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用于超临界流体沉积的储能用氧化钒-碳纳米管复合电极:实验设计和器件性能。

Vanadium oxide-carbon nanotube composite electrodes for energy storage by supercritical fluid deposition: experiment design and device performance.

机构信息

High Performance Materials Institute, Florida State University, Tallahassee, FL 32310, USA.

出版信息

Nanotechnology. 2013 Aug 9;24(31):315401. doi: 10.1088/0957-4484/24/31/315401. Epub 2013 Jul 12.

Abstract

Vanadium pentoxide (V2O5) deposited on porous multiwalled carbon nanotube (MWCNT) buckypaper using supercritical fluid CO2(scCO2) deposition shows excellent performance for electrochemical capacitors. However, the low weight loading of V2O5 is one of the main problems. In this paper, design of experiments and response surface methods were employed to explore strategies for improving the active material loading by increasing the organo-vanadium precursor adsorption. A second-order response surface model was fitted to the designed experiments to predict the loading of the vanadium precursors onto carbon nanotube buckypaper as a function of time, temperature and pressure of CO2, buckypaper functionalization, precursor type, initial precursor mass and stir speed. Operation conditions were identified by employing a model that led to a precursor loading of 19.33%, an increase of 72.28% over the initial screening design. CNTs-V2O5 composite electrodes fabricated from deposited samples using the optimized conditions demonstrated outstanding electrochemical performance (947.1 F g(-1) of V2O5 at a high scan rate 100 mV s(-1)). The model also predicted operation conditions under which light precursor aggregation took place. The V2O5 from aggregated precursor still possessed considerable specific capacitance (311 F g(-1) of V2O5 at a scan rate 100 mV s(-1)), and the significantly higher V2O5 loading (∼81%) contributed to an increase in overall electrode capacitance.

摘要

五氧化二钒(V2O5)沉积在多孔多壁碳纳米管(MWCNT)巴基纸(buckypaper)上,使用超临界二氧化碳(scCO2)沉积,表现出优异的电化学电容器性能。然而,V2O5 的低重量负载是主要问题之一。本文采用实验设计和响应面方法来探索提高活性材料负载的策略,通过增加有机钒前体的吸附来实现。采用二阶响应面模型对设计的实验进行拟合,以预测 CO2 的时间、温度和压力、巴基纸功能化、前体类型、初始前体质量和搅拌速度对碳纳米管巴基纸负载钒前体的影响。通过采用能够使前体负载达到 19.33%的模型来确定操作条件,比初始筛选设计提高了 72.28%。使用优化条件从沉积样品制备的 CNTs-V2O5 复合电极表现出出色的电化学性能(在高扫描速率 100 mV s-1 下为 947.1 F g-1 的 V2O5)。该模型还预测了发生轻前体聚集的操作条件。来自聚集前体的 V2O5 仍然具有相当大的比电容(在扫描速率 100 mV s-1 下为 311 F g-1 的 V2O5),并且显著提高的 V2O5 负载(约 81%)有助于增加整体电极电容。

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