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首页> 外文期刊>RSC Advances >Capacitive performance of vertically aligned reduced titania nanotubes coated with Mn2O3 by reverse pulse electrodeposition
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Capacitive performance of vertically aligned reduced titania nanotubes coated with Mn2O3 by reverse pulse electrodeposition

机译:反向脉冲电沉积涂覆Mn2O3的垂直取向还原二氧化钛纳米管的电容性能

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In this study, a composite material, manganese oxide/reduced titania nanotubes (Mn _(2) O _(3) /R-TNTs), was synthesized through incorporation of Mn _(2) O _(3) onto R-TNTs via the reverse pulse electrodeposition technique. The influence of pulse reverse duty cycles on the morphological, structural and electrochemical performance of the surface was studied by varying the applied duty cycle from 10% to 90% for 5 min total on-time at an alternate potential of ?0.90 V ( E _(on) ) and 0.00 V ( E _(off) ). FESEM analysis revealed the uniform deposition of Mn _(2) O _(3) on the circumference of the nanotubes. The amount of Mn _(2) O _(3) loaded onto the R-TNTs increased as a higher duty cycle was applied. Cyclic voltammetry and galvanostatic charge–discharge tests were employed to elucidate the electrochemical properties of all the synthesized samples in 1 M KCl. The specific capacitance per unit area was greatly enhanced upon the incorporation of Mn _(2) O _(3) onto R-TNTs, but showed a decrease as a high duty cycle was applied. This proved that low amounts of Mn _(2) O _(3) loading enhanced the facilitation of the active ions for charge storage purposes. The optimized sample, Mn _(2) O _(3) /R-TNTs synthesized at 10% duty cycle, exhibited high specific capacitance of 18.32 mF cm ~(?2) at a current density of 0.1 mA cm ~(?2) obtained from constant current charge–discharge measurements. This revealed that the specific capacitance possessed by Mn _(2) O _(3) /R-TNTs synthesized at 10% duty cycle was 6 times higher than bare R-TNTs.
机译:在这项研究中,通过将Mn _(2)O _(3)掺入R-TNTs上,合成了一种锰锰/还原的二氧化钛纳米管(Mn _(2)O _(3)/ R-TNTs)复合材料。通过反向脉冲电沉积技术。脉冲反向占空比对表面的形态,结构和电化学性能的影响是通过将施加的占空比从10%改变为90%,在总电导时间为5min的条件下进行的,交流电压为0.90 V(E _ (on)和0.00 V(E _(off))。 FESEM分析表明,Mn _(2)O _(3)在纳米管的圆周上均匀沉积。随着施加较高的占空比,加载到R-TNT上的Mn _(2)O _(3)的量增加。循环伏安法和恒电流充放电试验被用来阐明所有合成样品在1 M KCl中的电化学性质。在R-TNT上掺入Mn _(2)O _(3)后,每单位面积的比电容大大提高,但随着高占空比的应用,其显示出降低的趋势。这证明了少量的M​​n _(2)O _(3)负载增强了用于电荷存储目的的活性离子的促进作用。以10%占空比合成的优化样品Mn_(2)O_(3)/ R-TNTs在0.1 mA cm〜(?2)的电流密度下表现出18.32 mF cm〜(?2)的高比电容。 )从恒流充放电测量获得。这表明,以10%占空比合成的Mn _(2)O _(3)/ R-TNT具有的比电容比裸R-TNT高6倍。

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