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首页> 外文期刊>Advanced energy materials >Scalable, All-Printed Photocapacitor Fibers and Modules based on Metal-Embedded Flexible Transparent Conductive Electrodes for Self-Charging Wearable Applications
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Scalable, All-Printed Photocapacitor Fibers and Modules based on Metal-Embedded Flexible Transparent Conductive Electrodes for Self-Charging Wearable Applications

机译:基于金属嵌入式柔性透明导电电极的可伸缩,全印刷的光电粉刺纤维和模块,用于自充电可穿戴应用

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摘要

The popularity of wearable smart electronic gadgets, such as smartphones, smartwatches, and medical sensors, is inhibited by their limited operation lifetime due to the lack of a sustainable self-charging power supply. This constraint can be overcome by developing a flexible, self-charging photocapacitor that can synchronously harvest and store energy. Here, ultrathin, all-printed, and metal-embedded transparent conducting electrodes (ME-TCEs) are designed for the fabrication of large-area, flexible organic solar cells (F-OSCs) and flexible supercapacitors (F-SCs). Stripe-shaped F-OSCs (SF-OSCs) and F-SCs (SF-SCs) are obtained via slitting the as-fabricated F-OSCs and F-SCs with a surgical scalpel, respectively. The SF-OSCs and SF-SCs fully retain their performance after slitting, achieving a power conversion efficiency of approximate to 6.43% and areal capacitance of approximate to 52 mF cm(-2), respectively. Furthermore, photocapacitor fibers are obtained by vertically stacking one SF-OSC and seven SF-SCs. Each fiber is fully encapsulated using UV-curable resin. When woven into a textile, the photocapacitor module (2 series x 4 parallel connections) is able to charge up to a voltage of 3.2 V in 5 min under one-sun illumination. The photoelectric-conversion-and-storage efficiency (eta) of the photocapacitor module is 4.94%. The highly tailorable, mechanically robust photocapacitor demonstrated herein can be a secondary, self-sustainable power supply for futuristic wearable applications.
机译:由于缺乏可持续的自充电电源,可穿戴智能电子小工具等可穿戴智能电子小工具的普及,例如智能手机,智能手表和医疗传感器。通过开发可以同步收获和存储能量的柔性,自充电光电电路容器可以克服该约束。这里,超薄,全印刷和金属嵌入式透明导电电极(ME-TCES)设计用于制造大面积,柔性有机太阳能电池(F-SOSCS)和柔性超级电容器(F-SCS)。通过将AS制造的F-OSC和F-SCS分别与手术手术刀分别切割,获得条纹F-OSCS(SF-OSC)和F-SCS(SF-SCS)。 SF-OSCS和SF-SCS在切割后完全保持其性能,分别实现了近似值的电源转换效率和近似为52mF cm(-2)的面积电容。此外,通过垂直堆叠一个SF-OSC和七个SF-SCs来获得光电容器纤维。每根纤维完全封装使用UV固化树脂。当编织成纺织品时,光电电路机模块(2系列x 4并联连接)能够在一次阳光照明下在5分钟内充电3.2 V的电压。光电偶联机模块的光电转换率和储存效率(ETA)为4.94%。本文展示的高度可缝制的机械强大的光电电路机可以是用于未来可穿戴应用的二级自动可持续电源。

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  • 来源
    《Advanced energy materials 》 |2021年第4期| 2003509.1-2003509.10| 共10页
  • 作者单位

    Jeonbuk Natl Univ LANL CBNU Engn Inst Korea Dept Flexible & Printable Elect Jeonju 54896 South Korea;

    Jeonbuk Natl Univ LANL CBNU Engn Inst Korea Dept Flexible & Printable Elect Jeonju 54896 South Korea;

    Jeonbuk Natl Univ LANL CBNU Engn Inst Korea Dept Flexible & Printable Elect Jeonju 54896 South Korea;

    Jeonbuk Natl Univ LANL CBNU Engn Inst Korea Dept Flexible & Printable Elect Jeonju 54896 South Korea;

    Jeonbuk Natl Univ LANL CBNU Engn Inst Korea Dept Flexible & Printable Elect Jeonju 54896 South Korea;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    energy storage; flexible; metal#8208; embedded; photocapacitors; solar cells;

    机译:储能;柔性;金属嵌入式;光电宽度仪;太阳能电池;

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