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Microscopic mechanism of optical nonlinearity in conjugated polymers and other quasi-one-dimensional systems

机译:共轭聚合物和其他准一维系统中光学非线性的微观机理

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Abstract: We present a microscopic mechanism of optical nonlinearity in quasi-one-dimensional semiconductors within the context of rigid band Peierls-extended Hubbard models. A detailed configuration space analysis is done to predict the dominant excitation paths. We show that only two channels contribute to the bulk of the optical nonlinearity, even though an infinite number of channels are possible in principle. Most importantly, these channels involve a virtual two photon excited state whose relative energy should be nearly parameter independent in the infinite chain limit. This would imply that the mechanism of optical nonlinearity, as well as the frequency dependence of the third order optical susceptibility, are also largely parameter independent. This universality is a consequence of the one dimensionality alone and remains valid for arbitrary convex Coulomb interactions. These conjectures are confirmed by exact numerical calculations on finite chains that do very careful analysis of finite size effects. !
机译:摘要:在刚性带Peierls扩展的Hubbard模型的背景下,我们提出了准一维半导体光学非线性的微观机制。进行了详细的配置空间分析,以预测主要的激励路径。我们显示,即使原则上可能有无限数量的通道,也只有两个通道会造成大部分光学非线性。最重要的是,这些通道涉及虚拟的两个光子激发态,其相对能量应在无限链极限内几乎与参数无关。这意味着光学非线性机制以及三阶光学磁化率的频率依赖性在很大程度上也与参数无关。这种普遍性是仅一维的结果,并且对于任意凸库仑相互作用仍然有效。这些猜想通过对有限链的精确数值计算得到证实,该有限链对有限尺寸效应进行了非常仔细的分析。 !

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