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Updated: Mar 6

Physicist Douglas G. Stevenson Uncovers the "Heartbeat" of the Universe: A New Link Between Gravity and Quantum Mechanics
ST. GEORGE, UT — A groundbreaking new paper published today by researcher Douglas G. Stevenson proposes a radical shift in our understanding of the cosmos. The theory, known as the Stevenson-Flux Information Theory (SFIT), claims to have solved the century-old mystery of how gravity and quantum mechanics—the laws of the very large and the very small—actually work together.
The "Quantum Echo"
For decades, scientists believed gravity was a silent, passive force. Stevenson’ research proves otherwise. By mathematically linking Earth’s gravitational flux to the "wave-like" nature of subatomic particles, Stevenson has identified a phenomenon he calls the "Quantum Echo."
"Imagine the universe isn't just a place where things happen, but a giant computer that is constantly calculating," says Stevenson. "Gravity isn't just pulling us down; it’s actually carrying information. We’ve found a specific 'flicker'—a heartbeat—in the way particles bounce that proves gravity is talking to them."
Ending the "Spooky" Mystery
The discovery provides a physical explanation for "Quantum Entanglement"—a phenomenon Albert Einstein famously called "spooky action at a distance." Stevenson’ theory suggests there is nothing spooky about it. Instead, gravity acts as a high-speed "information highway," connecting entangled particles instantaneously through the very fabric of space.
Testing the Theory
The scientific world is already taking notice. Stevenson has provided a specific "fingerprint" for his theory: a frequency of 1.2 milli-Hertz. If researchers at major particle accelerators like CERN or the Institute Laue-Langevin find this tiny "flicker" in their data, it will confirm that Stevenson has found the "Unified Field Theory" that eluded Einstein until his death.
A New Era of Physics
The implications are staggering. If gravity is an information carrier, it could change everything from how we understand Black Holes to how we build the quantum computers of the future.
"We used to think we were just observers in the universe," Stevenson concludes. "Now we know we are part of a grand, gravitational conversation."




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