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首页> 外文期刊>ACS nano >3D Crumpled Ultrathin 1T MoS2 for Inkjet Printing of Mg-Ion Asymmetric Micro-supercapacitors
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3D Crumpled Ultrathin 1T MoS2 for Inkjet Printing of Mg-Ion Asymmetric Micro-supercapacitors

机译:用于喷墨印刷Mg离子不对称微型超级超电路仪的3D皱巴巴的超薄1T MOS2

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摘要

Metallic molybdenum disulfide (MoS2), e.g., 1T phase, is touted as a highly promising material for energy storage that already displays a great capacitive performance. However, due to its tendency to aggregate and restack, it remains a formidable challenge to assemble a high-performance electrode without scrambling the intrinsic structure. Here, we report an electrohydrodynamic-assisted fabrication of 3D crumpled MoS2 (c-MoS2) and its formation of an additive-free stable ink for scalable inkjet printing. The 3D c-MoS2 powders exhibited a high concentration of metallic 1T phase and an ultrathin structure. The aggregation-resistant properties of the 3D crumpled particles endow the electrodes with open space for electrolyte ion transport. Importantly, we experimentally discovered and theoretically validated that 3D 1T c-MoS2 enables an extended electrochemical stable working potential range and enhanced capacitive performance in a bivalent magnesium-ion aqueous electrolyte. With reduced graphene oxide (rGO) as the positive electrode material, we inkjet-printed 96 rigid asymmetric micro-supercapacitors (AMSCs) on a 4-in. Si/SiO2 wafer and 100 flexible AMSCs on photo paper. These AMSCs exhibited a wide stable working voltage of 1.75 V and excellent capacitance retention of 96% over 20 000 cycles for a single device. Our work highlights the promise of 3D layered materials as well-dispersed functional materials for large-scale printed flexible energy storage devices.
机译:金属钼二硫化物(MOS2),例如1T相,被吹捧为已经显示出很大的电容性能的能量存储的高度有希望的材料。然而,由于其膨胀和恢复的倾向,仍然是组装高性能电极的强大挑战,而不会扰乱本征结构。在这里,我们报告了3D皱巴型MOS2(C-MOS2)的电流动力学辅助制造及其形成可伸缩喷墨印刷的无添加剂稳定油墨。 3D C-MOS2粉末表现出高浓度的金属1T相和超薄结构。 3D弄皱的颗粒的聚集性能具有具有开放空间的电极,用于电解质离子传输。重要的是,我们在实验上发现和理论上地验证了3D 1T C-MOS2使得能够扩展电化学稳定的工作电位范围和增强的二价镁离子水电解质中的电容性能。用氧化石墨烯(RGO)作为正极材料,我们在4英寸上喷墨印刷的96个刚性不对称微型超级电容器(AMSC)。 Si / SiO2晶片和100个柔性AMSC上的照片纸。这些AMSCS在单个装置上表现出1.75V的宽稳定工作电压,优异的电容保持96%以上超过20 000个循环。我们的工作突出了3D分层材料的承诺,以及用于大型印刷柔性储能装置的分散功能材料。

著录项

  • 来源
    《ACS nano》 |2020年第6期|共11页
  • 作者单位

    Soochow Univ Coll Energy Soochow Inst Energy &

    Mat Innovat SIEMIS Key Lab Adv Carbon Mat &

    Wearable Energy Technol Suzhou 215006 Peoples R China;

    King Abdullah Univ Sci &

    Technol KAUST Phys Sci &

    Engn PSE Div Thuwal 239556900 Saudi Arabia;

    King Abdullah Univ Sci &

    Technol KAUST Phys Sci &

    Engn PSE Div Thuwal 239556900 Saudi Arabia;

    King Abdullah Univ Sci &

    Technol KAUST Phys Sci &

    Engn PSE Div Thuwal 239556900 Saudi Arabia;

    King Abdullah Univ Sci &

    Technol KAUST Phys Sci &

    Engn PSE Div Thuwal 239556900 Saudi Arabia;

    King Abdullah Univ Sci &

    Technol KAUST Phys Sci &

    Engn PSE Div Thuwal 239556900 Saudi Arabia;

    KAUST Comp Elect &

    Math Sci CEMS Div Elect Engn Program Thuwal 239556900 Saudi Arabia;

    King Abdullah Univ Sci &

    Technol KAUST Phys Sci &

    Engn PSE Div Thuwal 239556900 Saudi Arabia;

    King Abdullah Univ Sci &

    Technol KAUST Phys Sci &

    Engn PSE Div Thuwal 239556900 Saudi Arabia;

    Univ Calif Los Angeles Dept Mat Sci &

    Engn Dept Chem &

    Biochem Calif NanoSyst Inst CNSI Los Angeles CA 90095 USA;

    King Abdullah Univ Sci &

    Technol KAUST Phys Sci &

    Engn PSE Div Thuwal 239556900 Saudi Arabia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;
  • 关键词

    supercapacitors; MoS2; printing technique; Mg-ion; microdevice;

    机译:超级电容器;MOS2;印刷技术;Mg-ION;MicroDevice;

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