Molecular Structure, Reactivity and Spectroscopic Properties of Hallucinogens Psilocybin, Mescaline and their Derivatives – A Computational Study

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Abstract

Medical hallucinogens have been important compounds of research interest in recent years. Computational chemistry methods like Density Functional Theory (DFT) calculations at BP86/Def2-TZVP level are carried out to get more insight into the structural preferences and mechanism of hallucinogens like psilocybin and mescaline derivatives at the molecular level. The molecular structure, reactivity, spectroscopic properties, and mechanism in hallucination confirm that the geometry of the molecules is crucial in their preferred action. The results show the ability of these compounds and their derivatives to act as drugs for different problems. Among the 13 compounds studied, all the compounds, except tin and lead derivatives, show considerable stability in synthesizing them in the laboratories. The geometry and the reactivity descriptors are important tools in deciding the activity of magic mushrooms.
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致幻剂裸盖菇素、美斯卡灵及其衍生物的分子结构、反应性和光谱性质的计算研究
医用致幻剂是近年来研究热点之一。通过BP86/Def2-TZVP水平的密度泛函理论(DFT)计算等计算化学方法,在分子水平上更深入地了解裸盖菇素和美斯卡灵衍生物等致幻剂的结构偏好和作用机制。幻觉中的分子结构、反应性、光谱性质和机制证实,分子的几何形状对它们的首选行为至关重要。结果表明,这些化合物及其衍生物能够作为药物治疗不同的问题。在所研究的13个化合物中,除锡和铅衍生物外,所有化合物在实验室合成时都表现出相当的稳定性。几何形状和反应性描述符是确定魔菇活性的重要工具。
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