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Boosting the electrochemical performance of MoS_2 nanospheres-N-doped- GQDs-rGO three-dimensional nanostructure for energy storage and conversion applications

机译:提升MoS_2纳米球-N掺杂-GQDs-rGO三维纳米结构的电化学性能,用于能量存储和转换应用

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摘要

The rational designed three-dimensional (3D) molybdenum-disulfide (MoS2) nanostructures have attracted significant research interest as electrode materials for energy conversion and storage applications. Herein, we developed 3D-MoS2 nanospheres and N-doped GQDS (N-GQDs) anchored with reduced graphene oxide (rGO) nanostructure (MoS2 -N-GQDs-rGO, MQG) by facile hydrothermal method which was used as an electrode material for supercapacitor and electrochemical water splitting. TEM image reveals that the self-assembly of MoS2 nanospheres were anchored on the surface of rGO-nanosheets without aggregation. The BET surface area of the MQG sample (43.3 m(2) /g) was 8.8-fold greater than that of MoS2 (4.9 m(2) /g). The MQG electrode shows an excellent specific-capacitance of 416.5 F/g at 1 A/g which was greater than that of MoS 2 (162.7 F/g). Also, 75.8% of its specific-capacitance was retained after 1000 cycles at 2 A/g, indicating its good stability. Moreover, the MQG nanostructure showed the preferable HER activity in 1.0 M KOH solution with a low overpotential of 145 mV at current density of 10 mA/cm(2) compared with MoS2 (186 mV). The 3D-nanostructure could improve the conductivity, surface area, ion-diffusion and prevent structural collapse in the electrochemical reaction, further leading to superior electrochemical performance. These results clearly indicate the MQG nanostructure as a highly propitious electrode for supercapacitor and HER applications.
机译:合理设计的三维(3D)二硫化钼(MoS2)纳米结构作为能量转换和存储应用的电极材料引起了广泛的研究兴趣。在这里,我们开发了3D-MoS2纳米球和N掺杂的GQDS(N-GQDs),其通过还原性氧化石墨烯(rGO)纳米结构(MoS2-N-GQDs-rGO,MQG)固定,采用了方便的水热方法,用作电极材料超级电容器和电化学水分解。 TEM图像显示MoS2纳米球的自组装被锚固在rGO纳米片的表面上而没有聚集。 MQG样品的BET表面积(43.3 m(2)/ g)是MoS2(4.9 m(2)/ g)的8.8倍。 MQG电极在1 A / g时显示出416.5 F / g的出色比电容,比MoS 2(162.7 F / g)更高。另外,在1000次循环后以2A / g保留了其75.8%的比电容,表明其良好的稳定性。此外,MQG纳米结构在1.0 M KOH溶液中显示出较好的HER活性,与MoS2(186 mV)相比,在10 mA / cm(2)的电流密度下,低过电势为145 mV。 3D纳米结构可以提高电导率,表面积,离子扩散并防止电化学反应中的结构崩溃,从而进一步提高电化学性能。这些结果清楚地表明,MQG纳米结构作为超级电容器和HER应用的极佳电极。

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  • 来源
    《Applied Surface Science》 |2020年第28期|144441.1-144441.10|共10页
  • 作者

  • 作者单位

    Henan Univ Henan Joint Int Res Lab Environm Pollut Control M Henan Key Lab Polyoxometalate Chem Coll Chem & Chem Engn Kaifeng 47504 Peoples R China;

    South China Normal Univ Sch Chem & Environm Minist Educ Key Lab Theoret Chem Environm Guangzhou 510006 Guangdong Peoples R China;

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  • 正文语种 eng
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  • 关键词

    Three-dimensional; Nanostructures; Molybdenum-disulfide; Supercapacitor; Hydrogen evolution reaction;

    机译:三维;纳米结构;二硫化钼;超级电容器析氢反应;

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