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Pore-Structure-Optimized CNT-Carbon Nanofibers from Starch for Rechargeable Lithium Batteries

机译:淀粉的孔隙结构优化的CNT-碳纳米纤维用于可充电锂电池

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摘要

Porous carbon materials are used for many electrochemical applications due to their outstanding properties. However, research on controlling the pore structure and analyzing the carbon structures is still necessary to achieve enhanced electrochemical properties. In this study, mesoporous carbon nanotube (CNT)-carbon nanofiber electrodes were developed by heat-treatment of electrospun starch with carbon nanotubes, and then applied as a binder-free electrochemical electrode for a lithium-ion battery. Using the unique lamellar structure of starch, mesoporous CNT-carbon nanofibers were prepared and their pore structures were controlled by manipulating the heat-treatment conditions. The activation process greatly increased the volume of micropores and mesopores of carbon nanofibers by etching carbons with CO2 gas, and the Brunauer-Emmett-Teller (BET) specific area increased to about 982.4 m2·g−1. The activated CNT-carbon nanofibers exhibited a high specific capacity (743 mAh·g−1) and good cycle performance (510 mAh·g−1 after 30 cycles) due to their larger specific surface area. This condition presents many adsorption sites of lithium ions, and higher electrical conductivity, compared with carbon nanofibers without CNT. The research suggests that by controlling the heat-treatment conditions and activation process, the pore structure of the carbon nanofibers made from starch could be tuned to provide the conditions needed for various applications.
机译:多孔碳材料由于其出色的性能而被用于许多电化学应用。但是,仍然需要进行控制孔结构和分析碳结构的研究以实现增强的电化学性能。在这项研究中,中孔碳纳米管(CNT)-碳纳米纤维电极是通过用碳纳米管对电纺淀粉进行热处理而开发的,然后将其用作锂离子电池的无粘结剂电化学电极。利用独特的淀粉层状结构,制备了介孔CNT-碳纳米纤维,并通过控制热处理条件来控制其孔结构。活化过程通过用CO2气体蚀刻碳大大增加了碳纳米纤维的微孔和中孔的体积,Brunauer-Emmett-Teller(BET)比表面积增加到约982.4 m 2 ·g −1 。活化的碳纳米管具有较高的比容量(743 mAh·g -1 )和良好的循环性能(30循环后为510 mAh·g -1 )。其较大的比表面积。与没有CNT的碳纳米纤维相比,该条件具有许多锂离子吸附位点和更高的电导率。研究表明,通过控制热处理条件和活化过程,可以调节由淀粉制成的碳纳米纤维的孔结构,以提供各种应用所需的条件。

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