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Studying electronic transport in polyazulene-ionic liquid systems using infrared vibrational spectroscopy

机译:使用红外振动光谱研究聚氮杂离子液体系统中的电子传输

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This paper presents an in situ spectroelectrochemical characterization of polyazulene (PAz) and PAz-C_(60) composite films using Fourier Transform Infrared Attenuated Total Reflection (FTIR-ATR) spectroscopy. In situ FTIR-ATR spectra were recorded simultaneously as the films were charged and discharged electrochemically. The aim was to clarify how the use of ILs and the addition of C_(60) affected the electronic transport and structural changes occurring in PAz during electrochemical charging. We found that electrosynthesis of PAz in an IL lowered the oxidation potential of the film and improved its electroactivity. The FTIR-ATR data also suggest that PAz with a longer effective conjugation length is obtained during electrosynthesis when using ILs. With in situ FTIR-ATR it is possible to quite accurately determine the onset potential for oxidation/reduction. These values are important since they determine the suitability of the polymer for a specific application. Our experiments indicate that two types of charge carriers are formed during electrochemical oxidation of PAz in an IL. Furthermore, their formation is strongly affected by the addition of C_(60) into the film. The type of charge carrier formed affects the electronic and possibly also ionic transport within the film. The inclusion of C_(60) into PAz influenced the optical and structural properties considerably. In situ FTIR-ATR is also an extremely useful method for studying the potential stability of an IL during electrochemical cycling. We showed that cathodic decomposition of N,N-butyl-methyl-pyrrolidinium bis(trifluoromethylsulfonyl)imide ([BMP][Tf2N]) occurs at less negative potentials than those determined electrochemically.
机译:本文介绍了使用傅立叶变换红外衰减全反射(FTIR-ATR)光谱技术对聚祖烯(PAz)和PAz-C_(60)复合薄膜进行原位光谱电化学表征。当膜被电化学充电和放电时,原位FTIR-ATR光谱被同时记录。目的是弄清楚IL的使用和C_(60)的添加如何影响电化学充电过程中PAz中发生的电子传输和结构变化。我们发现,IL中PAz的电合成降低了膜的氧化电位并改善了其电活性。 FTIR-ATR数据还表明,使用IL时,在电合成过程中可获得具有更长有效共轭长度的PAz。使用原位FTIR-ATR,可以非常准确地确定氧化/还原的起始电位。这些值很重要,因为它们决定了聚合物对特定应用的适用性。我们的实验表明,在IL中PAz的电化学氧化过程中会形成两种类型的电荷载流子。此外,它们的形成受到在薄膜中添加C_(60)的强烈影响。所形成的电荷载体的类型影响膜内的电子以及可能的离子传输。 PAz中包含C_(60)会极大地影响光学和结构性能。原位FTIR-ATR也是研究电化学循环过程中IL的潜在稳定性的极为有用的方法。我们表明N,N-丁基-甲基-吡咯烷鎓双(三氟甲基磺酰基)酰亚胺([BMP] [Tf2N])的阴极分解发生的负电势比电化学测得的负电势低。

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