首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Numerical simulation of physicochemical interactions between oxygen atom and phosphatidylcholine due to direct irradiation of atmospheric pressure nonequilibrium plasma to biological membrane with quantum mechanical molecular dynamics
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Numerical simulation of physicochemical interactions between oxygen atom and phosphatidylcholine due to direct irradiation of atmospheric pressure nonequilibrium plasma to biological membrane with quantum mechanical molecular dynamics

机译:氧原子与磷脂酰胆碱因大气压力直接照射的数值模拟,用量子机械分子动力学对生物膜的直接照射

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摘要

Plasma medicine is one of the most attractive applications using atmospheric pressure nonequilibrium plasma. With respect to direct contact of the discharge plasma with a biological membrane, reactive oxygen species play an important role in induction of medical effects. However, complicated interactions between the plasma radicals and membrane have not been understood well. In the present work, we simulated elemental processes at the first stage of physicochemical interactions between oxygen atom and phosphatidylcholine using the quantum mechanical molecular dynamics code in a general software AMBER. The change in the above processes was classified according to the incident energy of oxygen atom. At an energy of 1 eV, the abstraction of a hydrogen atom and recombination to phosphatidylcholine were simultaneously occurred in chemical attachment of incident oxygen atom. The exothermal energy of the reaction was about 80% of estimated one based on the bond energies of ethane. An oxygen atom over 10 eV separated phosphatidylcholine partially. The behaviour became increasingly similar to physical sputtering. The reaction probability of oxygen atom was remarkably high in comparison with that of hydrogen peroxide. These results suggest that we can uniformly estimate various physicochemical dynamics of reactive oxygen species against membrane lipids.
机译:血浆医学是使用大气压非预测等离子体最具吸引力的应用之一。关于通过生物膜直接接触放电等离子体,反应性氧物种在诱导医疗效果中发挥着重要作用。然而,血浆基团和膜之间的复杂相互作用尚未得到很好的理解。在本作本作中,我们在氧原子和磷脂酰胆碱之间使用量子机械分子动力学代码在一般软件琥珀中的氧原子和磷脂酰胆碱之间的第一阶段模拟了元素过程。根据氧原子的入射能进行分类上述方法的变化。在1eV的能量下,在入射氧原子的化学附着中,同时发生氢原子和重组与磷脂酰胆碱的复述。基于乙烷的键合能量,反应的放热能量为约80%的估计。氧原子超过10eV分离出磷脂酰胆碱部分。行为越来越类似于物理溅射。与过氧化氢的相比,氧原子的反应概率显着高。这些结果表明,我们可以统一估计对膜脂质的反应性氧物种的各种物理化学动态。

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