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Architectures and Applications of BODIPY-Based Conjugated Polymers

期刊

POLYMERS
卷 13, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/polym13010075

关键词

BODIPY; conjugated polymers; architecture; structure-property relationship; application

资金

  1. National Natural Science Foundation of China [21971049, 51903070]
  2. National Training Programs of Innovation and Entrepreneurship for Undergraduates [202010346031]

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Conjugated polymers with structures such as benzene, heterocycle, double bond, or triple bond have semiconductor-like properties that can be adjusted through chemical doping. BODIPY-based conjugated polymers offer intriguing optical properties and multiple functionalities, making them versatile for applications in optoelectronic materials and bioimaging.
Conjugated polymers generally contain conjugated backbone structures with benzene, heterocycle, double bond, or triple bond, so that they have properties similar to semiconductors and even conductors. Their energy band gap is very small and can be adjusted via chemical doping, allowing for excellent photoelectric properties. To obtain prominent conjugated materials, numerous well-designed polymer backbones have been reported, such as polyphenylenevinylene, polyphenylene acetylene, polycarbazole, and polyfluorene. 4,4 '-Difluoro-4-bora-3a,4a-diaza-s-indacene (BODIPY)-based conjugated polymers have also been prepared owing to its conjugated structure and intriguing optical properties, including high absorption coefficients, excellent thermal/photochemical stability, and high quantum yield. Most importantly, the properties of BODIPYs can be easily tuned by chemical modification on the dipyrromethene core, which endows the conjugated polymers with multiple functionalities. In this paper, BODIPY-based conjugated polymers are reviewed, focusing on their structures and applications. The forms of BODIPY-based conjugated polymers include linear, coiled, and porous structures, and their structure-property relationship is explored. Also, typical applications in optoelectronic materials, sensors, gas/energy storage, biotherapy, and bioimaging are presented and discussed in detail. Finally, the review provides an insight into the challenges in the development of BODIPY-based conjugated polymers.

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