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Mesoporous Hybrids of Reduced Graphene Oxide and Vanadium Pentoxide for Enhanced Performance in Lithium-Ion Batteries and Electrochemical Capacitors

机译:还原氧化石墨烯和五氧化二钒的介孔杂化物,可增强锂离子电池和电化学电容器的性能

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Mesoporous hybrids of V2O5 nanoparticles anchored on reduced graphene oxide (rGO) have been synthesized by slow hydrolysis of vanadium oxytriisopropoxide using a two-step solvothermal method followed by vacuum annealing. The hybrid material possesses a hierarchical structure with 20-30 nm V2O5 nanoparticles uniformly grown on rGO nanosheets, leading to a high surface area with mesoscale porosity. Such hybrid materials present significantly improved electronic conductivity and fast electrolyte ion diffusion, which synergistically enhance the electrical energy storage performance. Symmetrical electrochemical capacitors with two rGO-V2O5 hybrid electrodes show excellent cycling stability, good rate capability, and a high specific capacitance up to similar to 466 F g(-1) (regarding the total mass of V2O5) in a neutral aqueous electrolyte (1.0 M Na2SO4). When used as the cathode in lithium-ion batteries, the rGO-V2O5 hybrid demonstrates excellent cycling stability and power capability, able to deliver a specific capacity of 295, 220, and 132 mAh g(-1) (regarding the mass of V2O5) at a rate of C/9, 1C, and 10C, respectively. The value at C/9 rate matches the full theoretical capacity of V2O5 for reversible 2 Li+ insertion/extraction between 4.0 and 2.0 V (vs Li/Li+). It retains similar to 83% of the discharge capacity after 150 cycles at 1C rate, with only 0.12% decrease per cycle. The enhanced performance in electrical energy storage reveals the effectiveness of rGO as the structure template and more conductive electron pathway in the hybrid material to overcome the intrinsic limits of single-phase V2O5 materials.
机译:通过使用两步溶剂热法缓慢水解氧三异丙氧基钒,然后进行真空退火,合成了锚定在还原氧化石墨烯(rGO)上的V2O5纳米粒子的介孔杂化物。杂化材料具有分层结构,其中20-30 nm V2O5纳米颗粒均匀地生长在rGO纳米片上,导致具有中尺度孔隙率的高表面积。此类杂化材料呈现出显着改善的电子导电性和快速的电解质离子扩散,从而协同增强了电能存储性能。具有两个rGO-V2O5混合电极的对称电化学电容器在中性水性电解质(1.0)中表现出出色的循环稳定性,良好的倍率能力和高达466 F g(-1)(相对于V2O5的总质量)的高比电容。 Na 2 SO 4)。当用作锂离子电池的阴极时,rGO-V2O5混合动力电池具有出色的循环稳定性和动力性能,能够提供295、220和132 mAh g(-1)的比容量(以V2O5的质量为基准)分别以C / 9、1C和10C的速率变化。 C / 9速率下的值与V2O5在4.0至2.0 V之间(相对于Li / Li +)之间可逆2 Li +插入/提取的全部理论容量匹配。在以1C的速率进行150次循环后,它保留了约83%的放电容量,每个循环仅降低0.12%。电能存储性能的增强揭示了rGO作为混合材料中的结构模板和更多导电电子路径的有效性,从而克服了单相V2O5材料的固有局限性。

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