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Photo-ignition process of multiwall carbon nanotubes and ferrocene by continuous wave Xe lamp illumination

机译:连续波氙气灯照明下多壁碳纳米管和二茂铁的光点火过程

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This work aims to investigate and characterize the photo-ignition phenomenon of MWCNT/ferrocene mixtures by using a continuous wave (CW) xenon (Xe) light source, in order to find the power ignition threshold by employing a different type of light source as was used in previous research (i.e., pulsed Xe lamp). The experimental photo-ignition tests were carried out by varying the weight ratio of the used mixtures, luminous power, and wavelength range of the incident Xe light by using selective optical filters. For a better explanation of the photo-induced ignition process, the absorption spectra of MWCNT/ferrocene mixtures and ferrocene only were obtained. The experimental results show that the luminous power (related to the entire spectrum of the Xe lamp) needed to trigger the ignition of MWCNT/ferrocene mixtures decreases with increasing metal nanoparticles content according to previously published results when using a different type of light source (i.e., pulsed vs CW Xe light source). Furthermore, less light power is required to trigger photo-ignition when moving towards the ultraviolet (UV) region. This is in agreement with the measured absorption spectra, which present higher absorption values in the UV–vis region for both MWCNT/ferrocene mixtures and ferrocene only diluted in toluene. Finally, a chemo-physical interpretation of the ignition phenomenon is proposed whereby ferrocene photo-excitation, due to photon absorption, produces ferrocene itself in its excited form and is thus capable of promoting electron transfer to MWCNTs. In this way, the resulting radical species, FeCp2+∙ and MWCNT−, easily react with oxygen giving rise to the ignition of MWCNT/ferrocene samples.
机译:这项工作旨在通过使用连续波(CW)氙(Xe)光源来研究和表征MWCNT /二茂铁混合物的光着火现象,以便通过使用与以前不同的光源来找到功率着火阈值。用于先前的研究中(即脉冲Xe灯)。通过使用选择性滤光片改变所用混合物的重量比,发光功率和入射Xe光的波长范围来进行实验性光点火测试。为了更好地解释光致点火过程,仅获得了MWCNT /二茂铁混合物和二茂铁的吸收光谱。实验结果表明,根据先前公布的结果,使用不同类型的光源时,触发MWCNT /二茂铁混合物点火所需的发光功率(与Xe灯的整个光谱有关)随金属纳米颗粒含量的增加而降低。 ,脉冲与CW Xe光源)。此外,当移向紫外线(UV)区域时,需要较少的光功率来触发光点火。这与测得的吸收光谱一致,后者对MWCNT /二茂铁混合物和仅用甲苯稀释的二茂铁在UV-vis区域具有较高的吸收值。最后,提出了对点火现象的化学物理解释,据此,由于光子吸收,二茂铁进行光激发产生了本身呈激发形式的二茂铁,因此能够促进电子转移至MWCNT。这样,生成的自由基物种FeCp2 +∙和MWCNT-容易与氧气发生反应,从而引起MWCNT /二茂铁样品的着火。

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