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High-Loading Nickel Cobaltate Nanoparticles Anchored on Three-Dimensional N-Doped Graphene as an Efficient Bifunctional Catalyst for Lithium-Oxygen Batteries

机译:载于三维N掺杂石墨烯上的高负载钴酸镍纳米粒子,作为锂氧电池的高效双功能催化剂

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摘要

The lithium-oxygen batteries have been considered as the progressive energy storage equipment for their expected specific energy. To improve the electrochemical catalytic performance in the lithium-oxygen batteries, the NiCo2O4. nanoparticles (NCONPs) are firmly anchored onto the surface of the N-doped reduced graphene oxide (N-rGO) by the hydrothermal method followed by low-temperature calcination. Compared with the pure metallic oxide, the introduction of the rGO can create the high surface area, which give a good performance for ORR (oxygen reduction reaction), and improve the electrical conductivity between the NCONPs. The high-loading NCONPs also ensure the material to have great catalytic activity for OER (oxygen evolution reaction), and the rGO can be protected by the nanoparticles coating against the side reaction with the Li2O2. The as-synthesized NCO@N-rGO composites deliver a specific surface area (about 242.5 m(2) g(-1)), exhibiting three-dimensional (3D) porous structure, which provides a large passageway for the diffusion of the oxygen and benefits the infiltration of electrolyte and the storage of the discharge products. Owing to these special architectures features and intrinsic materials, the NCO@N-rGO cathode delivers a high specific capacity (6716 mAh g(-1)), great rate performance, and excellent cycling stability with cutoff capacity of 1000 mAh g(-1) (112 cycles) in the lithium-oxygen batteries. The improved electrochemical catalytic activity and the special 3D porous structure make the NCO@N-rGO composites be a promising candidate for Li-O-2 batteries.
机译:锂氧电池因其预期的比能量而被认为是渐进式能量存储设备。为了改善锂氧电池NiCo2O4的电化学催化性能。纳米粒子(NCONPs)通过水热法紧接着在低温煅烧中牢固地锚固在N掺杂的还原氧化石墨烯(N-rGO)的表面上。与纯金属氧化物相比,rGO的引入可以产生高表面积,从而为ORR(氧还原反应)提供良好的性能,并改善NCONP之间的导电性。高负载的NCONP还确保了该材料对OER(氧气释放反应)具有很大的催化活性,并且rGO可以通过纳米颗粒涂层保护以防止与Li2O2发生副反应。合成后的NCO @ N-rGO复合材料可提供比表面积(约242.5 m(2)g(-1)),具有三维(3D)多孔结构,为氧的扩散提供了较大的通道并有利于电解液的渗透和放电产物的储存。由于具有这些特殊的架构特性和固有材料,NCO @ N-rGO阴极可提供高比容量(6716 mAh g(-1)),出色的倍率性能和出色的循环稳定性,截止容量为1000 mAh g(-1) )(112个循环)。改进的电化学催化活性和特殊的3D多孔结构使NCO @ N-rGO复合材料成为Li-O-2电池的有希望的候选者。

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