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首页> 外文期刊>ACS Omega >Metal-Free Organic Optoelectronic Molecule as a Highly Efficient Photocatalyst for the Degradation of Organic Pollutants
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Metal-Free Organic Optoelectronic Molecule as a Highly Efficient Photocatalyst for the Degradation of Organic Pollutants

机译:无金属有机光电分子作为降解有机污染物的高效光催化剂

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With the increasing consumption of natural resources, photocatalysis converting solar energy to chemical energy has attracted extensive attention of researchers owing to the advantages of developing energy-saving and environmentally benign processes. In this work, a facile and simple method was developed to synthesize a metal-free organic optoelectronic molecule (denoted as DPPRD), which is composed of a central diketopyrrolopyrrole moiety and two terminal units of a rhodanine (RD) moiety. This is a first green strategy toward the synthesis of DPPRD. Because of good thermal stability, narrow band gap, and excellent visible light absorption of solar spectrum, DPPRD exhibited to be an efficient and chemically stable photocatalyst for visible light degradation of organic pollutants such as bisphenol A (BPA) and methyl orange (MO) in aqueous solution. The control experiments with different types of radical scavengers implied that the hole (h+) and hydroxyl radicals (?OH) were the key reactive species during the photodegradation processes. The photodegradation pathways of BPA and MO were thus proposed based on the identified intermediates. This improved method for DPPRD synthesis is expected to widen its applications to industrial production, whereas its excellent visible light photocatalytic activity would be utilized potentially in the field of environmental and industrial applications.
机译:随着自然资源消耗的增加,由于发展节能和对环境无害的过程的优势,将太阳能转化为化学能的光催化作用引起了研究人员的广泛关注。在这项工作中,开发了一种简便的方法来合成不含金属的有机光电分子(表示为DPPRD),该分子由中央二酮吡咯并吡咯部分和若丹宁(RD)部分的两个末端单元组成。这是DPPRD合成的第一个绿色策略。由于具有良好的热稳定性,窄的带隙和出色的可见光吸收太阳光谱,DPPRD是一种有效且化学稳定的光催化剂,可降解包括双酚A(BPA)和甲基橙(MO)在内的有机污染物。水溶液。使用不同类型的自由基清除剂进行的控制实验表明,空穴(h +)和羟基自由基(?OH)是光降解过程中的关键反应物种。因此,基于所鉴定的中间体,提出了BPA和MO的光降解途径。 DPPRD合成的改进方法有望扩大其在工业生产中的应用,而其优异的可见光光催化活性将有可能在环境和工业应用领域中得到利用。

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