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Natural cellulose fiber as substrate for supercapacitor

机译:天然纤维素纤维作为超级电容器的基材

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Cellulose fibers with porous structure and electrolyte absorption properties are considered to be a good potential substrate for the deposition of energy material for energy storage devices. Unlike traditional substrates, such as gold or stainless steel, paper prepared from cellulose fibers in this study not only functions as a substrate with large surface area but also acts as an interior electrolyte reservoir, where electrolyte can be absorbed much in the cellulose fibers and is ready to diffuse into an energy storage material. We demonstrated the value of this internal electrolyte reservoir by comparing a series of hierarchical hybrid supercapacitor electrodes based on homemade cellulose paper or polyester textile integrated with carbon nanotubes (CNTs) by simple solution dip and electrodeposited with MnO2. Atomic layer deposition of Al_2O_3 onto the fiber surface was used to limit electrolyte absorption into the fibers for comparison. Configurations designed with different numbers of ion diffusion pathways were compared to show that cellulose fibers in paper can act as a good interior electrolyte reservoir and provide an effective pathway for ion transport facilitation. Further optimization using an additional CNT coating resulted in an electrode of paper/CNTs/MnO_2/CNTs, which has dual ion diffusion and electron transfer pathways and demonstrated superior supercapacitive performance. This paper highlights the merits of the mesoporous cellulose fibers as substrates for supercapacitor electrodes, in which the water-swelling effect of the cellulose fibers can absorb electrolyte, and the mesoporous internal structure of the fibers can provide channels for ions to diffuse to the electrochemical energy storage materials.
机译:具有多孔结构和电解质吸收特性的纤维素纤维被认为是沉积用于能量存储装置的能量材料的良好潜在基材。与传统的基材(例如金或不锈钢)不同,本研究中由纤维素纤维制成的纸不仅用作具有较大表面积的基材,而且还用作内部电解质储存器,电解质可在纤维素纤维中大量吸收,因此可以准备扩散到储能材料中。我们通过比较一系列基于自制纤维素纸或聚酯纺织品的分层混合超级电容器电极(通过碳纳米管(CNT)通过简单的溶液浸渍并以MnO2进行电沉积),证明了这种内部电解质储库的价值。 Al_2O_3在纤维表面上的原子层沉积被用来限制电解质吸收到纤维中以进行比较。比较了用不同数量的离子扩散途径设计的构型,以表明纸中的纤维素纤维可以充当良好的内部电解质库,并为促进离子迁移提供有效途径。使用附加的CNT涂层进行进一步优化,得到了纸/ CNT / MnO_2 / CNTs电极,该电极具有双重离子扩散和电子转移途径,并表现出优异的超电容性能。本文着重介绍了中孔纤维素纤维作为超级电容器电极基材的优点,其中纤维素纤维的水溶胀作用可以吸收电解质,并且纤维的中孔内部结构可以提供离子扩散到电化学能的通道储存材料。

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