화학공학소재연구정보센터
International Journal of Hydrogen Energy, Vol.34, No.24, 9816-9823, 2009
Selective atomic hydrogen heating in plasmas: Implications for quantum theory
A new model of quantum mechanics, Classical Quantum Mechanics, is based on the (nearly heretical) postulate that electrons are physical objects that obey classical physical laws. indeed, ionization energies, excitation energies, etc. are computed based on picturing electrons as 'bubbles' of charge that symmetrically surround a nucleus. Hence, for example, simple algebraic expressions based on Newtonian force balances are used to predict ionization energies and stable excitation states with remarkable precision. one of the most startling predictions of the model is that there are stable 'sizes' of the hydrogen atom electron (bubble diameter) that are smaller ('hydrinos') than that calculated for the 'ground state'. Experimental evidence in support of this novel physical/classical version of quantum is alleged to be found in the existence of super-heated hydrogen atoms reported by many teams in a variety of plasmas. It is postulated that the energy required for creating super-heated H atoms comes from the shrinkage of ground state H atoms to form hydrinos. This claim is discussed with reference to a brief review of the published studies of selective Balmer series line broadening in pure H(2) and mixed gas plasmas, and astro-physical data. (C) 2009 Professor T. Nejat Veziroglu. Published by Elsevier Ltd. All rights reserved.