Direct C–H arylation: a “Greener” approach towards facile synthesis of organic semiconducting molecules and polymers
文献情報
Hassan Bohra, Mingfeng Wang
Organic π-conjugated small molecules and polymers, owing to their light weight, solution processability, mechanical flexibility, and large synthetic variety of finely tunable structures and properties, are promising semiconducting materials for a new generation of optoelectronic devices such as light-emitting diodes (LEDs), field-effect transistors (FETs), photovoltaic devices and sensors. A vast library of π-conjugated systems have been synthesized through conventional tools of coupling (e.g. Suzuki coupling, Stille coupling) and have been used in the fabrication of organic optoelectronic devices. In recent years an emerging synthetic technique called direct C–H arylation has been extensively studied as a facile, atom-efficient and environmentally benign pathway for the synthesis of conjugated polymers and small molecules. C–C bond formation between two heteroaryls can be carried out via the activation of C–H bonds in a transition-metal catalytic cycle, thereby overcoming additional pre-functionalization steps involving toxic reagents. Direct arylation has been applied to a broad range of monomers and its reaction conditions have been optimized to produce defect-free polymers as well as small molecules that exhibit performances comparable with those made from conventional reactions. In this review, we summarize the recent progress in the synthesis of conjugated small molecules, linear polymers and porous polymers by direct C–H arylation. In particular, small molecules and linear polymers based on benzothiadiazole (BT), diketopyrrolopyrrole (DPP), napththalenediimide (NDI), isoindigo (IG), thienoisoindigo (TIIG) and thienothiadiazole (TTD) are discussed in detail. Device performances of some representative polymers synthesized via direct arylation polymerization (DAP) in FETs and bulk heterojunction solar cells are summarized. We finally discuss the present challenges and perspectives of DAP towards future “greener” and more industrially scalable synthesis of π-conjugated semiconducting polymers for a variety of applications.
関連文献
When the strategies for cellular selectivity fail. Challenges and surprises in the design and application of fluorescent benzothiadiazole derivatives for mitochondrial staining
Jose R. Correa, Karen L. R. Paiva, Michele Baril, Daniel F. S. Machado, Jackson D. Scholten, Paulo E. N. de Souza, Fabiane H. Veiga-Souza, John Spencer
DOI: 10.1039/C9QO00428A
First synthesis of orthogonally 1,7-diprotected cyclens
Luciano Lattuada, Giovanni B. Giovenzana
DOI: 10.1039/C9QO00184K
Palladium-catalyzed arene C–H activation/ketone C–H functionalization reaction: route to spirodihydroindenones
Bo-Sheng Zhang, Hui-Liang Hua, Lu-Yao Gao, Ce Liu, Yi-Feng Qiu, Ping-Xin Zhou, Zhao-Zhao Zhou, Jia-Hui Zhao, Yong-Min Liang
DOI: 10.1039/C7QO00164A
Radical addition of ketones and cyanide to olefins via acid catalyzed formation of intermediate alkenyl peroxides
Wen Shao, Marcel Lux, Martin Breugst, Martin Klussmann
DOI: 10.1039/C9QO00447E
Highly soluble C2v-symmetrical fullerene derivatives: efficient synthesis, characterization, and electrochemical study
Kouya Uchiyama, Hiroshi Ueno, Hiroshi Okada, Hiroshi Moriyama
DOI: 10.1039/C9QO00056A
2H NMR reveals liquid state-like dynamics of arene guests inside hexameric pyrogallol[4]arene capsules in the solid state‡
Irazema J. Islas, Dillan Stengel, Cesar A. Garcia, J. Bennett Addison, George N. Samaan, Gregory P. Holland
DOI: 10.1039/C9QO00232D
Pd-Catalyzed coupling reaction of cyclobutanols with propargylic carbonates
Penglin Wu, Minqiang Jia
DOI: 10.1039/C9QO00192A
Endo/exo binding of alkyl and aryl diammonium ions by cyclopentanocucurbit[6]uril
Yun-Xia Qu, Rui-Lian Lin, Yun-Qian Zhang, Kai-Zhi Zhou, Qing-Di Zhou, Qian-Jiang Zhu, Zhu Tao, Pei-Hua Ma, Jing-Xin Liu, Gang Wei
DOI: 10.1039/C7QO00376E
Correction: The absolute configurations of hyperilongenols A–C: rare 12,13-seco-spirocyclic polycyclic polyprenylated acylphloroglucinols with enolizable β,β′-tricarbonyl systems from Hypericum longistylum Oliv.
Na Zhang, Zhengyi Shi, Yi Guo, Shuangshuang Xie, Yuben Qiao, Xiao-Nian Li, Yongbo Xue, Zengwei Luo, Hucheng Zhu, Chunmei Chen, Yonghui Zhang
DOI: 10.1039/C9QO90045D
こちらもおすすめ
6- bromo-1-cyclopropyl-1H-benzimidazoleの市場動向や研究トレンドはどうですか?
