Xu Huajun, Elder Delwin L, Johnson Lewis E, de Coene Yovan, Hammond Scott R, Vander Ghinst Wouter, Clays Koen, Dalton Larry R, Robinson Bruce H
Department of Chemistry, University of Washington, Box 351700, Seattle, WA, 98195, USA.
Nonlinear Materials Corporation, 2212 Queen Anne Ave North, Box #324, Seattle, WA, 98109, USA.
Adv Mater. 2021 Nov;33(45):e2104174. doi: 10.1002/adma.202104174. Epub 2021 Sep 20.
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 (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 (r ) in excess of 1000 pm V . 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 r and poling efficiency (r /E , E is poling field) with increasing chromophore concentration. 25 wt% BAY1/polymer composite shows a higher poling efficiency (3.9 ± 0.1 nm V ) than state-of-the-art neat chromophores. Using a high-ε charge blocking layer with BAY1, a record-high r (1100 ± 100 pm V ) and poling efficiency (17.8 ± 0.8 nm V ) at 1310 nm are achieved. This is the first reported OEO material with electro-optic response larger than thin-film barium titanate.
高性能有机电光(OEO)材料可实现硅基有机混合和等离子体有机混合光子器件中的超高带宽、小尺寸和极低驱动电压。然而,在与器件相关的条件下,实用的OEO材料的性能通常限于约300皮米/伏(铌酸锂电光响应的10倍)。通过理论指导设计,展示了一系列基于强双(4-二烷基氨基苯基)苯基氨基供电子基团的新型OEO发色团,其电光系数(r)超过1000皮米/伏。进行了密度泛函理论建模和超瑞利散射测量,证实了由于更强的供体导致超极化率有大幅提高。对该系列中的典型发色团BAY1在纯态以及在聚合物主体中的各种浓度下的电光性能进行了评估,结果表明r和极化效率(r/E,E为极化场)随发色团浓度增加几乎呈线性增加。25重量%的BAY1/聚合物复合材料显示出比最先进的纯发色团更高的极化效率(3.9±0.1纳米/伏)。使用带有BAY1的高介电常数电荷阻挡层,在1310纳米处实现了创纪录的高r(1100±100皮米/伏)和极化效率(17.8±0.8纳米/伏)。这是首次报道的电光响应大于薄膜钛酸钡的OEO材料。