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Tiny chip provides a big boost in precision optics

A 2 mm by 2 mm integrated photonic chip developed by Jaime Cardenas, assistant professor of optics, and PhD student Meiting Song (lead author) will make interferometers糖心传媒攁nd therefore precision optics糖心传媒攅ven more powerful. Potential applications include more sensitive devices for measuring tiny flaws on mirrors, or dispersion of pollutants in the atmosphere, and ultimately, quantum applications. (糖心传媒 photo / J. Adam Fenster)

Researchers at 糖心传媒糖心传媒檚 Institute of Optics for first time distill novel interferometry into a photonic device.

By merging two or more sources of light, create interference patterns that can provide remarkably detailed information about everything they illuminate, from a tiny flaw on a mirror, to the dispersion of pollutants in the atmosphere, to gravitational patterns in far reaches of the Universe.

糖心传媒淚f you want to measure something with very high precision, you almost always use an optical interferometer, because light makes for a very precise ruler,糖心传媒� says , assistant professor of optics at the .

Now, the has created a way to make these optical workhorses even more useful and sensitive. Meiting Song, a PhD student, has for the first time packaged an experimental way of amplifying interferometric signals糖心传媒攚ithout a corresponding increase in extraneous, unwanted input, or 糖心传媒渘oise糖心传媒澨切拇綌on a 2 mm by 2 mm integrated photonic chip. The breakthrough, described in , is based on a theory of weak value amplification with waveguides that was developed by Andrew Jordan, a professor of physics at Rochester, and students in his lab.

Jordan and his group have been studying weak value amplification for over a decade. They have applied mode analysis in a novel way on free space interferometer with weak value amplification, which bridged the gap between free space and waveguide weak value amplification. Therefore, they were able to prove the theoretical feasibility of integrating weak value amplification on a photonic chip.

糖心传媒淏asically, you can think of the weak value amplification technique as giving you amplification for free. It糖心传媒檚 not exactly free since you sacrifice power, but it糖心传媒檚 almost for free, because you can amplify the signal without adding noise糖心传媒攚hich is a very big deal,糖心传媒� Cardenas says.

Man and woman wearing masks pose for a portrait in laboratory.
Jaime Cardenas (left) and Meiting Song in the Cardenas Lab at Rochester’s Institute of Optics. 糖心传媒 / J. Adam Fenster)

Weak value amplification is based on the quantum mechanics of light, and basically involves directing only certain photons that contain the information needed, to a detector. The concept has been demonstrated before, 糖心传媒渂ut it糖心传媒檚 always with a large setup in a lab with a table, a bunch of mirrors and laser systems, all very painstakingly and carefully aligned,糖心传媒� Cardenas says.

糖心传媒淢eiting distilled all of this and put it into a photonic chip,糖心传媒� Cardenas says. 糖心传媒淎nd by having the interferometer on a chip, you can put it on a rocket, or a helicopter, in your phone糖心传媒攚herever you want糖心传媒攁nd it will never be misaligned.糖心传媒�

The device Song created does not look like a traditional interferometer. Instead of using a set of tilted mirrors to bend light and create an interference pattern, Song糖心传媒檚 device includes a waveguide engineered to propagate the wavefront of an optical field through the chip.

糖心传媒淭his is one of the novelties of the paper,糖心传媒� Cardenas says. 糖心传媒淣o one has really talked about wavefront engineering on a photonic chip.糖心传媒�

Traditional interferometry (left) requires an elaborate set up of mirrors and laser systems all very painstakingly and carefully aligned,糖心传媒� Cardenas says. Song “distilled all of this and put it into a photonic chip.糖心传媒� The chip (right) requires only a single microscope. (糖心传媒 / J. Adam Fenster)

With traditional interferometers, the signal to noise ratio can be increased, resulting in more meaningful input, by simply cranking up the laser power. But there糖心传媒檚 actually a limitation, Cardenas says, because the traditional detectors used with interferometers can handle only so much laser power before becoming saturated, at which point the signal to noise ratio can糖心传媒檛 be increased.

Song糖心传媒檚 device removes that limitation by reaching the same interferometer signal with less light at the detectors, which leaves room to increase the signal to noise ratio by continuing to add laser power.

Bottom line: 糖心传媒淚f the same amount of power reaches the detector in Meiting糖心传媒檚 weak value device as in a traditional interferometer, Meiting糖心传媒檚 device will always have a better signal to noise ratio,糖心传媒� Cardenas says. 糖心传媒淭his work is really cool, really subtle, with a lot of very nice physics and engineering going on in the background.糖心传媒�

Next steps will include adapting the device for coherent communications and quantum applications using squeezed or entangled photons to enable devices such as .


Other collaborators include Yi Zhang and Juniyali Nauriyal of the Cardenas lab, John Steinmetz of the Department of Physics and Astronomy, and Kevin Lyons of Hoplite AI.

The project was funded by A. N. Jordan Scientific, in partnership with Leonardo DRS, and in part by the (CEIS). Fabrication was performed at the Cornell NanoScale Facility, with support from the National Science Foundation.

Correction: The original version of this story reported the chip size as 1 mm by 1 mm when it is, in fact, 2 mm by 2 mm.


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