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首页> 外文期刊>Journal of nanomaterials >Charge-Dipole Acceleration of Polar Gas Molecules towards Charged Nanoparticles: Involvement in Powerful Charge-Induced Catalysis of Heterophase Chemical Reactions and Ball Lightning Phenomenon
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Charge-Dipole Acceleration of Polar Gas Molecules towards Charged Nanoparticles: Involvement in Powerful Charge-Induced Catalysis of Heterophase Chemical Reactions and Ball Lightning Phenomenon

机译:极性气体分子对带电纳米粒子的电荷-偶极加速:参与强力诱导的异相化学反应和球形闪电现象的催化。

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In humid air, the substantial charge-dipole attraction and electrostatic acceleration of surrounding water vapour molecules towards charged combustible nanoparticles cause intense electrostatic hydration and preferential oxidation of these nanoparticles by electrostatically accelerated polar water vapour molecules rather than nonaccelerated nonpolar oxygen gas molecules. Intense electrostatic hydration of charged combustible nanoparticles converts the nanoparticle's oxide-based shells into the hydroxide-based electrolyte shells, transforming these nanoparticles into reductant/air core-shell nanobatteries, periodically short-circuited by intraparticle field and thermionic emission. Partially synchronized electron emission breakdowns within trillions of nanoparticles-nanobatteries turn a cloud of charged nanoparticles-nanobatteries into a powerful radiofrequency aerosol generator. Electrostatic oxidative hydration and charge-catalyzed oxidation of charged combustible nanoparticles also contribute to a self-oscillating thermocycling process of evolution and periodic autoignition of inflammable gases near to the nanoparticle's surface. The described effects might be of interest for the improvement of certain nanotechnological heterophase processes and to better understand ball lightning phenomenon.
机译:在潮湿的空气中,周围水蒸气分子向带电的可燃纳米粒子的大量电荷偶极子吸引和静电加速会引起强烈的静电水合作用,并通过静电加速的极性水蒸气分子而不是非加速的非极性氧气分子使这些纳米粒子优先氧化。带电的可燃纳米粒子的强烈静电水合作用将纳米粒子的基于氧化物的壳转化为基于氢氧化物的电解质壳,将这些纳米粒子转变为还原剂/空气核壳纳米电池,并由于粒子内电场和热电子发射而周期性地发生短路。在数万亿个纳米粒子-纳米电池中,部分同步的电子发射击穿将带电的纳米粒子-纳米电池云变成强大的射频气溶胶发生器。带电的可燃纳米粒子的静电氧化水合作用和电荷催化的氧化作用还促进了纳米粒子表面附近可燃气体的演化和周期性自燃的自振荡热循环过程。所描述的效果可能对某些纳米技术异相过程的改进以及更好地理解球形闪电现象很有兴趣。

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