Self-aligned diamond nanobeams in titanium dioxide circuits could cut light loss in quantum networks

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Topic: Self-aligned diamond nanobeams in titanium dioxide circuits could cut light loss in quantum networks   Views(Read 65 times)
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Kai68

SciTechDaily ran a piece on a fabrication trick that tackles one of the quieter problems in quantum networking. Diamond is great at hosting quantum emitters, tiny defects that produce light signals, but other materials are better for building the optical circuits that carry that light around. Joining the two has usually meant losing light right at the connection that is supposed to pass it along

Researchers from JILA and the University of Colorado Boulder, working with the Korea Institute of Science and Technology, came up with a way to make the pieces line themselves up. They guided a tiny diamond beam into a pre-patterned structure where it naturally settled into alignment, then built the titanium dioxide photonic device around it. Building alignment into the fabrication step avoids a lot of the positioning errors that caused extra loss in earlier attempts. The work was published in Light: Science and Applications in July

The emitter was a silicon-vacancy centre in the diamond. By confining light around it in a hybrid optical cavity, the team boosted its emission and showed the light could be routed through the circuit. They were also able to set the emitter's spin to a starting state and read it out on the same chip, which matters because spin is one of the properties that can carry quantum information

Shuo Sun, the corresponding author, said the approach opens up opportunities for large-scale photonic quantum processors and quantum repeaters. Repeaters are what would let quantum communication stretch over long distances without the signal fading out. The team also thinks the method could work with other emitter and circuit materials beyond diamond and titanium dioxide

This is a component-level advance rather than a network, and nobody is going to be running a quantum internet on it next year. Still, loss at interfaces is one of those problems that multiplies painfully as systems grow. A technique that shaves loss at every join could make a big difference once you have hundreds of them on a chip

I would like to know how repeatable the self-alignment is across a whole wafer. Getting one beautiful device is one thing, but yield decides whether any of this scales


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