https://zenodo.org/records/18027729
Help Needed:
I am looking for feedback on the experimental setup.
The main engineering challenge is maintaining GHZ coherence long enough to isolate the effect from environmental noise.
If you have
Hi HN. Standard General Relativity posits that time dilation is caused solely by mass-energy. But what happens when information entropy reaches a critical density?
I have released Version 2.0 of my paper, proposing the Information-Induced Time Dilation (ITD) hypothesis.
The Hypothesis:
I propose that local information entropy (\Delta S_{info}) acts as a "computational load" on the spacetime metric. Just as mass curves spacetime, extreme information density might "lag" the local clock.
The Experiment (Strictly Falsifiable):
To test this, I designed a differential measurement using Sr-87 optical lattice clocks (Section 6):
Compare: A system in a GHZ Entangled State (High Info) vs. a Product State (Low Info). Control: Mass and energy are kept identical. Prediction: If my derivation is correct (\alpha \neq 0), the entangled sector will show a frequency redshift relative to the control group. expertise in quantum metrology, I would deeply appreciate your technical insights.
(Optional) Request for ArXiv Endorsement:
Endorsement Code: E3Y83D (physics.gen-ph)
As is, I’m skeptical the clocks would be able to measure it. Just a bachelors degree in physics though, so I’m not an expert.
My hunch is you need very high information density to work, like the information density around the event horizon of a black hole.
Since I can't create one in the lab, I'm betting on GHZ states to generate a steep enough local information gradient to yield a measurable effect. It's a scale-down, but unlike a black hole, we can test it today.