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Universal construction of ultrafine metal oxides coupled in N-enriched 3D carbon nanofibers for high-performance lithium/sodium storage

机译:高性能锂/钠储存的N富集3D碳纳米纤维中的超细金属氧化物的通用构造

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摘要

To develop high-performance lithium/sodium-ion batteries, new method for the mass production of distinctive nanomaterials with ultrafine transition metal oxides intimately coupled in 3D carbon matrix still remains challenging. Herein, a universal strategy for synthesizing ultrafine metal oxide quantum dots (3-6 nm) tightly embedded in nitrogen-enriched 3D carbon nanofiber networks {MO@NCFs (MO = Co3O4, Mn3O4, Fe3O4)} is reported in a scalable manner. The MO@NCFs are constructed by coordinating nanofibrous carboxymethyl chitosan (CMCh) hydmgels and metal ions to form a stable metal-polysaccharide framework, and then by pyrolyzing process to generate hierarchically porous structure. The in situ and confined coordination in the CMCh framework can not only generate the metal oxides quantum dots with ultrafine size, but also endow the quantum dots to be robustly embedded in N-enriched 3D carbon nanofiber networks, leading to fast electron and ion transport, and excellent structural stability. As expected, the Co3O4@ NCFs exhibit a high Li+ storage capacity of 1199 mAh g(-1) at 200 mA g(-1), and a good cycling lifespan with capacity retention of 721 mAh g(-1) at 1000 mA g(-1) after 400 discharge/charge cycles. For sodium storage, the Co3O4@NCFs display superior capacities of 645 mAh g(-1) at 100 mA g(-1), good rate capability (191 mAh g(-1) at 4000 mA g(-1)), and remarkable capacity retention of 301 mAh g(-1) at 1000 mA g(-1) after 400 cycles. This work provides a facile pathway to construct firmly coupled carbon hybrids by utilizing sustainable polymers derived from seafood waste for enhancing energy storage.
机译:为了开发高性能锂/钠离子电池,具有在3D碳基质中紧密耦合的超细过渡金属氧化物批量生产的新方法仍然持挑战性。在此,以可扩展的方式报告用于合成含氮3D碳纳米恐怖网络中的超细金属氧化物量子点(3-6nm)的普遍策略{Mo @ NCFS(Mo = Co3O4,Mn3O4,Fe3O4)}。通过协调纳米纤维羧甲基壳聚糖(CMCH)Hydmgels和金属离子来构建Mo @ NCF,以形成稳定的金属 - 多糖框架,然后通过热解过程产生分层多孔结构。在CMCH框架中的原位和狭窄的协调不仅可以产生超细尺寸的金属氧化物量子点,而且还赋予量子点牢固地嵌入在富碳纳米纤维网络中,导致快速电子和离子运输,和出色的结构稳定性。如预期,CO3O4 @ NCFS在200mA G(-1)时表现出1199mAhg(-1)的高li +储存容量,并且在1000 mA g处具有721mAhg(-1)容量保持的良好循环寿命。 (-1)400放电/充电循环后。对于钠储存,CO3O4 @ NCFS在100mA G(-1),良好的速率能力(191mAhg(-1)时显示出645mAhg(-1)的优异容量,4000 mA g(-1)),在400次循环后,在1000 mA g(-1)上的显着容量保持在1000 mA g(-1)。该工作提供了一种容易途径,通过利用来自海鲜废物的可持续聚合物来构建牢固的碳杂化,以增强能量储存。

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