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Organ-like Ti3C2 Mxenes/polyaniline composites by chemical grafting as high-performance supercapacitors

机译:通过化学接枝作为高性能超级电容器的器官样Ti3C2 mxenes /聚苯胺复合材料

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摘要

We demonstrated a novel and convenient synthesis of amino-Ti3C2/polyaniline (N-Ti3C2/PANI) composites as high-performance supercapacitors electrode by chemical bonding between organ-like N-Ti3C2 and PANI chains, which were successfully deposited on FTO-glass substrates by a facile two-steps electrochemical reactions. Owing to effective chemical bonds between PANI chains and N-Ti3C2 layers, and well-defined Ti3C2 layers profiting from organ-like structures, it could afford the rapid pathways for charge/ion transfer and prevent the restacking of Ti3C2 layers. Herein, the effects of the electrochemical time of aniline, morphology, structure and electrochemical properties of organ-like N-Ti3C2/PANI composites were explored. Experimental results show that N-Ti3C2 can act as active sites to combine with the amine nitrogen of PANI chains and promote the growth of aniline monomers on the interlamination and surface of Ti3C2 layers. PANI possesses the good pseudocapacitance behavior which can enhance surface area and interlaminar spacing of the Ti3C2 Mxenes. The N-Ti3C2/PANI composites achieve the maximum area capacitance as high as 228 mF cm(-2) at a scan rate of 5 mV s(-1), and almost 85% capacitance retention is obtained after 1000 charging/discharging cycles. Moreover, the facile synthesis of organ-like N-Ti3C2/PANI composite can provide a convenient and green strategy to prepare promising electrode materials for supercapacitors.
机译:我们证明了一种新颖,随着氨基-TI3C2 /聚苯胺(N-Ti3C2 / PANI)复合材料的新颖,通过化学键合在有机样N-TI3C2和PANI链之间的化学键合,其成功地沉积在FTO - 玻璃基板上通过容易的双步电化学反应。由于聚苯胺链和N- Ti3C2层,并且良好定义的Ti3C2层从获利之间的有效化学键器官样结构,它可以得到用于电荷/离子转移的快速通路和防止Ti3C2层的重新堆叠。这里,探索了苯胺的电化学时间,形态,结构和电化学性质的电化学时间的效果探索了器官样N-Ti3C2 / Pani复合材料的效果。实验结果表明,N-Ti3C2可以作为与胰腺链的胺氮结合的活性位点,促进苯胺单体对Ti3C2层的互连和表面的生长。 Pani拥有良好的假偶联行为,可以增强Ti3C2 mxenes的表面积和层间间距。的N Ti3C2 / PANI复合材料以5毫伏秒(-1)的扫描速率达到最大面积的电容高达228μF的厘米(-2),和充电/放电循环1000后获得几乎85%的电容保持率。此外,容易合成器官样N-Ti3C2 / PANI复合材料可以提供方便和绿色策略,为超级电容器制备有前途的电极材料。

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