Nucleation and Structural Identification in Gold Particles of High Aspect Ratios Developed through Mechanistic Approach

31 December 2019, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

A precise structure of colloidal particles is discussed here. Formation mechanism of nanoparticles and particles having geometrical shapes is discussed in a different way. Dimensional regularity of such nanoparticles and particles gives new insight. At electronically flat solution surface, two different zones found developing tiny-shaped particles in less and more elongation of atoms. Tiny-shaped particles in less elongation of atoms nucleate particles of one-dimensional (1D) shapes and those in more elongation of atoms nucleate multi-dimensional (MD) shapes. To assemble at a common point forming at centre of concave meniscus on solution surface, structures of smooth elements at electronically decreasing level solution surface deal with exertion of force in immersing manner. In addition to orientation of an electron and the position of its atom, style of energy knot clamping electron also varies exertion of force on it. Particles of geometrical shapes show different structures in their 1D and MD shapes. By identification of structure, a mechanism of photon reversion is disclosed. In selected area patterns of particles, experimental proof of printing spots of reverted force of photons reflected from different electronic structures of elongated atoms validates that photons are not necessarily carried by the electrons.

Keywords

Atomic behavior
Elongation
Fundamental forces
Adjacent orientation
Lateral orientation
Nucleation
Structure
Photon interaction

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