Hybrid Porphyrin-Polymeric Materials and their Amazing Applications: A Review

G. Fagadar-Cosma, M. Bîrdeanu, E. Fagadar-Cosma
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Abstract

Porphyrins are versatile multifunctional biomimetic molecules that are obtained by condensation of pyrrole with the desired aromatic aldehydes. The porphyrin structure can be synthetically modified by either introduction of various peripheral functional groups or metals in its core, allowing creation of various porphyrin derivatives that exhibit amazing optoelectronic properties. This feature makes porphyrins molecules extremely useful especially in hybrid combination with photonic, electronic and magnetic compounds. This review is focused on the more recently obtained porphyrin-polymeric materials and on their various analytical, industrial and medical applications. The study underlines the assembling capacity of these porphyrin-polymer hybrids to form supramolecular tunable architectures by means of the association of more building block units. Porphyrin-polymer nano- and micro-materials play a preeminent role in sensing applications involving chromophores in the formulation of organic solar cells - due to their capacity to generate photo induced charge separation centers - and as new materials with interesting catalytic properties. Besides these technical applications, the photobactericidal activity of these porphyrin–polymer materials was evaluated against Gram positive and Gram negative strains bacteria and they represent an alternative to antibiotics in order to overcome the growing bacterial multiresistance. Polymer functionalization with porphyrin is commonly used to overcome some drawbacks such as self-quenching and photo-toxicity to the skin produced by the bare porphyrins, when used as photosensitizers in the non-invasive Photodynamic therapy of cancer (PDT).
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杂化卟啉-高分子材料及其惊人应用综述
卟啉是由吡咯与芳香族醛缩合而成的多功能仿生分子。卟啉结构可以通过引入各种外围官能团或在其核心引入金属来合成修饰,从而可以创造出各种具有惊人光电性能的卟啉衍生物。这一特性使得卟啉分子非常有用,特别是在与光子、电子和磁性化合物的杂化组合中。本文综述了近年来获得的卟啉聚合物材料及其在分析、工业和医学上的应用。该研究强调了这些卟啉-聚合物杂化物的组装能力,通过更多构建单元的结合形成超分子可调结构。卟啉聚合物纳米和微材料由于其产生光诱导电荷分离中心的能力,在有机太阳能电池中涉及发色团的传感应用中发挥着卓越的作用,并且作为具有有趣催化性能的新材料。除了这些技术应用之外,这些卟啉聚合物材料对革兰氏阳性和革兰氏阴性菌株的光杀菌活性进行了评估,它们代表了抗生素的替代品,以克服日益增长的细菌多重耐药。在非侵入性光动力治疗癌症(PDT)中用作光敏剂时,通常采用卟啉聚合物功能化来克服裸体卟啉产生的自猝灭和光毒性等缺点。
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