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The kernel energy method of quantum mechanical approximation carried to fourth-order terms

机译:量子力学近似的核能量方法运至四阶项

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摘要

It is now possible to calculate the ab initio quantum mechanics of very large biological molecules. Two things lead to this perspective, namely, (i) the advances of parallel supercomputers, and (ii) the discovery of a quantum formalism called quantum crystallography and the use of quantum kernels, a method that is well suited for parallel computation. The kernel energy method (KEM) carried to second order has been used to calculate the quantum mechanical ab initio molecular energy of peptides, protein (insulin and collagen), DNA, and RNA and the interaction of drugs with their biochemical molecular targets. The results were found to have good accuracy. In this article, the accuracy of the KEM is investigated up to an approximation including fourth-order interactions among kernels. Remarkable accuracy is achieved in the calculation of the energy of the ground state of the important biological molecule Leu1-zervamicin, whose crystal structure is known and used in the calculations.
机译:现在可以计算非常大的生物分子的从头算量子力学。导致这种观点的原因有两点,即,(i)并行超级计算机的发展,以及(ii)发现了一种称为量子晶体学的量子形式主义以及使用了非常适合于并行计算的量子内核。二阶核能法(KEM)已用于计算肽,蛋白质(胰岛素和胶原蛋白),DNA和RNA的量子力学从头算分子能量以及药物与其生化分子靶标的相互作用。发现结果具有良好的准确性。在本文中,对KEM的精度进行了研究,直到近似包括内核之间的四阶相互作用。重要生物分子Leu 1 -zervamicin的基态能量的计算具有显着的准确性,该分子的晶体结构是已知的并且已在计算中使用。

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