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ANALYZING THE ELECTROMAGNETIC PARAMETERS OF THE AMINO ACIDS AND BASES BASED ON DFT

机译:基于DFT的氨基酸和氨基酸的电磁参数分析。

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We take the H_2O for example to validate the feasibility of the method. The dipole moment and polarization volume are respectively 1.78 Debye and 1.5 X 10~(-30)m~3,compared with the corresponding experiment data 1.84 Debye and 1.5 X 10~(-30)m~3 respectively. From the results above of calculation and analysis, it can be seen that these amino acids and bases have biggish dipole moments. These molecules will vibrate ceaselessly to and fro when exposed to microwave radiation and then release heat energy because of friction. Distinctly thermal bio-effect of microwave is possible to be produced. Because the rotational spectra of these molecules fall into the band of microwave, their rotational levels can be excited when exposed to microwave radiation of certain frequency. What is more important is that micowave field can influence selectively on degree-of-freedom of molecules. That is, the rotation frequencies of X,Y and Z direction fall particularly into a certain frequency, which can be thought to be sensitive to a certain frequency of EMF. When microwave quantum act on these molecules, the molecules can be excitated. Farther, microwave radiation influences the characteristics of proteins and nucleic acids. Moreover, the structure and function of proteins and gene expression can be influenced.
机译:我们以H_2O为例来验证该方法的可行性。偶极矩和极化体积分别为1.78 Debye和1.5 X 10〜(-30)m〜3,而相应的实验数据分别为1.84 Debye和1.5 X 10〜(-30)m〜3。从以上计算和分析的结果可以看出,这些氨基酸和碱基具有很大的偶极矩。这些分子在暴露于微波辐射时会不断地来回振动,然后由于摩擦而释放出热能。微波可能产生明显的热生物效应。因为这些分子的旋转光谱落在微波带中,所以当暴露于一定频率的微波辐射时,它们的旋转能级会被激发。更重要的是,微波波场可以选择性地影响分子的自由度。即,X,Y和Z方向的旋转频率特别落入特定频率,这可以被认为对EMF的特定频率敏感。当微波量子作用于这些分子时,这些分子可以被激发。此外,微波辐射会影响蛋白质和核酸的特性。而且,可以影响蛋白质的结构和功能以及基因表达。

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