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Sulfur-Doped Reduced Graphene Oxide for Enhanced Sodium Ion Pseudocapacitance

机译:硫掺杂还原氧化石墨烯用于增强钠离子伪电容

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摘要

Sodium-ion capacitors (NICs) are considered an important candidate for large-scale energy storage in virtue of their superior energy–power properties, as well as availability of rich Na+ reserves. To fabricate high-performance NIC electrode material, a hydrothermal method was proposed to synthesize sulfur-doped reduced graphene oxide (SG), which exhibited unique layered structures and showed excellent electrochemical properties with 116 F/g capacitance at 1 A/g as the cathode of NICs from 1.6 V to 4.2 V. At the power–energy density over 5000 W/kg, the SG demonstrated over 100 Wh/kg energy density after 3500 cycles, which indicated its efficient durability and superior power–energy properties. The addition of a sulfur source in the hydrothermal process led to the higher specific surface area and more abundant micropores of SG when compared with those of reduced graphene oxide (rGO), thus SG exhibited much better electrochemical properties than those shown by rGO. Partially substituting surface oxygen-containing groups of rGO with sulfur-containing groups also facilitated the enhanced sodium-ion storage ability of SG by introducing sufficient pseudocapacitance.
机译:钠离子电容器(NIC)凭借其优越的能量和功率特性以及丰富的Na + 储量而被认为是大规模储能的重要候选者。为了制造高性能的NIC电极材料,提出了一种水热法来合成硫掺杂的还原氧化石墨烯(SG),该氧化石墨烯具有独特的层状结构,并具有优异的电化学性能,在1 A / g的电容量下具有116 F / g的电容。在1.6 V至4.2 V的NIC范围内工作。在功率能量密度超过5000 W / kg时,SG在3500次循环后显示出超过100 Wh / kg的能量密度,这表明其有效的耐久性和出色的功率能量特性。与还原的氧化石墨烯(rGO)相比,在水热过程中添加硫源导致SG的比表面积更高和微孔更丰富,因此,SG的电化学性能要比rGO更好。通过引入足够的假电容,rGO的表面含氧基团部分地被含硫基团取代也促进了SG钠离子存储能力的增强。

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