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Experimental Data on design theoretical and correlation of the electronic and optical properties of diethynylphenylthiophene as photovoltaic materials

机译:二乙炔基苯基噻吩作为光电材料的电子和光学性质的设计理论和相关性的实验数据

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摘要

The article show the date associated with the work previously reported “Design, theoretical and correlation of the electronic and optical properties of diethynylphenylthiophene as photovoltaic materials”, . The authors reported graphics and tables building from of p-PDT, m-PDT, o-PDT, p-ZnPDT, m -ZnPDT and o-ZnPDT calculations as raw date, with the aim of to show electronic and optical properties, which can be analyzed by the reader. In this context, there exists an important number of renewable energies that are substituting the oil and the charcoal be used in the energetic supply. One of these alternatives is the use of solar cells, which can be use in diverse areas like telecommunications, remote systems of monitoring, lighting systems, water treatment systems, and products of consumption. The employment of the organic photovoltaic technology and photosensitized organic materials are based on the use of molecular organic materials for coverings for ceiling and windows of a house that allow the storage of energy. The OPVs and DSSC present π conjugated systems, giving them a high electronic relocated density, which allows catching the radiations with an energy range of wavelengths between 400 and 800 nm. The systems are derived of diethynylphenylthiophene (LMWOM) coupled to phenyldiamine (PD) as spacer, forming hyper conjugated macrocycles ( -PDT, -PDT, -PDT, -ZnPDT, -ZnPDT and -ZnPDT). On the other hand, it is reported process electronic relationship with material sensitized and the bibliographic support of the publication topic.
机译:文章显示了与先前报道的“二乙炔基苯基噻吩作为光伏材料的电子和光学性质的设计,理论和相关性”相关的日期。作者报告了从p-PDT,m-PDT,o-PDT,p-ZnPDT,m-ZnPDT和o-ZnPDT计算得出的图形和表格作为原始数据,目的是显示电子和光学特性,可以被读者分析。在这种情况下,存在大量可再生能源,它们取代了石油和木炭用于能源供应。这些替代方法之一是使用太阳能电池,该太阳能电池可用于电信,监控远程系统,照明系统,水处理系统和消费产品等不同领域。有机光伏技术和光敏有机材料的使用是基于分子有机材料在房屋天花板和窗户的覆盖物中的使用,从而可以存储能量。 OPV和DSSC提供了π共轭系统,使它们具有较高的电子重定位密度,从而可以捕获波长范围在400至800 nm的能量范围内的辐射。该系统衍生自二乙炔基苯基噻吩(LMWOM),其与苯基二胺(PD)偶联作为间隔基,形成超共轭大环(-PDT,-PDT,-PDT,-ZnPDT,-ZnPDT和-ZnPDT)。另一方面,据报道,与致敏材料和出版物主题的书目支持有关的过程电子关系。

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