...
首页> 外文期刊>The Journal of Chemical Physics >Geometry and quadratic nonlinearity of charge transfer complexes in solution using depolarized hyper-Rayleigh scattering
【24h】

Geometry and quadratic nonlinearity of charge transfer complexes in solution using depolarized hyper-Rayleigh scattering

机译:使用去极化超瑞利散射的溶液中电荷转移配合物的几何和二次非线性

获取原文
获取原文并翻译 | 示例
           

摘要

We report large quadratic nonlinearity in a series of 1:1 molecular complexes between methyl substituted benzene donors and quinone acceptors in solution. The first hyperpolarizability, HRS, which is very small for the individual components, becomes large by intermolecular charge transfer (CT) interaction between the donor and the acceptor in the complex. In addition, we have investigated the geometry of these CT complexes in solution using polarization resolved hyper-Rayleigh scattering (HRS). Using linearly (electric field vector along X direction) and circularly polarized incident light, respectively, we have measured two macroscopic depolarization ratios D=I2,X,X/I2,Z,X and D′=I2,X,C/I2,Z,C in the laboratory fixed XYZ frame by detecting the second harmonic scattered light in a polarization resolved fashion. The experimentally obtained first hyperpolarizability, HRS, and the value of macroscopic depolarization ratios, D and D′, are then matched with the theoretically deduced values from single and double configuration interaction calculations performed using the Zerners intermediate neglect of differential overlap self-consistent reaction field technique. In solution, since several geometries are possible, we have carried out calculations by rotating the acceptor moiety around three different axes keeping the donor molecule fixed at an optimized geometry. These rotations give us the theoretical HRS, D and D′ values as a function of the geometry of the complex. The calculated HRS, D, and D ′ values that closely match with the experimental values, give the dominant equilibrium geometry in solution. All the CT complexes between methyl benzenes and chloranil or 1,2-dichloro-4,5-dicyano-p-benzoquinone investigated here are found to have a slipped parallel stacking of the donors and the acceptors. Furthermore, the geometries are staggered and in some pairs, a twist angle as high as 30 is observed. Thus, we have demonstrated in this paper that the polarization resolved HRS technique along with theoretical calculations can unravel the geometry of CT complexes in solution.
机译:我们报告了在溶液中甲基取代的苯供体和醌受体之间的一系列1:1分子络合物中的大二次非线性。对于复合物中的单个成分而言,第一个超极化能力HRS很小,它通过供体和受体之间的分子间电荷转移(CT)相互作用而变大。此外,我们使用偏振分辨超瑞利散射(HRS)研究了溶液中这些CT络合物的几何形状。我们分别使用线性(沿X方向的电场矢量)和圆偏振入射光,测量了两个宏观去偏振比D = I2,X,X / I2,Z,X和D'= I2,X,C / I2, Z,C在实验室固定的XYZ框架中,通过以偏振分辨方式检测二次谐波散射光。然后将实验获得的第一超极化率HRS以及宏观去极化比D和D'的值与使用差分重叠自洽反应场的Zerners中间忽略进行的单组态和双组态相互作用计算的理论推导值匹配技术。在解决方案中,由于可能存在几种几何形状,因此我们通过围绕三个不同的轴旋转受体部分来进行计算,以使供体分子固定在优化的几何形状上。这些旋转为我们提供了理论HRS,D和D'值,取决于配合物的几何形状。计算得出的HRS,D和D'值与实验值非常匹配,从而得出溶液中的主要平衡几何形状。此处研究的所有甲基苯与氯苯胺或1,2-二氯-4,5-二氰基对苯醌之间的所有CT络合物均具有供体和受体的平行堆积。此外,几何形状是交错的,并且成对地观察到高达30度的扭曲角。因此,我们在本文中证明了偏振分辨HRS技术以及理论计算可以解开溶液中CT络合物的几何形状。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号