
机译:钠离子电池(SIBs)由于钠的无穷无尽和广泛分布而导致可扩展的电能存储不断增加。然而,为了开发可行的阳极材料仍然是SIBs实际应用的巨大挑战。在这里,我们通过容易处理和随后的热解来报告源自稻壳的丰富和荒凉的生物质的硬碳。该研究表明,由于其微观结构的差异,稻壳衍生的硬碳(RHHCs)的电化学性能受到热解温度的显着影响。在1300摄氏度(RHHC-1300)下热解的RHHC显示出最高可逆容量为372mAhg(-1),并且由于其大层间距离和合适的氧含量而良好的循环稳定性和速率性能。此外,组装了全钠离子电池,以分别使用Na3v2(PO4)(2)F-3 / C和RHHC-1300作为阴极和阳极材料来检查应用前景,从而提供185WHG( -1)和稳定的循环性能。这项工作可以加剧生物质衍生的硬碳钠储存机制的根本理解。 (c)2017 Elsevier Ltd.保留所有权利。

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