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Role of Protonation State and Solvation on the pH Dependent Optical Properties of Bromocresol Green

机译:质子化状态和溶剂化对溴甲酚绿pH依赖的光学性质的作用

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pH sensors play a key role in many industrial and diagnostic applications. Mostly their usage is based on experience, and in many cases the working mechanisms of these sensors are not known in detail, thereby hindering a systematic improvement of such sensors for specific applications. In this report, we present results from combined quantum chemical and molecular mechanics calculations of molecular structures and optical absorption properties of bromocresol green (BRG) in aqueous solution with varying pH value. In the acidic pH range, this chromophore has an intense band with absorption maximum at 444 nm and in the basic pH regime the absorption spectra show a redshift toward 613 nm. In order to identify the molecular structures responsible for this pH dependent optical behavior the closed and open forms of BRG are studied using static approaches considering in each case the three possible protonated states namely, neutral, anionic, and dianionic. For the most significant forms, i.e. the open forms of BRG, extensive modeling based on the integrated approach has been carried out, where the structure and dynamics were studied using hybrid QM/MM molecular dynamics, while the excitation energy calculations were carried out using time dependent density functional theory wherein the surrounding solvent was described as polarizable continuum, semicontinuum, or via a molecular mechanics force-field. The anionic and dianionic forms of BRG have been recognized as molecular forms responsible for its acidic and basic pH behavior, respectively. In contrast to the case of solvatochromic probes, the different protonation states determine the optical behavior in different pH values for pH probes. Hence, the level of solvent description appears to be of minor importance. Independent of the level of theory used to describe the solvent, all models reproduce the spectral features of BRG in different pH and also the pH induced redshift in good agreement with experiment.
机译:pH传感器在许多工业和诊断应用中起着关键作用。通常,它们的使用是基于经验的,并且在许多情况下,这些传感器的工作机制尚不清楚,因此妨碍了针对特定应用的此类传感器的系统改进。在本报告中,我们提供了结合pH值变化的水溶液中溴甲酚绿(BRG)的分子结构和光吸收特性的组合量子化学和分子力学计算结果。在酸性pH范围内,该生色团具有一个强带,在444 nm处具有最大吸收,在碱性pH范围内,吸收光谱显示向613 nm的红移。为了鉴定引起这种pH依赖性光学行为的分子结构,使用静态方法研究了BRG的封闭和开放形式,分别考虑了三种可能的质子化状态,即中性,阴离子和双阴离子。对于最重要的形式,即BRG的开放形式,已经基于集成方法进行了广泛的建模,其中使用混合QM / MM分子动力学研究了结构和动力学,而使用时间进行了激发能计算。依赖密度泛函理论,其中周围的溶剂被描述为可极化的连续体,半连续体或通过分子力学力场。 BRG的阴离子和双阴离子形式分别被认为是对其酸性和碱性pH行为负责的分子形式。与溶剂致变色探针的情况相反,不同质子化状态决定了pH探针在不同pH值下的光学行为。因此,溶剂描述的水平似乎不太重要。与用于描述溶剂的理论水平无关,所有模型均重现了不同pH下BRG的光谱特征,并且pH引起的红移与实验非常吻合。

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