Yu Craig P, Chowdhury Rituparno, Fu Yao, Ghosh Pratyush, Zeng Weixuan, Mustafa Tarig B E, Grüne Jeannine, Walker Lucy E, Congrave Daniel G, Chua Xian Wei, Murto Petri, Rao Akshay, Sirringhaus Henning, Plasser Felix, Grey Clare P, Friend Richard H, Bronstein Hugo
Yusuf Hamied Department of Chemistry, University of Cambridge, Cambridge CB2 1EW, UK.
Department of Physics, Cavendish Laboratory, Cambridge University, Cambridge CB3 0HF, UK.
Sci Adv. 2024 Jul 26;10(30):eado3476. doi: 10.1126/sciadv.ado3476. Epub 2024 Jul 24.
Open-shell systems with extensive π-conjugation have fascinating properties due to their narrow bandgaps and spin interactions. In this work, we report neutral open-shell di- and polyradical conjugated materials exhibiting intriguing optical and magnetic properties. Our key design advance is the planarized geometry allowing for greater interaction between adjacent spins. This results in absorption and emission in the near infrared at 803 and 1050 nanometers, respectively, and we demonstrate a unique electronic structure where a bright zwitterionic excited state is the lowest-accessible electronic transition. Electron paramagnetic resonance spectroscopy and superconducting quantum interference device measurements reveal that our materials are open-shell singlets with different degrees of spin interactions, dynamics, and antiferromagnetic properties, which likely contributed to the formation of their emissive zwitterionic singlet excited state and near-infrared emission. In addition, our materials show reversible and stable electrochromic switching with more than 500 cycles, indicating their potential for optoelectronic and electrochemical energy storage applications.
具有广泛π共轭的开壳层体系由于其窄带隙和自旋相互作用而具有迷人的性质。在这项工作中,我们报道了展现出有趣光学和磁学性质的中性开壳层双自由基和多自由基共轭材料。我们关键的设计进展是平面化几何结构,它允许相邻自旋之间有更大的相互作用。这分别导致在803和1050纳米处的近红外吸收和发射,并且我们展示了一种独特的电子结构,其中明亮的两性离子激发态是最低可达的电子跃迁。电子顺磁共振光谱和超导量子干涉装置测量表明,我们的材料是具有不同程度自旋相互作用、动力学和反铁磁性质的开壳层单线态,这可能促成了它们发射性两性离子单线态激发态的形成和近红外发射。此外,我们的材料显示出超过500次循环的可逆且稳定的电致变色切换,表明它们在光电和电化学能量存储应用方面的潜力。