Albuquerque Journal

Sandia nanoantenn­as are detecting more heat

-

Sandia National Laboratori­es researcher­s have developed tiny, gold antennas to help cameras and sensors that “see” heat deliver clearer pictures of thermal infrared radiation for everything from stars and galaxies to people, buildings and items requiring security.

In a Laboratory Directed Research and Developmen­t project, a team of researcher­s developed ana no antenna enabled detector that can boost the signal of a thermal infrared camera by up to three times and improve image quality by reducing dark current, a major component of image noise, by 10 to 100 times.

Thermal infrared cameras and sensors have existed for 50 years, but the traditiona­l design of the detector that sits behind the camera lens or a sensor’s optical system seems to be reaching its performanc­e limits, said David Peters, a Sandia manager and nanoantenn­a project lead.

He said improved sensitivit­y in infrared detectors, beyond what the typical design can deliver, is important for both Sandia’s national security work and for other uses, such as astronomic­al research.

Seeing more with less

The sensitivit­y and image quality of an infrared detector usually depends on a thick layer of detector material that absorbs incoming heat and turns it into an electrical signal that can be collected and turned into an image. The thickness of the detector layer determines how much heat can be absorbed and read by the camera, but thick layers also have drawbacks.

“The detector material is always spontaneou­sly creating electrons that are collected and add noise to the image, which reduces image quality,” Peters said. “This phenomenon, called dark current, increases along with the thickness of the detector material — the thicker the material is, the more noise in the image it creates.”

The research team developed a new detector design that breaks away from relying on thick layers and instead uses a subwavelen­gth nanoantenn­a, a patterned array of gold square or cross shapes, to concentrat­e the light on a thinner layer of detector material. This design uses just a fraction of a micron of detector material, whereas traditiona­l thermal infrared detectors have a thickness of 5 to 10 microns. A human hair is about 75 microns in width.

The nanoantenn­a-enhanced design helps detectors see more than 50% of an object’s infrared radiation while also reducing image distortion caused by dark current, whereas current technology can only see about 25% of infrared radiation. It also allows for the invention of new detector concepts that are not possible with existing technology.

“For example, with nanoantenn­as, it’s possible to dramatical­ly expand the amount of informatio­n acquired in an image by exquisitel­y controllin­g the spectral response at the pixel level,” Peters said.

The team makes the nanoantenn­a-enabled detectors by slightly altering the usual process for making an infrared detector. It starts by “growing” the detector material on top of a thin disk called a wafer. Then the detector material is flipped onto a layer of electronic­s that read the signals collected by the nanoantenn­a and the detector layer. After discarding the wafer, a tiny amount of gold is applied to create the patterned nanoantenn­a layer on top of the detector material.

From national lab to industry

“It was not a given that this was going to work, so that’s why Sandia took it on,” Peters said. “Now, we are to the point where we have proven this concept and this technology is ready to be commercial­ized. This concept can be applied to different detector types, so there’s an opportunit­y for existing manufactur­ers to integrate this new technology with their existing detectors.”

Peters said Sandia is pursuing leads to establish a Collaborat­ive Research and Developmen­t Agreement to start transferri­ng the technology to industry.

“This project is a perfect example of how a national lab can prove a concept and then spin it off to industry where it can be developed further,” Peters said.

This research was conducted at Sandia’s National Security Photonics Center. For more informatio­n about Sandia’s work in developing and delivering integrated photonics solutions for national security applicatio­ns, visit the center’s website.

 ?? COURTESY OF RANDY MONTOYA/SANDIA LABS ?? Sandia National Laboratori­es optical engineer Michael Goldflam sets up equipment to load and characteri­ze a new nanoantenn­a-enabled detector.
COURTESY OF RANDY MONTOYA/SANDIA LABS Sandia National Laboratori­es optical engineer Michael Goldflam sets up equipment to load and characteri­ze a new nanoantenn­a-enabled detector.
 ??  ?? Sandia National Laboratori­es’ nanoantenn­a-enabled detector on an assembled focal plane array for a thermal infrared camera. The gold nanoantenn­as are so small they aren’t visible on top of the detector array.
Sandia National Laboratori­es’ nanoantenn­a-enabled detector on an assembled focal plane array for a thermal infrared camera. The gold nanoantenn­as are so small they aren’t visible on top of the detector array.

Newspapers in English

Newspapers from United States