Posted on 09/29/2023 9:28:53 AM PDT by Red Badger
Researchers have pioneered a technique for swiftly and efficiently reconstructing the full quantum state of entangled particles, utilizing advanced camera technology to visualize the wave function of two entangled photons in real time. The innovative method is exponentially faster than previous ones, taking minutes or seconds instead of days, and holds the potential for advancing quantum technology by enhancing quantum state characterization, quantum communication, and quantum imaging techniques.
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A new technique based on advanced camera technology demonstrates a rapid and efficient way to reconstruct the full quantum state of entangled particles.
Researchers from the University of Ottawa, working together with Danilo Zia and Fabio Sciarrino from the Sapienza University of Rome, have recently demonstrated a novel technique that enables the visualization of the wave function of two entangled photons, the elementary particles that constitute light, in real-time.
Using the analogy of a pair of shoes, the concept of entanglement can be likened to selecting a shoe at random. The moment you identify one shoe, the nature of the other (whether it is the left or right shoe) is instantly discerned, regardless of its location in the universe. However, the intriguing factor is the inherent uncertainty associated with the identification process until the exact moment of observation.
The wave function, a central tenet in quantum mechanics, provides a comprehensive understanding of a particle’s quantum state. For instance, in the shoe example, the “wave function” of the shoe could carry information such as left or right, the size, the color, and so on. More precisely, the wave function enables quantum scientists to predict the probable outcomes of various measurements on a quantum entity, e.g. position, velocity, etc.
Photo (left to right): Dr. Alessio D’Errico, Dr. Ebrahim Karimi, and Nazanin Dehghan. Credit: University of Ottawa
This predictive capability is invaluable, especially in the rapidly progressing field of quantum technology, where knowing a quantum state that is generated or input in a quantum computer will allow us to test the computer itself. Moreover, quantum states used in quantum computing are extremely complex, involving many entities that may exhibit strong non-local correlations (entanglement).
Knowing the wave function of such a quantum system is a challenging task – this is also known as quantum state tomography or quantum tomography in short. With the standard approaches (based on the so-called projective operations), a full tomography requires large number of measurements that rapidly increase with the system’s complexity (dimensionality). Previous experiments conducted with this approach by the research group showed that characterizing or measuring the high-dimensional quantum state of two entangled photons can take hours or even days. Moreover, the result’s quality is highly sensitive to noise and depends on the complexity of the experimental setup.
The projective measurement approach to quantum tomography can be thought of as looking at the shadows of a high-dimensional object projected on different walls from independent directions. All a researcher can see is the shadows, and from them, they can infer the shape (state) of the full object. For instance, in a CT scan (computed tomography scan), the information of a 3D object can thus be reconstructed from a set of 2D images. In classical optics, however, there is another way to reconstruct a 3D object. This is called digital holography and is based on recording a single image, called interferogram, obtained by interfering the light scattered by the object with a reference light.
The team, led by Ebrahim Karimi, Canada Research Chair in Structured Quantum Waves, co-director of uOttawa Nexus for Quantum Technologies (NexQT) research institute and associate professor in the Faculty of Science, extended this concept to the case of two photons. Reconstructing a biphoton state requires superimposing it with a presumably well-known quantum state, and then analyzing the spatial distribution of the positions where two photons arrive simultaneously. Imaging the simultaneous arrival of two photons is known as a coincidence image. These photons may come from the reference source or the unknown source. Quantum mechanics states that the source of the photons cannot be identified. This results in an interference pattern that can be used to reconstruct the unknown wave function. This experiment was made possible by an advanced camera that records events with nanosecond (one 1,000,000,000th of a second) resolution on each pixel.
Dr. Alessio D’Errico, a postdoctoral fellow at the University of Ottawa and one of the co-authors of the paper, highlighted the immense advantages of this innovative approach: “This method is exponentially faster than previous techniques, requiring only minutes or seconds instead of days. Importantly, the detection time is not influenced by the system’s complexity – a solution to the long-standing scalability challenge in projective tomography.”
The impact of this research goes beyond just the academic community. It has the potential to accelerate quantum technology advancements, such as improving quantum state characterization, quantum communication, and developing new quantum imaging techniques.
Reference:
“Interferometric imaging of amplitude and phase of spatial biphoton states” by Danilo Zia, Nazanin Dehghan, Alessio D’Errico, Fabio Sciarrino and Ebrahim Karimi, 14 August 2023, Nature Photonics.
DOI: 10.1038/s41566-023-01272-3
The study was funded by the Canada Research Chairs, the Canada First Research Excellence Fund, and the NRC-uOttawa Joint Centre for Extreme Quantum Photonics (JCEP).
A Quantum of Ping!.......................
That Wave Function stuff still seems weird/amazing to me.
As a kid in to 50s, who knew?
That Wave Function stuff still seems weird/amazing to me.
As a kid in the 50s, who knew?
I read years ago that this is a step to mimicking Star Trek replicators. Changing the properties of one object makes an entangled object change the same way — with the distance between the two supposedly not being much of an issue.
It would make for an instantaneous communication device, regardless of distance....................
I remember when I got entangled with my Honda 450 and a guard rail when some sand particles on the on ramp provided the connectivity through time and space. It was slow motion yet instantaneous.
I propose a quantum communication device:
Take a crystal, diamond, amethyst, quartz whatever you have available and split it into two parts.
Polish and cut the two parts into two exact size duplicates, down to the millionths of an inch. It is currently possible.
Then take one of the crystals to the other side of the planet, or anywhere far enough away that there is absolutely no possibility of them being physically connected in any way.
Then use a low powered laser to pulse one crystal with its beam and use Morse Code to spell out a message of some sort, being secret from the other.
The other crystal should have at least one atom in it’s mass that is entangled at the subatomic level with it’s twin.
The far away crystal should react, even very, very faintly, as if it was being pulsed with a laser light as well as the first one, and this pulse could be detected and decoded, but only in this one crystal and nowhere else in the universe................
Same with me on my 350...................
Your Brain Chip Warranty is about to expire..................
The Schrödinger equation dates from 1926.
Great example. Thanks for that explanation.
I took a course in that in the 60’s.
It was not part of my Elementary School science curriculum.
And never a significant part of the National, media driven discussion.
utilizing advanced camera technology to visualize the wave function of two entangled photons in real time.
well, let’s see-em...
PM
But it’s hailing frequency would need to be open.
At this point in time it’s the only one.......................
Oh! Now I get it. I was wondering about how that worked for years. Thanks!
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