6- bromo-1-cyclopropyl-1H-benzimidazoleは、抗炎症、抗ウイルス作用を持つことが報告されており、新薬開発の研究対象として注目...
環氧プロpanol-d5を取り扱う際の実験室安全事項は何ですか?
取り扱う際には、防護眼鏡と手袋を使用し、ドラフトチャンバー内で操作することを推奨します。漏洩時には適切な手順で処理し、安全データシートを常に参照してください。
2,2’-ジメチル-3,3’-ビピリジンはどのように合成されますか?
2,2’-ジメチル-3,3’-ビピリジンは、ピリジンと2-メチルアクリルアミドを有機合成反応で合成します。この反応では、ピリジンと2-メチルアクリルアミドを含有...
6-甲基ピリジン-2-ボリック酸の主な用途は何ですか?
6-甲基ピリジン-2-ボリック酸は、合成化学、医薬品合成、以及研究用途などに広く使用され、特に組換えDNA技術や分子生物学の研究において重要な役割を果たします。
(R)-3-(1-甲基-2-氧環己基)プロpano酸メチルは安全ですか?
(R)-3-(1-甲基-2-氧環己基)プロpano酸メチルは一定の安全性がありますが、直接的な皮膚接触や吸入は避けるべきです。使用する際は適切な個々の安全データ...
ketorolacはどのように保存すればよいですか?
ketorolacは、密封して遮光容器に保管し、直射日光や高温を避けて保存してください。温度は常温で保存し、湿度をなるべく低く保つことが推奨されます。
L-2,3-二氨基丙酸二盐酸盐を取り扱う際の実験室安全事項は何ですか?
L-2,3-二氨基丙酸二盐酸盐は腐食性が強く、皮膚や粘膜に刺激を与える可能性があります。取り扱う際は、防塵マスク、ゴーグル、手袋を使用し、適切な排気設備を使用し...
2-(4-溴ピリジン-2-基)乙腈の物理化学的性質は何ですか?
2-(4-溴ピリジン-2-基)乙腈のCAS番号は312325-73-8です。主に結晶形態で存在し、分子量は159.01 g/molです。この化合物は水に溶けやす...
3-フローロ-[1,1-ベンジレン]-3,4-ジカルボン酸を取り扱う際の実験室安全事項は何ですか?
この化合物は毒性は低いですが、直接的な接触や吸入に注意が必要です。PPE(個人防護具)を着用し、ドラフトチャンバーを使用して操作することを推奨します。また、漏洩...
3-(1-氧代-1,3-二氢-2H-2-异吲哚)丙酸の主な用途は何ですか?
3-(1-氧代-1,3-二氢-2H-2-异吲哚)丙酸は、薬理学研究や医薬品製造において広く用いられる化合物です。また、工業的な用途でも一部の化学反応の触媒や助剤...
掲載誌
Journal of Materials Chemistry A

Journal of Materials Chemistry A, B & C cover high quality studies across all fields of materials chemistry. The journals focus on those theoretical or experimental studies that report new understanding, applications, properties and synthesis of materials. The journals have a strong history of publishing quality reports of interest to interdisciplinary communities and providing an efficient and rigorous service through peer review and publication. The journals are led by an international team of Editors-in-Chief and Associate Editors who are all active researchers in their fields. Journal of Materials Chemistry A, B & C are separated by the intended application of the material studied. Broadly, applications in energy and sustainability are of interest to Journal of Materials Chemistry A, applications in biology and medicine are of interest to Journal of Materials Chemistry B, and applications in optical, magnetic and electronic devices are of interest to Journal of Materials Chemistry C. More than one Journal of Materials Chemistry journal may be suitable for certain fields and researchers are encouraged to submit their paper to the journal that they feel best fits for their particular article. Example topic areas within the scope of Journal of Materials Chemistry A are listed below. This list is neither exhaustive nor exclusive. Artificial photosynthesis Batteries Carbon dioxide conversion Catalysis Fuel cells Gas capture/separation/storage Green/sustainable materials Hydrogen generation Hydrogen storage Photocatalysis Photovoltaics Self-cleaning materials Self-healing materials Sensors Supercapacitors Thermoelectrics Water splitting Water treatment













![[4-(Isobutyrylamino)phenyl]boronic acid structure [4-(Isobutyrylamino)phenyl]boronic acid structure](https://static.chemtradehub.com/structs/874/874219-50-8-6ab5.webp)
![(2S)-2-{[(9H-Fluoren-9-ylmethoxy)carbonyl]amino}-4-(methylselanyl)butanoic acid structure (2S)-2-{[(9H-Fluoren-9-ylmethoxy)carbonyl]amino}-4-(methylselanyl)butanoic acid structure](https://static.chemtradehub.com/structs/121/1217852-49-7-f252.webp)