Monday, June 8, 2009

Toward Cheaper Imaging Systems for Identifying Concealed Weapons on the Human Body



Electrical engineers from UC San Diego have created high-performance W-Band silicon-germanium (SiGe) radio frequency integrated circuits (RFICs) for passive millimeter-wave imaging. This advance could lead to significantly less expensive imaging systems for identifying concealed weapons, for helping helicopters to land during dust storms, and for high frequency data communications. Electrical engineers from UC San Diego presented this circuit at the 2009 IEEE Radio Frequency Integrated Circuits (RFIC) Symposium. This work was also selected as one of the best three student papers at RFIC 2009.

Draft PDF of the paper is available here:
http://video-jsoe.ucsd.edu/jsoe/Daniel/jason_RFIC09final.pdf

Jacobs School version of press release is here:
http://www.jacobsschool.ucsd.edu/news/news_releases/release.sfe?id=856

Video is coming soon.

The new millimeter wave amplifier system works at the same frequency and follows the same underlying principles as some of the most advanced security imaging systems now in use in airports. The new UC San Diego circuit is unique in that it uses standard silicon semiconductor technology, while today’s security imaging systems working in the same millimeter frequency range often rely on expensive gallium arsenide or indium phosphide amplifiers. This advance is from the laboratories of Gabriel Rebeiz, a professor of electrical engineering at UC San Diego’s Jacobs School of Engineering and a world leader in millimeter-wave RFIC design, phased-arrays and Micro-electro-mechanical systems (MEMS).

The RFIC Conference is the premiere annual conference in the world for reporting recent research developments in Radio Frequency Integrated Circuits (RFICs). These circuits are responsible for the communications links in all wireless devices. This year, UC San Diego has 11 (out of 140) papers at the conference, which is much more than any other university.

“Our circuit functions at the same frequencies as some of the most advanced millimeter wave imagers around. The big difference is that we are using a commercial silicon semiconductor process technology while other systems are typically customized and very expensive. The technologies that we use are very inexpensive and reliable, so we should be able to bring the costs of those sorts of systems down, perhaps even to handheld scanners some day,” said Jason May, an electrical engineering PhD student at UC San Diego’s Jacobs School of Engineering and the first author on the RFIC 2009 paper.

The new circuit also includes an antenna that can be used to capture radiation in the millimeter wave frequency emitted from the human body and from objects under a person’s clothing. This radiation passes through clothing largely or completely unaffected.

Imagers operating at millimeter waves are particularly useful because they can resolve images down to a millimeter scale, fine enough detail to identify small objects and separate items on a person’s body.

“By the size of the signal we detect, we can tell the temperature of the signal we are looking at,” explained Gabriel Rebeiz, the electrical engineering professor at UC San Diego’s Jacobs School of Engineering supervising the project. “An imager with our chip could resolve images down to a millimeter scale, enabling us to identify very small objects that are on someone’s body,” said Rebiez.

“A ceramic knife concealed against a person’s leg, for instance, might appear one or half of one degree cooler than the rest of their body. We could then tell that something is there and we could exactly determine its shape,” said May.
Using signal processing, these kinds of scanners can put together an image of a temperature map of a person’s body that includes any objects underneath the clothing.
Imagers, high speed communications systems, and other applications that operate at the millimeter wave frequency are poised to become increasingly prevalent and influential as the circuit technologies for integrating them with existing silicon technologies matures.

“Our success at this conference is a direct result of the investment that UC San Diego has made over many decades in the field of wireless communications. The RFIC field requires an interdisciplinary team, because it requires innovation in the areas of electronic devices, integrated circuit theory, electromagnetic theory and communications systems. The broad skills of the UCSD faculty have made this extraordinary level of research innovation possible," said Larry Larson, Professor and Chair, Department of Electrical and Computer Engineering at the UC San Diego Jacobs School of Engineering.

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“High-Performance W-Band SiGe RFICs for Passive Millimeter-Wave Imaging,” by Jason May and Gabriel Rebeiz, University of California, San Diego. Presented at 2009 IEEE Radio Frequency Integrated Circuits (RFIC) Symposium, June 7-9, 2009.

This work is funded by DARPA, the Defense Advanced Research Projects Agency of the United States of America.

Structural Engineers in SDNN


Eric Yates from SDNN, the San Diego News Network, wrote about UC San Diego's shake table out at the Englekirk Structural Engineering Center.

Also, check out an interesting story in Forbes about the changing media landscape in San Diego.

Saturday, June 6, 2009

Space Pee in the Union Tribune


The UC San Diego undergrads who are studying fluid streams in zero gravity with the hope of making more comfortable and sanitary urine collection devices for space travel were profiled in the San Diego Union Tribune today.

Read Scott LaFee's story here.

This story in the Union Tribune links back to the video I produced about the Microgravity Project.

Wednesday, June 3, 2009

More photos from "space pee" story







Above and below are more photos from the Jacobs School undergraduate students on the Microgravity Team who are studying fluid dynamics in near zero gravity in order to make more sanitary and comfortable space toilets (urine collection devices if you want to be specific).

The Microgravity Project is part of http://aiaa.ucsd.edu/, which is UC San Diego’s student chapter of the American Institute of Aeronautics and Astronautics. The following Jacobs School of Engineering undergraduates participated in the 2009 Microgravity Project at UC San Diego: Timothy Havard, Christie Carlile, Geoffrey Meier, Samina Bhatia, Derek Peterson, Jacqueline Yu, Arvin La Rosa, Colin Sheredy, Jeremy Burke and Brandon Maryatt.
















http://www.jacobsschool.ucsd.edu/news/news_releases/release.sfe?id=852

More photos from NASA Johnson Space Center are here and even more Microgravity University photos are here.

Engineers Throwing Rock Concert this Friday


The Jacobs School of Rock is back. All the info is at the Jacobs School of Rock web site.

Friday June 5, 2009.
Porter's Pub at UC San Diego.
Doors open at 5 PM, the show starts at 6PM.
Seven bands. No cover!!!
Come and see just how much the Jacobs School rocks.

Tuesday, June 2, 2009

Bioengineering Grad Students Win Entrepreneur Challenge



Congratulations to the bioengineering grad students from the Jacobs School who took first place last night at the UC San Diego Entrepreneur Challenge. The winning students are from a team that bears the same name as their startup company: Biological Dynamics. Raj Krishnan is one of the founders, a bioengineering grad student and no stranger to the winners circle.

I recently wrote a story highlighting the many university research awards he was won this year. Read that story here.

Second Place went to Tritonics, a team that includes UC San Diego bioengineering grad student Saleh Amirriazi.

Third Place went to Radio Fast, which includes Mehmet Parlak, an ECE/Calit2 grad student.

Xconomy San Diego covered this story The first two graphs from that story by Juha-Pekka Tikka are excerpted below...followed by photos taken by Jacobs School alumna Nikki Truitt (Thanks Nikki!)

A biotechnology company aiming to revolutionize early-stage cancer screening last night won the UC San Diego Entrepreneur Challenge. Biological Dynamics, led by bioengineering PhD student and CEO Raj Krishnan and his fellow graduate students David Charlot and Roy Lefkowitz, took home the $40,000 first prize.

Biological Dynamics has developed a screening tool that identifies secondary cancer biomarkers such as free circulating DNA from unnatural cell death. Krishnan’s technology helps to detect signs of early stage tumors with a cost-effective blood test that takes less than 30 minutes and shows signs of almost every cancer type, according to the already much-awarded team.