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Measuring Photochemical Kinetics in Submonolayer Films by Transient ATR Spectroscopy on a Multimode Planar Waveguide

机译:通过多模平面波导上的瞬态ATR光谱法测量亚单层膜中的光化学动力学

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Understanding the kinetics of reactions in molecular thin films can aid in the molecular engineering of organic photovoltaics and biosensors. We have coupled two analytical methods, transient absorbance spectroscopy (TAS) and attenuated total reflectance (ATR), in a relatively simple arrangement when compared with previous TAS/ATR instruments to interrogate molecular structure and photochemistry at interfaces. The multimode planar waveguide geometry provides a significant path length enhancement relative to a conventional transmission geometry, making it feasible to perform measurements on low-surface-coverage films. The performance of the instrument was assessed using a thin film composed of purple membrane (PM) fragments containing bacteriorhodopsin deposited onto PDAC, a positively charged polymer. The surface coverage of retinal chromophore in this film is approx0.1 monolayer and its orientation distribution is anisotropic, with a mean tilt angle of 68 deg from surface normal. After photoinduced formation of the transient M state, the chromophore decays to the ground state in 4.4 +- 0.6 ms, equivalent to the decay of suspended PM fragments, which shows that deposition on PDAC does not alter M-state photokinetics. The surface coverage of the M state is calculated to be 2 pmol/cm~(2), which is approx1percent of a close-packed monolayer. This work demonstrates that TAS/ATR can be used to probe structure and photochemical kinetics in molecular films at extremely low surface coverages.
机译:了解分子薄膜中的反应动力学可以有助于有机光伏和生物传感器的分子工程。与以前的TAS / ATR仪器相比,我们以相对简单的方式结合了两种分析方法,即瞬态吸收光谱法(TAS)和衰减全反射率(ATR),以研究界面处的分子结构和光化学。相对于传统的传输几何形状,多模平面波导几何形状提供了显着的路径长度增强,使得在低表面覆盖率的薄膜上执行测量成为可能。使用由紫色膜(PM)片段组成的薄膜评估仪器的性能,该薄膜包含沉积在带正电荷的聚合物PDAC上的细菌视紫红质。该膜中视网膜发色团的表面覆盖度约为0.1单层,其取向分布是各向异性的,与表面法线的平均倾斜角为68度。在光诱导形成瞬态M状态后,发色团在4.4±0.6毫秒内衰减到基态,相当于悬浮的PM碎片的衰减,这表明PDAC上的沉积不会改变M状态的光动力学。计算出M态的表面覆盖率为2 pmol/cm 2(2),约为密堆积单层的1%。这项工作表明,TAS / ATR可用于在极低的表面覆盖率下探测分子膜中的结构和光化学动力学。

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