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Coherent control protocol for separating energy-transfer pathways in photosynthetic complexes by chiral multidimensional signals

机译:通过手性多维信号分离光合复合物中能量转移途径的相干控制协议

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摘要

Adaptive optimizations performed using a genetic algorithm are employed to construct optimal laser pulse configurations that separate spectroscopic features associated with the two main energy-transfer pathways in the third-order nonlinear optical response simulated for the Fenna-Matthews-Olson (FMO) photosynthetic complex from the green sulfur bacterium Chlorobium tepidum. Superpositions of chirality-induced tensor components in both collinear and noncollinear pulse configurations are analyzed. The optimal signals obtained by manipulating the ratios of various 2D spectral peaks reveal detailed information about the excitation dynamics.
机译:使用遗传算法执行的自适应优化可用于构造最佳激光脉冲配置,该配置将与Fenna-Matthews-Olson(FMO)光合复合物模拟的三阶非线性光学响应中与两个主要能量传递路径相关的光谱特征分开绿色的硫细菌绿皮草。分析了共线和非共线脉冲配置中手性诱导的张量分量的叠加。通过操纵各种2D谱峰的比率获得的最佳信号揭示了有关激励动力学的详细信息。

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