Skip to main content

Earth’s Gravity Might Be Warping Quantum Mechanics, Say Physicists




Scientists propose a groundbreaking experiment using quantum computers and atomic clocks to test whether gravity alters the fundamental rules of quantum theory.

A recent study featured in the journal PRX Quantum reveals how a network of quantum computers equipped with optical clocks can be used to investigate how gravity influences quantum systems.

The researchers found that placing three quantum computers at different elevations, even with just a 1-kilometer difference in height, allows Earth’s curved gravitational field to measurably affect the quantum states shared among them. Their work outlines how this setup could offer the first direct evidence that conventional quantum theory may need to be revised to incorporate the principles of general relativity.

“There is an extensive body of theoretical work suggesting that what we currently accept as quantum theory needs to be modified to account for general relativity, and we have devised an experiment to explore one aspect of this deviation from conventional quantum theory,” said Jacob Covey, a physics professor in The Grainger College of Engineering at the University of Illinois Urbana-Champaign and the study’s lead author. “The strength of our procedure is that it relies on quantum information protocols that have been or will soon be demonstrated, so it is, in principle, relatively straightforward to implement.”

Gravitational Time Dilation Meets Quantum Mechanics

The effects of general relativity the modern theory of gravity which posits that space and time are curved by the presence of mass are expected to manifest in quantum systems through the phenomenon of gravitational time dilation, in which clocks at different locations in a gravitational field “tick” at different rates. While the effect is prominent around ultra-dense objects such as black holes and neutron stars, it is quite subtle here on Earth, where gravity is comparatively weak.

“It was necessary to use the incredibly high precision of quantum metrology with optical atomic clocks to first explore the time dilation near Earth,” Covey said. “However, no experiment has directly observed the effect of spacetime curvature on quantum mechanics itself.”

Past theoretical work has suggested that curvature in space and time alters a fundamental tenet of accepted quantum theory called the Born rule, a principle based on the linearity of quantum theory, allowing the theory’s abstract mathematics to be translated into experimental predictions. However, observing alterations to the rule is a tricky task, as they would only appear in quantum systems with a certain level of intrinsic nonlinearity.

“One of the Born rule’s predictions is how multiple quantum sources combine and interfere with each other,” Covey said. “In a collection of three quantum sources, the rule says that only pairwise interference – 1 and 2, 1 and 3, and 2 and 3 – are needed to describe the full system. If gravity altered the rule, then there would be a term where all three – 1, 2, and 3 – interfere simultaneously. Testing this scenario necessarily requires a system with three sources that span a sufficiently large nonlinearity to provide a discernible observable. This, in turn, requires the most precise sensors humans have ever made, optical atomic clocks, and elevation separations of kilometers. Hence, the three-node quantum network of optical atomic processor clocks.”

W-States and Quantum Teleportation as Experimental Tools

The study’s authors designed an experiment to test this prediction using so-called “W-states” – three-part quantum systems integral to many protocols in quantum computing and communication. Current quantum technology has the means to create W-states on physically separated computers using the operation of quantum teleportation. Exploiting this fact, the researchers demonstrated that gravitational time dilation would cause W-state components to display specific interference patterns, making it clear how Born rule violations would appear in experimental data.

According to Covey, the new protocol is feasible to implement using distributed quantum computing technology, in which quantum “nodes” are connected by special quantum networks. Illinois is participating in the construction of such a network organized by the Q-NEXT Department of Energy quantum center connecting the University of Chicago and Argonne National Laboratory. Fermilab and other locations in the Chicago metro area may be added later, and elevation differences of nearly one kilometer could be achieved using a combination of underground labs at Fermilab (in which drop-tower atomic clock experiments are already performed) and the tall buildings of Chicago.

#HighEnergyPhysics#ParticlePhysics#QuantumPhysics#AstroparticlePhysics#ColliderPhysics#HiggsBoson#LHC#QuantumFieldTheory#NeutrinoPhysics#PhysicsResearch#ComputationalScience#DataScience#ScientificComputing#NumericalMethods#HighPerformanceComputing#MachineLearningInScience#BigData#AlgorithmDevelopment#SimulationScience#ParallelComputing

Visit Our Website : hep-conferences.sciencefather.com
Nomination Link :hep-conferences.sciencefather.com/award-nomination/?ecategory=Awards&rcategory=Awardee
Registration Link : hep-conferences.sciencefather.com/award-registration/
Member Link : hep-conferences.sciencefather.com/conference-membership/?ecategory=Membership&rcategory=Member
Awards-Winners : hep-conferences.sciencefather.com/awards-winners/
For Enquiries: supportteam@sciencefather.com

Get Connected Here:
==================
Social Media Link
Twitter : x.com/Psciencefather
Pinterest : in.pinterest.com/physicsresearchorganisation
Blog : physicscience23.blogspot.com
Instagram : www.instagram.com/victoriaanisa1
YouTube :www.youtube.com/channel/UCzqmZ9z40uRjiPSr9XdEwMA
Tumblr : https://www.tumblr.com/blog/hepcs

Comments

Popular posts from this blog

Physicists observe a new form of magnetism for the first time

MIT physicists have demonstrated a new form of magnetism that could one day be harnessed to build faster, denser, and less power-hungry " spintronic " memory chips. The new magnetic state is a mash-up of two main forms of magnetism: the ferromagnetism of everyday fridge magnets and compass needles, and antiferromagnetism, in which materials have magnetic properties at the microscale yet are not macroscopically magnetized. Now, the MIT team has demonstrated a new form of magnetism , termed "p-wave magnetism." Physicists have long observed that electrons of atoms in regular ferromagnets share the same orientation of "spin," like so many tiny compasses pointing in the same direction. This spin alignment generates a magnetic field, which gives a ferromagnet its inherent magnetism. Electrons belonging to magnetic atoms in an antiferromagnet also have spin, although these spins alternate, with electrons orbiting neighboring atoms aligning their spins antiparalle...

"Explore the Fourth Dimension"

Fourth Dimension   The fourth dimension is a fascinating concept that has captured the imaginations of scientists, mathematicians, and artists for centuries. Unlike our three-dimensional world, which is limited by the linear flow of time, the fourth dimension is a realm of space and time that exists beyond our everyday experience. One way to visualize the fourth dimension is through the use of a hypercube, also known as a tesseract. A hypercube is a cube within a cube, with additional lines and edges connecting the vertices of the two cubes. It's impossible to construct in our three-dimensional world, but it provides a glimpse into what the fourth dimension might look like. Another way to understand the fourth dimension is through the concept of a wormhole, a theoretical passage through space-time that connects two distant points in the universe. A wormhole is like a shortcut through the fabric of space-time, allowing us to travel vast distances in an instant. While there is no de...

Green comet to pass Earth, won't be back for another 50,000 years

   visit:  https://hep-conferences.sciencefather.com/ After travelling from the icy reaches of our Solar System it will come closest to the Sun on January 12 and pass nearest to Earth on February 1.   A newly discovered comet could be visible to the naked eye as it shoots past Earth and the Sun in the coming weeks for the first time in 50,000 years, astronomers have said. The comet is called C/2022 E3 (ZTF) after the Zwicky Transient Facility, which first spotted it passing Jupiter in March last year. After travelling from the icy reaches of our Solar System it will come closest to the Sun on January 12 and pass nearest to Earth on February 1. It will be easy to spot with a good pair of binoculars and likely even with the naked eye, provided the sky is not too illuminated by city lights or the Moon. The comet "will be brightest when it is closest to the Earth", Thomas Prince, a physics professor at the California Institute of Technology who works at the Zwicky Transi...