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Detailed quantum mechanical molecular docking QSAR prediction photovoltaic light harvesting efficiency analysis of benzil and its halogenated analogues

机译:详细的量子力学分子对接QSAR预测苯甲醚及其卤代类似物的光伏光收集效率分析

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摘要

The structural, spectroscopic various physico-chemical and biological characteristics of the organic molecule benzil (BZL) and derivatives, 1,2-bis(4-methylphneyl)-1,2-ethanedione (DMB), 4,4′-difluorobenzil (DFB), 4,4′-dichlorobenzil (DCB) and 4,4′-dibromobenzil (DBB) have been studied by various computational methods. The experimental and scaled simulated Raman and IR spectra were compared and found close agreement. Assignments of important peaks are also presented. Detailed information pertaining to the local and global reactivity and other properties like electrophilic and nucleophilic characteristics were analysed. The hyperactive pressure was measured in terms of polarizability and corresponding biological properties were validated to identity reactive sites. Prediction of Activity Spectral Studies (PASS) predicts the biological activity of the compounds and it is found that the candidate molecules can be used as feruloyl esterase inhibitor, bisphosphoglycerate phosphatase inhibitor and Prolylaminopeptidase inhibitor. The crystals structures of those receptors are taken from the protein data bank and docking studies indicates stable complex with the receptors and candidate molecules. Light harvesting efficiency, followed by photovoltaic modelling shows that DMB is the best compound to be used in the DSSC to get the best output.
机译:有机分子苯甲醚(BZL)及其衍生物,1,2-双(4-甲基苯甲基)-1,2-乙二酮(DMB),4,4'-二氟苯甲酚(DFB)的结构,光谱学各种物理化学和生物学特性),已通过各种计算方法研究了4,4'-二氯苯甲酚(DCB)和4,4'-二溴苯甲酚(DBB)。对实验和按比例缩放的模拟拉曼光谱和红外光谱进行了比较,发现它们之间具有密切的一致性。还显示了重要峰的分配。分析了有关局部和全局反应性以及其他性质(如亲电和亲核特性)的详细信息。根据极化率测量了高活性压力,并验证了相应的生物学特性以鉴定反应部位。活性谱预测研究(PASS)预测了化合物的生物学活性,发现候选分子可用作阿魏酸酯酶抑制剂,双磷酸甘油酸磷酸酶抑制剂和脯氨酰胺肽酶抑制剂。这些受体的晶体结构取自蛋白质数据库,对接研究表明与受体和候选分子具有稳定的复合物。光收集效率以及随后的光伏建模表明,DMB是用于DSSC以获得最佳输出的最佳化合物。

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