Department of Materials Science, and ‡Faculty of Engineering, Shizuoka University , 3-5-1 Johoku, Naka-ku, Hamamatsu, Shizuoka 432-8561, Japan.
J Phys Chem B. 2013 Nov 27;117(47):14857-64. doi: 10.1021/jp407892b. Epub 2013 Nov 19.
Guest-host nonlinear optical polymers have attracted considerable interest due to their applications in fast electro-optical modulators and wavelength converters. In general, the electrical poling procedures, for which high DC external fields are applied, are necessary for aligning guest chromophores in polar order and activating the second-order nonlinearity. We present the nonelectrical poling behaviors for guest-host polymers: DR1 (4-[ethyl (2-hydroxyethyl) amino]-4'-nitroazobenzene) is the guest, and PMMA (poly (methyl methacrylate)) is the host. Second-order nonlinear optical susceptibility was induced in the conventional guest-host polymers after annealing at temperatures above the glass transition points of the host polymer even without applying the external fields. This phenomenon did not occur in the side-chain polymers, where the guests were directly bonded to the host chains. The guest polar alignments were most likely generated from the guest hydroxyl groups chemisorbing on the substrates. The polar alignments of the guest formed not only near the surface of the substrate, but also inside the host polymers. The optimized conditions for the SHG conversion were examined in the context of the polymer film thickness and guest concentration. The nonelectrical poling techniques described in this study are useful for enhancing the surface nonlinearity in the several materials, and they will be useful for further developments in nanophotonics and plasmonics.
由于在快速电光调制器和波长转换器中的应用,主体-客体非线性光学聚合物引起了相当大的关注。通常,需要施加高直流外部电场的电极化过程来使客体发色团按极性顺序排列并激活二阶非线性。我们提出了主体-客体聚合物的无电场极化行为:DR1(4-[乙基(2-羟乙基)氨基]-4'-硝基偶氮苯)是客体,PMMA(聚甲基丙烯酸甲酯)是主体。即使没有施加外部电场,退火温度高于主体聚合物的玻璃化转变点后,常规主体-客体聚合物中也会诱导出二阶非线性光学灵敏度。这一现象并未在侧链聚合物中发生,因为客体直接键合到主链上。客体的极化排列很可能是由客体羟基化学吸附在衬底上产生的。客体的极化排列不仅在衬底表面附近形成,而且在主体聚合物内部也形成。在聚合物薄膜厚度和客体浓度方面,研究了 SHG 转换的优化条件。本研究中描述的无电场极化技术对于增强几种材料的表面非线性是有用的,它们将有助于在纳米光子学和等离子体学中的进一步发展。