极化
材料科学
发色团
超极化率
二次谐波产生
光电子学
钛酸钡
密度泛函理论
分析化学(期刊)
光学
铁电性
光化学
有机化学
计算化学
激光器
化学
极化率
电介质
物理
分子
作者
Huajun Xu,Delwin L. Elder,Lewis E. Johnson,Yovan de Coene,Scott R. Hammond,Wouter Vander Ghinst,Koen Clays,Larry R. Dalton,Bruce H. Robinson
标识
DOI:10.1002/adma.202104174
摘要
Abstract High performance organic electro‐optic (OEO) materials enable ultrahigh bandwidth, small footprint, and extremely low drive voltage in silicon‐organic hybrid and plasmonic‐organic hybrid photonic devices. However, practical OEO materials under device‐relevant conditions are generally limited to performance of ≈300 pm V−1 (10× the EO response of lithium niobate). By means of theory‐guided design, a new series of OEO chromophores is demonstrated, based on strong bis(4‐dialkylaminophenyl)phenylamino electron donating groups, capable of EO coefficients (r33) in excess of 1000 pm V−1. Density functional theory modeling and hyper‐Rayleigh scattering measurements are performed and confirm the large improvement in hyperpolarizability due to the stronger donor. The EO performance of the exemplar chromophore in the series, BAY1, is evaluated neat and at various concentrations in polymer host and shows a nearly linear increase in r33 and poling efficiency (r33/Ep, Ep is poling field) with increasing chromophore concentration. 25 wt% BAY1/polymer composite shows a higher poling efficiency (3.9 ± 0.1 nm2 V−2) than state‐of‐the‐art neat chromophores. Using a high‐ε charge blocking layer with BAY1, a record‐high r33 (1100 ± 100 pm V−1) and poling efficiency (17.8 ± 0.8 nm2 V−2) at 1310 nm are achieved. This is the first reported OEO material with electro‐optic response larger than thin‐film barium titanate.
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