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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Stitchable supercapacitors with high energy density and high rate capability using metal nanoparticle-assembled cotton threads
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Stitchable supercapacitors with high energy density and high rate capability using metal nanoparticle-assembled cotton threads

机译:使用金属纳米粒子组装棉线具有高能量密度和高速率能力的缝合超级电容器

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Herein, we introduce a high-performance and highly flexible asymmetric supercapacitor that is prepared from metallic cotton threads coated with pseudocapacitive nanoparticles without the aid of carbon-based conductive materials. In this study, Au nanoparticles are layer-by-layer assembled on highly porous cotton threads using amine-functionalized molecular linkers in organic media for the preparation of metallic cotton threads that can store a large amount of pseudocapacitive nanoparticles. The highly porous metallic cotton threads exhibit exceptional electrical conductivity (similar to 2.1 x 10(4) S cm(-1), resistance of similar to 0.1 Omega cm(-1)) and yet maintain the intrinsic flexibility of cotton. Using the same assembly method, Fe3O4 and MnO nanoparticles are deposited onto the metallic cotton threads to prepare the anode and the cathode, respectively, of the asymmetric supercapacitors, and furthermore, Au nanoparticles are periodically inserted between the pseudocapacitive multilayers to facilitate charge transport. The assembled all solid-state asymmetric supercapacitors with a unique structural design deliver a notable areal energy density of 80.7 mu W h cm(-2) (at 172.5 mu W cm(-2)) and a power density of 3450.1 mu W cm(-2) (at 53.7 mu W h cm(-2)), exceeding the performance of conventional thread-type asymmetric supercapacitors. We also emphasize that this energy performance can be further enhanced by increasing the number of metal and/or pseudocapacitive nanoparticle layers deposited.
机译:在此,我们介绍高性能和高度柔性的不对称超级电容器,其由涂覆有假壳体纳米颗粒的金属棉线制备,而无需碳基导电材料。在该研究中,Au纳米颗粒在有机介质中的胺官能化的分子接头组装在高度多孔的棉线上,用于制备可以存储大量假壳纳米粒子的金属棉线。高度多孔金属棉螺纹具有出色的导电性(类似于2.1×10(4)厘米(-1),相似的电阻与0.1ωcm(-1)),但保持棉的内在柔韧性。使用将相同的组装方法,Fe3O4和MnO纳米颗粒沉积在金属棉线上,以分别地制备不对称超级电容器的阳极和阴极,然后,在假壳多层之间周期性地插入Au纳米颗粒以促进电荷输送。组装所有具有独特结构设计的固态不对称超级电容器,可提供80.7μmHcm(-2)的显着面积能量密度(172.5μm(-2)),功率密度为3450.1μmw厘米( -2)(在53.7μm(-2)),超过传统螺纹型不对称超级电容器的性能。我们还强调,通过增加沉积的金属和/或假壳纳米粒子层的数量,可以进一步提高这种能量性能。

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