Researchers use quantum mechanics to see objects without looking at them

December 21, 2022

Then, we used the quantum coherence of the resulting three-level system as a resource,’ Paraoanu says. Quantum coherence refers to the possibility that an object can occupy two different states at the same time – something that quantum physics allows for. However, quantum coherence is delicate and easily collapses, so it wasn’t immediately obvious that the new protocol would work. The experiment also showed a new way in which quantum devices can achieve results that are impossible for classical devices – a phenomenon known as quantum advantage. Researchers generally believe that achieving quantum advantage will require quantum computers with many qubits, but this experiment demonstrated genuine quantum advantage using a relatively simpler setup.

An experiment with added layer of “quantumness”

Although Dogra and Paraoanu were fascinated by the work done by Zeilinger’s research group, their lab is centred around microwaves and superconductors instead of lasers and mirrors. ‘We had to adapt the concept to the different experimental tools available for superconducting devices. Because of that, we also had to change the standard interaction-free protocol in a crucial way: we added another layer of “quantumness” by using a higher energy level of the transmon. Then, we used the quantum coherence of the resulting three-level system as a resource,’ Paraoanu says.

Quantum coherence refers to the possibility that an object can occupy two different states at the same time – something that quantum physics allows for. However, quantum coherence is delicate and easily collapses, so it wasn’t immediately obvious that the new protocol would work. To the team’s pleasant surprise, the first runs of the experiment showed a marked increase in detection efficiency. They went back to the drawing board several times, ran theoretical models confirming their results, and double-checked everything. The effect was definitely there.

‘We also demonstrated that even very low-power microwave pulses can be detected efficiently using our protocol,’ says Dogra.

The experiment also showed a new way in which quantum devices can achieve results that are impossible for classical devices – a phenomenon known as quantum advantage. Researchers generally believe that achieving quantum advantage will require quantum computers with many qubits, but this experiment demonstrated genuine quantum advantage using a relatively simpler setup.

Potential applications in many types of quantum technology

Interaction-free measurements based on the less effective older methodology have already found applications in specialised processes such as optical imaging, noise-detection, and cryptographic key distribution. The new and improved method could increase the efficiency of these processes dramatically.

‘In quantum computing, our method could be applied for diagnosing microwave-photon states in certain memory elements. This can be regarded as a highly efficient way of extracting information without disturbing the functioning of the quantum processor,’ Paraoanu says.

The group led by Paraoanu is also exploring other exotic forms of information processing using their new approach, such as counterfactual communication (communication between two parties without any physical particles being transferred) and counterfactual quantum computing (where the result of a computation is obtained without in fact running the computer).

Direct link to research paper: https://www.nature.com/articles/s41467-022-35049-z

The source of this news is from Aalto University

Popular in Research

Presidential Debate TV Review: Kamala Harris Baits Raging Donald Trump Into His Worst Self In Face-Off

Oct 21, 2024

Impact of social factors on suicide must be recognised

Oct 21, 2024

Print on demand business with Printseekers.com

Sep 6, 2022

The conduct of some Trump supporters is crude, sleazy and...deplorable

Oct 21, 2024

Students learn theater design through the power of play

Oct 21, 2024

MSN

Oct 21, 2024