2007-05-06

Engineers Create 'Optical Cloaking' Design For Invisibility(excerpted from sciencetoday)

Science Daily — Researchers using nanotechnology have taken a step toward creating an "optical cloaking" device that could render objects invisible by guiding light around anything placed inside this "cloak."
The Purdue University engineers, following mathematical guidelines devised in 2006 by physicists in the United Kingdom, have created a theoretical design that uses an array of tiny needles radiating outward from a central spoke. The design, which resembles a round hairbrush, would bend light around the object being cloaked. Background objects would be visible but not the object surrounded by the cylindrical array of nano-needles, said Vladimir Shalaev, Purdue's Robert and Anne Burnett Professor of Electrical and Computer Engineering.

The design does, however, have a major limitation: It works only for any single wavelength, and not for the entire frequency range of the visible spectrum, Shalaev said.

"But this is a first design step toward creating an optical cloaking device that might work for all wavelengths of visible light," he said.

Research findings are detailed in a paper appearing this month in the journal Nature Photonics. The paper, which is appearing online this week, was co-authored by doctoral students Wenshan Cai and Uday K. Chettiar, research scientist Alexander V. Kildishev and Shalaev, all in Purdue's School of Electrical and Computer Engineering.

Calculations indicate the device would make an object invisible in a wavelength of 632.8 nanometers, which corresponds to the color red. The same design, however, could be used to create a cloak for any other single wavelength in the visible spectrum, Shalaev said.

"How to create a design that works for all colors of visible light at the same time will be a big technical challenge, but we believe it's possible," he said. "It is clearly doable. In principle, this cloak could be arbitrarily large, as large as a person or an aircraft."

The research is based at the Birck Nanotechnology Center at Purdue's Discovery Park.

Other researchers published findings in 2006 describing the mathematics generally required for the optical cloaking device. Those researchers include: John Pendry at the Imperial College in London, along with David Schurig and David R. Smith at Duke University, and simultaneously, Ulf Leonhardt at the University of St. Andrews in Scotland.

"These mathematical requirements were very general, and then we determined how to fulfill the requirements with a specific design," Shalaev said.

Leonhardt, a professor of theoretical physics, wrote a commentary piece about the Purdue paper appearing in the same issue of Nature Photonics. In the commentary, he compares the Purdue design to the Roman creation of "the first optical metamaterial," a type of glass containing nanometer-scale particles of gold. In ordinary daylight, a cup made of the glass appeared green, but then it glowed ruby when illuminated from the inside.

The Purdue research, Leonhardt writes, represents " ... theoretical simulations that show that a modified Roman cup based on modern nanofabrication technology will act as an invisibility device ... Any object you put inside will disappear as if dissolved in air, provided it is viewed through polarizing tinted glasses of precisely that colour."

Other researchers have developed concepts for cloaking objects smaller than the wavelengths of visible light and for objects detected in the microwave range of the spectrum, which are much larger than the wavelengths of visible light. But the new design is the first for cloaking an arbitrary object in the range of light visible to humans.

"What we propose is the cloaking of objects of any shape and size," Shalaev said.

Two requirements are needed to render an object invisible: Light must not reflect off of the object, and the light must bend around the object so that people would see only the background and not the cloaked object itself.

"If you satisfied only the first requirement of preventing light from reflecting off of the object, you would still see the dark shadowlike shape of the object, so you would know something was there," Shalaev said. "The most difficult requirement is to bend light around the cloaked object so that the background is visible but not the object being cloaked. The viewer would, in effect, be seeing around, or through, the object."

The device would be made of so-called "non-magnetic metamaterials." Meta in Greek means beyond, so the term metamaterial means to create something that doesn't exist in nature. Unlike designs for invisibility in the microwave range, the new design has no magnetic properties. Having no magnetic properties makes it much easier to cloak objects in the visible range but also causes a small amount of light to reflect off of the cloaked object.

"But this could, in principle, be offset by other means, for example, with antireflective coatings," Shalaev said. "The big challenge is how to make rays bend around the object, which we have described how to do in this paper."

A key factor in the design is the ability to reduce the "index of refraction" to less than 1. Refraction occurs as electromagnetic waves, including light, bend when passing from one material into another. Refraction causes the bent-stick-in-water effect, which occurs when a stick placed in a glass of water appears bent when viewed from the outside. Each material has its own refraction index, which describes how much light will bend in that particular material and defines how much the speed of light slows down while passing through a material.

Natural materials typically have refractive indices greater than 1. The new design reduces a refractive index to values gradually varying from zero at the inner surface of the cloak, to 1 at the outer surface of the cloak, which is required to guide light around the cloaked object.

Creating the tiny needles would require the same sort of equipment already used to fabricate nanotech devices. The needles in the theoretical design are about as wide as 10 nanometers, or billionths of a meter, and as long as hundreds of nanometers. They would be arranged in layers emanating from a central spoke in a cylindrical shape. A single nanometer is roughly the size of 20 hydrogen atoms strung together.

Although the design would work only for one frequency, it still might have applications, such as producing a cloaking system to make soldiers invisible to night-vision goggles.

"Because night-imaging systems detect only a specific wavelength, you could, in theory, design something that cloaks in that narrow band of light," Shalaev said.

Another possible application is to cloak objects from "laser designators" used by the military to illuminate a target, he said.

Leonhardt says in his commentary that creating a cloak for rendering total invisibility in the entire visible spectrum would require "further advances in optical metamaterials, new combinations of nanotechnology with highly abstract ideas ..."

