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Re: silver water efficacy repost, and Dmso addition
 
Monatomics Views: 1,877
Published: 9 y
 
This is a reply to # 2,289,570

Re: silver water efficacy repost, and Dmso addition


Nanoparticle sized bacteria obviously has a much softer shell than a basketball does. So when silver nanoparticles impact against these bacteria, they may cause minor lacerations, bruising and micro electrical shocks. The shocks occur because silver is the most electrically conductive element.

Think of a fully charged 12 volt battery connected with a pair of battery cables. If you ground the cables together touching one clamp to another, it releases a spark discharge. A similar situation occurs when a Colloidal Silver particle with a positive charge comes in contact with viruses, bacteria or other pathogens having a negative charge. Magnetic particle attraction ensues drawing these oppositely charged particles together. Upon contact with a harmful microorganism, they discharge one or more electrons causing an electrical shock of sorts.

Now the interesting part: Nanoparticles of Colloidal Silver seldom remain as separate individual particles in a solution of water. Since they’re unable to attach to the molecules of water, they immediately begin attaching themselves to each other in rapid, sequential steps. First, most of the unstable monatomic ions attract other individual ions and quickly transform into polyatomic ions (also known as a molecular ion, is a charged chemical species (ion) composed of two or more atoms covalently bonded or of a metal complex that can be considered to be acting as a single unit) that are composed of multiple monatomic Ions.

Magnetic particle attraction increases once the polyatomic ions have formed. Masses of polyatomic ions keep attracting quantities of nanoparticles which quickly transform into huge molecular sized ionic clusters. These clusters can no longer penetrate the pathogens.

Nanoparticles of silver that were 8 to 200 billionths of a meter in size grew a thousand fold and became micro-particle groups that are between 8 and 200 millionths of a meter in size, which is a thousand times larger.

The formation of these molecular sized, ionic silver, particle groups creates a problem. Bacteria of Staphylococcus Aureus averages between ½ and 1 micrometer in size. A molecular ionic silver particle that’s between 50 and several hundred micrometers in size is not going to penetrate bacteria that small.

Ultrasmall bacteria average between 320 nanometers long by 240 nanometers wide. Colloidal Silver nanoparticles are often as large as 200 nm in size.

Particles that are ⅔ the size of the bacteria itself also will not be able to penetrate it.

The reason nano and ionic particles of silver give just bare, minimal results is because of the way they work. They smash bacteria, viruses and similar pathogens with particles that bruise, cut and mildly shock these
microorganisms while only killing off small numbers of them. The microorganisms retaliate from this assault by excreting various toxins to protect themselves.

In addition, because most nanoparticle colloids are made with chemicals, and it take a chemical process to create ions, ions are also present in most nanoparticle colloidal solutions.

Toxins produced in this manner are combined with the chemical residues left in the ionic and nanoparticle silver solutions. Together, these create a sudden imbalance in a person’s system when solutions like this are ingested. This in turn initiates the Herxheimer Reaction making the person even sicker before they get well.

This is why rapid penetration into pathogens is important.

Which is why I would recommend a High PPM of Atomic Particle Colloidal silver that is from 3000 to 18000 PPM.
 

 
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