I have a strong suspicion that the plasmon resonances can be tuned by the 
surface features.  There also may be interactions with the underlying atoms of 
the surface as well since atom resonances possess very high frequency stability 
and "Q".  We may discover that real magic occurs when the two types of 
resonances couple strongly due to incidental surface features such as holes and 
projections.

Dave


-----Original Message-----
From: Roarty, Francis X <[email protected]>
To: vortex-l <[email protected]>
Sent: Mon, Jun 24, 2013 1:07 pm
Subject: RE: EXTERNAL: Re: [Vo]:Rossi and DGT Similarity?



Axil, I think the frequency of the light is a property of the fractional state 
but the plasmon resonance is causing larger and larger populations of 
fractional molecules to disassociate and recombine in the cavity, the end 
effect on measurement devices that average the spectrum from the bulk gas is to 
broaden the spectrum.
Fran
 
From: Axil Axil [mailto:[email protected]]
Sent: Monday, June 24, 2013 12:52 PM
To: vortex-l
Subject: EXTERNAL: Re: [Vo]:Rossi and DGT Similarity?
 

 I know the resistive IR is much lower than the anomalous spectrum reported by 
Mills but if it causes the plasmons in the active material to resonate at a 
higher harmonic this would bring it much closer.

 

The frequency of light in the hot spot is changed from infrared to the color 
blue in the range  correspond to a blue spectral range withhw ≈3.13 eV.


 

On Mon, Jun 24, 2013 at 7:59 AM, Roarty, Francis X <[email protected]> 
wrote:
        I know the resistive IR is much lower than the anomalous spectrum 
reported by Mills but if it causes the plasmons in the active material to 
resonate at a higher harmonic this would bring it much closer. I also wonder 
about the applicability of spectrum measurements to the active environment. I 
am pretty sure we see only an average of the spectrum from the lattice and both 
sides of the active geometry - my posit is that fractional Rydberg h  result in 
lower frequency while Rydberg h results in higher and that both can occur but 
the active geometry [cavity] favors fractional formations so I would expect to 
see the hydrogen spectrum broadened but more so on the low side.

 I also wonder if resonance can occur between fractional states where f/h2  
disassociates and recombines in synch with the plasmon resonance and that 
photons emitted from these fractional state hydrogen is  responsible for the 
spectrum spread claimed by Mills. I had a passing notion that the 20% metronome 
effect might even extend to favoring a specific pair of fractional states to 
oscillate between- the spectrum anomaly is  caused by the slaved 
disassociations of  fractional states and there may exist favored pairs. Does 
anyone know how consistent the Mill's claimed spectrum is?
Fran



 


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