Warwick-led chip design uses phonons to let distant qubits talk to each other

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Topic: Warwick-led chip design uses phonons to let distant qubits talk to each other   Views(Read 49 times)
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Researchers led by the University of Warwick have proposed a new way for distant qubits to exchange quantum information, Live Science reports. The approach, called Quantum Phononic Links, uses phonons as a quantum bus. Phonons are quasiparticles that carry vibrational energy through a material, a bit like packets of sound. The study was published in APL Quantum

The problem it tackles is a big one. In many quantum chips, qubits struggle to share information unless they sit right next to each other, which limits how circuits can be laid out and how far systems can scale. Phononic links could connect qubits that are far apart on the same chip. The researchers say the approach avoids the complex surface acoustic wave designs used in some earlier ideas

The prototype uses compressively strained germanium on silicon, a material system that Warwick has worked on for years. Qubit separations in the design range from under one micrometre to 300 millimetres. Lead researcher Maksym Myronov, an associate professor of semiconductor materials at Warwick, said: "Our work introduces a new concept in which phonons act as a quantum bus, enabling distant qubits to exchange quantum information."

The team believes the approach could support machines with more than one million semiconductor hole spin qubits, as well as hybrid quantum and classical systems. Silicon and germanium based qubits are attractive because they could use existing chip manufacturing, as Quantum Motion is doing in London. Connecting large numbers of them is one of the main hurdles. If phononic links work in practice, they could help with that

Is connecting qubits over long distances the real bottleneck for silicon based quantum computers? And is it good to see more UK university research in this area?

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