Recent breakthroughs in non-conjugated polymers for thermally activated delayed fluorescent OLEDs: emitters, hosts, and hole-transport materials

IF 6 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Purusottam Reddy Bommireddy, Naresh Mameda, Chandra Sekhar Musalikunta, Young-Woong Lee, Youngsuk Suh, Mallesham Godumala and Si-Hyun Park
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引用次数: 0

Abstract

Recent advancements in the application of non-conjugated polymers as emitters, host materials, or hole-transport materials have significantly impacted the development of thermally activated delayed fluorescent (TADF) organic light-emitting diodes (OLEDs). Non-conjugated linkers between donors and acceptors (D–σ–A) demonstrate significant importance in OLEDs because they can hinder direct conjugation between the donor and the acceptor, which is advantageous for realizing blue emitters and high-triplet-energy (both hosts and hole-transport) materials. Moreover, TADF small molecules polymerized via a non-conjugated backbone have been proven to be potential polymers for thermally activated delayed fluorescence applications. Non-conjugated polymers used as hosts and hole-transport materials have also been developed, considerably enhancing the device performance of TADF-OLEDs. These polymers represent a highly attractive class of luminescent materials for TADF-OLEDs, offering numerous advantages, such as environmental sustainability, over their conjugated counterparts. In addition to their role in improving device performance, non-conjugated polymers offer tunable energy levels and molecular flexibility, enabling better control over charge transport and exciton dynamics. The versatile structural designs of these polymers make them ideal candidates for multi-functional components in OLEDs, including hybrid materials that combine TADF and other photophysical properties. Consequently, a comprehensive review describing the detailed design strategies along with synthetic routes for these polymers, applied as emitters, hosts, and hole-transport materials in TADF-OLEDs, is essential. Herein, the design tactics, along with the optoelectronic and electroluminescence properties of non-conjugated polymers reported to date, are comprehensively explained. The review concludes by emphasizing the transformative potential of these polymers in the TADF-OLED field and highlights the importance of continued research and development in realizing their full potential. By providing a systematic overview of the current state of research of non-conjugated polymers and identifying key areas for future investigation, this review serves as a valuable resource for researchers and industry professionals working in the organic electronics field.

Abstract Image

热激活延迟荧光oled的非共轭聚合物的最新突破:发射体、宿主和空穴传输材料
近年来,非共轭聚合物作为发射体、宿主材料或空穴传输材料的应用取得了重大进展,对热激活延迟荧光(TADF)有机发光二极管(oled)的发展产生了重大影响。给体和受体之间的非共轭连接体(D -σ-A)在oled中具有重要意义,因为它们可以阻碍给体和受体之间的直接共轭,这有利于实现蓝色发射体和高三重态能量(宿主和空穴输运)材料。此外,经非共轭主链聚合的TADF小分子已被证明是热激活延迟荧光应用的潜在聚合物。非共轭聚合物作为寄主和空穴输运材料也得到了发展,大大提高了tadf - oled的器件性能。这些聚合物代表了一种非常有吸引力的tadf - oled发光材料,提供了许多优势,如环境可持续性,比他们的共轭对偶。除了在提高器件性能方面的作用外,非共轭聚合物还提供可调的能级和分子灵活性,从而更好地控制电荷传输和激子动力学。这些聚合物的多用途结构设计使其成为oled中多功能组件的理想候选者,包括结合TADF和其他光物理性质的混合材料。因此,有必要对这些聚合物的详细设计策略以及合成路线进行全面的回顾,这些聚合物可以作为tif - oled中的发射体、宿主体和空穴输运材料。在此,设计策略,以及迄今为止报道的非共轭聚合物的光电和电致发光特性,进行了全面的解释。综述最后强调了这些聚合物在TADF-OLED领域的变革潜力,并强调了继续研究和开发以实现其全部潜力的重要性。本文对非共轭聚合物的研究现状进行了系统的综述,并指出了未来研究的重点领域,为有机电子领域的研究人员和行业专业人士提供了宝贵的资源。
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来源期刊
Materials Chemistry Frontiers
Materials Chemistry Frontiers Materials Science-Materials Chemistry
CiteScore
12.00
自引率
2.90%
发文量
313
期刊介绍: Materials Chemistry Frontiers focuses on the synthesis and chemistry of exciting new materials, and the development of improved fabrication techniques. Characterisation and fundamental studies that are of broad appeal are also welcome. This is the ideal home for studies of a significant nature that further the development of organic, inorganic, composite and nano-materials.
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