A 'rainbow on a chip' could power both 6G networks and precision quantum timing

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Topic: A 'rainbow on a chip' could power both 6G networks and precision quantum timing   Views(Read 87 times)
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Physicists at Loughborough University, working with an international team, have demonstrated a grain of rice sized microchip that produces a spectrum of precisely spaced frequencies of light, then converts that spectrum into multiple high frequency electromagnetic signals known as millimeter waves. The device works by generating what's called a microcomb, a single laser beam split into many evenly spaced frequency lines, and researchers have taken to calling the whole setup a rainbow on a chip because of how those individual light frequencies resemble the separated colors of a rainbow.

The actual demonstrated setup pairs a hybrid microresonator with a fiber loop to generate a stable microcomb, then converts that comb into multiple precisely spaced millimeter wave signals. A key detail buried in the results is that individual comb frequencies could be tuned independently while the microwave output kept its precision, which matters a lot for real world flexibility since a fixed, untunable comb would be far less useful for practical communications or timing applications that need to adapt to changing requirements.

The millimeter wave signals this setup produces sit right in the frequency range future 6G networks are expected to use for high bandwidth wireless communication, and the same precision that makes the chip useful for communications also makes it valuable for timing applications. Extremely accurate timing underpins emerging quantum technologies and could meaningfully improve navigation and positioning systems, which is why the team is now working with the UK's National Physical Laboratory and quantum technology researchers to test how closely their system's timing precision can approach that of a full atomic clock.

The technology is still genuinely early stage despite the chip itself being tiny. The complete experimental setup currently takes up a full tabletop, and researchers expect future versions could shrink dramatically, potentially down to roughly the size of a shoebox. The team is also exploring whether the technology could eventually operate on satellites, where minimizing size, weight, and power consumption matters more than almost anywhere else


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