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Room temperature large-scale synthesis of layered frameworks as low-cost 4 V cathode materials for lithium ion batteries

机译:室温大规模合成层状框架作为低成本4 V锂离子电池正极材料

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摘要

Li-ion batteries (LIBs) are considered as the best available technology to push forward the production of eco-friendly electric vehicles (EVs) and for the efficient utilization of renewable energy sources. Transformation from conventional vehicles to EVs are hindered by the high upfront price of the EVs and are mainly due to the high cost of LIBs. Hence, cost reduction of LIBs is one of the major strategies to bring forth the EVs to compete in the market with their gasoline counterparts. In our attempt to produce cheaper high-performance cathode materials for LIBs, an rGO/MOPOF (reduced graphene oxide/Metal-Organic Phosphate Open Framework) nanocomposite with ~4 V of operation has been developed by a cost effective room temperature synthesis that eliminates any expensive post-synthetic treatments at high temperature under Ar/Ar-H2. Firstly, an hydrated nanocomposite, rGO/K2[(VO)2(HPO4)2(C2O4)]·4.5H2O has been prepared by simple magnetic stirring at room temperature which releases water to form the anhydrous cathode material while drying at 90 °C during routine electrode fabrication procedure. The pristine MOPOF material undergoes highly reversible lithium storage, however with capacity fading. Enhanced lithium cycling has been witnessed with rGO/MOPOF nanocomposite which exhibits minimal capacity fading thanks to increased electronic conductivity and enhanced Li diffusivity.
机译:锂离子电池(LIB)被认为是推动环保电动汽车(EV)生产和有效利用可再生能源的最佳可用技术。电动汽车的高昂的前期价格阻碍了从传统汽车向电动汽车的转型,这主要是由于LIB成本高昂。因此,降低LIB的成本是使EV与其汽油同行竞争市场的主要策略之一。为了生产更便宜的高性能锂离子电池正极材料,采用具有成本效益的室温合成技术开发了一种运行成本约为4 V的rGO / MOPOF(还原的氧化石墨烯/金属有机磷酸盐开放骨架)纳米复合材料,该方法消除了任何Ar / Ar-H2下高温下昂贵的合成后处理。首先,在室温下通过简单的磁力搅拌制备了水合纳米复合材料rGO / K2 [(VO)2(HPO4)2(C2O4)]·4.5H2O,该水在90°C下干燥的同时释放出水以形成无水阴极材料。在常规的电极制造过程中。原始的MOPOF材料经过高度可逆的锂存储,但是容量下降。 rGO / MOPOF纳米复合材料见证了增强的锂循环,该复合材料由于提高的电子电导率和增强的Li扩散性而显示出最小的容量衰减。

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