mean well

Optics

Method to Control Light Propagation in Waveguides

A team of Columbia Engineering researchers, led by Applied Physics Assistant Professor Nanfang Yu, has invented a method to control light propagating in confined pathways, or waveguides, with high efficiency by using nano-antennas. To demonstrate this technique, they built photonic integrated…

Published by LED professional ·

LED professional

Photonic integrated circuits (ICs) are based on light propagating in optical waveguides, and controlling such light propagation is a central issue in building these chips, which use light instead of electrons to transport data. Yu's method could lead to faster, more powerful, and more efficient optical chips, which in turn could transform optical communications and optical signal processing. The study is published online in Nature Nanotechnology April 17.

"We have built integrated nanophotonic devices with the smallest footprint and largest operating bandwidth ever," Yu says. "The degree to which we can now reduce the size of photonic integrated devices with the help of nano-antennas is similar to what happened in the 1950s when large vacuum tubes were replaced by much smaller semiconductor transistors. This work provides a revolutionary solution to a fundamental scientific problem: How to control light propagating in waveguides in the most efficient way?"

The optical power of light waves propagating along waveguides is confined within the core of the waveguide: researchers can only access the guided waves via the small evanescent "tails" that exist near the waveguide surface. These elusive guided waves are particularly hard to manipulate and so photonic integrated devices are often large in size, taking up space and thus limiting the device integration density of a chip. Shrinking photonic integrated devices represents a primary challenge researchers aim to overcome, mirroring the historical progression of electronics that follows Moore's law, that the number of transistors in electronic ICs doubles approximately every two years.

Yu's team found that the most efficient way to control light in waveguides is to "decorate" the waveguides with optical nano-antennas: these miniature antennas pull light from inside the waveguide core, modify the light's properties, and release light back into the waveguides. The accumulative effect of a densely packed array of nano-antennas is so strong that they could achieve functions such as waveguide mode conversion within a propagation distance no more than twice the wavelength.

"This is a breakthrough considering that conventional approaches to realize waveguide mode conversion require devices with a length that is tens of hundreds of times the wavelength," Yu says. "We've been able to reduce the size of the device by a factor of 10 to 100."

Yu's teams created waveguide mode converters that can convert a certain waveguide mode to another waveguide mode; these are key enablers of a technology called "mode-division multiplexing" (MDM). An optical waveguide can support a fundamental waveguide mode and a set of higher-order modes, the same way a guitar string can support one fundamental tone and its harmonics. MDM is a strategy to substantially augment an optical chip's information processing power: one could use the same color of light but several different waveguide modes to transport several independent channels of information simultaneously, all through the same waveguide. "This effect is like, for example, the George Washington Bridge magically having the capability to handle a few times more traffic volume," Yu explains. "Our waveguide mode converters could enable the creation of much more capacitive information pathways."

He plans next to incorporate actively tunable optical materials into the photonic integrated devices to enable active control of light propagating in waveguides. Such active devices will be the basic building blocks of augmented reality (AR) glasses—goggles that first determine the eye aberrations of the wearer and then project aberration-corrected images into the eyes—that he and his Columbia Engineering colleagues, Professors Michal Lipson, Alex Gaeta, Demetri Basov, Jim Hone, and Harish Krishnaswamy are working on now. Yu is also exploring converting waves propagating in waveguides into strong surface waves, which could eventually be used for on-chip chemical and biological sensing.

Hat dir der Artikel gefallen?

Share this article

You could also like this

Optics

Materials as a Key Enabler for Next-Generation LED Lighting

Executive Summary: As LED technology approaches its theoretical efficiency limits, materials are becoming a primary driver of future lighting innovation. Advanced silicone materials improve optical stability, thermal management and long-term reliability compared with conventional thermoplastics.…

Optics

Gaggione Introduces HADAR: A Modular Optics Platform for Architectural Lighting

French optics specialist Gaggione has launched HADAR, a new modular family of architectural optics designed to simplify beam control while increasing flexibility for luminaire manufacturers and lighting designers. Available in three sizes—HADAR35, HADAR50, and HADAR70—the platform combines…

Optics

Dow’s New Study Bridges the Knowledge Gap on Blue Light Photothermal Aging of Thermoplastic Lens Clusters in LED lighting

Dow announced the results of a new study that evaluated the aging performance of commercially available lens clusters in LED lighting. The study examined blue light photothermal aging of both silicone and thermoplastic optics made of polycarbonate (PC), polymethyl methacrylate (PMMA) and…

Optics

AAC Technologies and Eulitha Announce Use of Eulitha’s Optical Lithography for Volume AR Waveguide Production

AAC Technologies, a global leader in advanced consumer electronics components and modules, and Eulitha AG, a pioneer in high-throughput optical lithography, today announced at the SPIE AR/VR Conference that AAC will begin utilizing Eulitha’s lithography technology for the volume production of…

Edison optoLTF TechnologyLoreos

The latest Press Releases

Explore All

Stay current with our monthly Update from the lighting industry

LEDprofessional Newsletter

You will receive a confirmation email. Unsubscribe anytime.