The optical cloaking research is an indirect spinoff of research in Shalaev's lab that has been funded by the U.S. Army Research Office to develop metamaterials. In previous work, Shalaev's team created a metamaterial that has a "negative index of refraction" in the wavelength of light used for telecommunications, a step that could lead to better communications and imaging technologies. More recently, the researchers moved the wavelength for a negative refractive index material to the visible range.

Note: This story has been adapted from a news release issued by Purdue University.
To see more detail, please go to this website:
http://www.sciencedaily.com/releases/2007/04/070402141206.htm

show more of this story......

2007-05-05

An Introduction of Professor Paul K Chu(朱剑豪教授)(City University of Hong Kong)


Paul K Chu was born in Hong Kong and attended both primary and secondary school at St. Joseph's Anglo-Chinese School. He went to the United States at the age of 17 and was accepted to the honors program at The Ohio State University in Columbus, Ohio. He was awarded the prestigious American Chemical Society (ACS) Student Fellowship and worked at New England Aquarium in Boston on trace metal analysis of seawater during the summer of 1976. He received his BS in mathematics (cum laude and phi beta kappa) from Ohio State in 1977 and went to graduate school at Cornell University in Ithaca, New York. He won the DuPont teaching award as a teaching assistant at Cornell in 1978 and joined the research group of Prof. George H Morrison of the Department of Chemistry. Prof. Morrison was one of the prominent figures in analytical chemistry having been involved with the Apollo moon expedition programs. Prof. Morrison was a winner of the ACS Analytical Chemistry Award and Editor-in-Chief of Analytical Chemistry, the premier journal in analytical chemistry published by the American Chemical Society. Under the supervision of Prof. Morrison and Prof. James W Mayer of the Department of Materials Science & Engineering at Cornell, Paul conducted research on ion beam processing and characterization of semiconductors and received his MS and PhD in chemistry in 1979 and 1982, respectively.

Upon graduation, he joined Charles Evans & Associates in California which was a small company at that time but later became one of the biggest companies in the late 1980s in materials characterization. During the eight year span from 1982 to 1990, Paul was promoted 4 times and became one of the most recognized international figures in the area of secondary ion mass spectrometry (SIMS). He was one of the organizers of the SIMS-VII conference in Monterey, California in 1989, and wrote the chapter on SIMS in “Encyclopedia of Materials Characterization”. In 1990, with the help of the parent company, Paul started his first company, Evans Asia, in Hong Kong / Taiwan / Singapore / China specializing in materials characterization and analytical equipment.

In 1996, he joined City University of Hong Kong as a faculty member and ventured into the new area of plasma immersion ion implantation (PIII). He obtained financial support from City University of Hong Kong, University of Hong Kong, Hong Kong University of Science & Technology, as well as Hong Kong Research Grants Council (RGC) to establish the Plasma Laboratory in City University of Hong Kong. The Plasma Laboratory has emerged to be one of the most well known and versatile PIII facilities in the world, and Paul is recognized as one of the leading international figures in plasma-based materials engineering. He is the elected Chairman of the International Plasma-Based Ion Implantation Executive Committee which organizes the biannual International Workshop on Plasma-Based Ion Implantation and Deposition (PBII&D). He is also a member of the Ion Implantation Technology (IIT) International (Governing) Committee that organizes the biannual International Conference on Ion Implantation Technology.

Paul joined IEEE in 1997, became a senior member in 1999, and was elected Fellow of the Institute of Electrical and Electronics Engineers in 2003 for his contributions to the understanding of plasma immersion ion implantation and deposition. He is very active in the IEEE serving as a member of the international advisory board of the IEEE International Conference on Plasma Science (ICOPS) from 1996 to 1998, Guest Editor of 3 special issues of IEEE Transactions on Plasma Science [vol. 34, no. 4 (2006); vol. 33, no. 4 (2005); vol. 32, no. 2 (2004)], Senior Editor of IEEE Transactions on Plasma Science since 2006, and an executive committee (ExCom) member of the IEEE Plasma Science and Application Committee (PSAC) since 2007. Paul joined AVS (American Vacuum Society) in 2002 and was elected Fellow of AVS in 2006 for his contributions to plasma science and surface engineering of materials and industrial components. He is also Fellow of the Hong Kong Institution of Engineers (FHKIE). Paul is an elected scientific member of the Böhmishe Physical Society (BPS) as well as member of the American Chemical Society (ACS) and Materials Research Society (MRS). Locally, he is a technical advisor to the National 863 Materials & Surface Engineering R&D Center in Shenzhen, China, advisor to Shenzhen Polytechnic, and member of the standing committee of the Chinese Mechanical Engineering Society. He is an associate editor of International Journal of Plasma Science and Engineering and has been a member of the Editorial Board of Materials Science and Engineering: Reports since 2005, International Journal of Molecular Engineering since 2006, Surface and Interface Analysis since 2006, and Recent Patents on Material Science since 2007. He was a member of the Editorial Board of Nuclear Instruments and Methods in Physics Research B: Beam Interactions with Materials and Atoms from 2000 to 2006 and guest editor of the PBII&D2005 special issue published in Surface and Coatings Technology [vol. 201, no. 15 (2007)]. He was a co-chair / organizer of Symposium GG: Ion-Beam-Based Nanofabrication in the MRS Spring Meeting in San Francisco in 2007. He was a member of the Hong Kong Research Grants Council (RGC) Engineering Panel from 2000 to 2006.

Academically, in addition to being Professor (Chair) of Materials Engineering in the Department of Physics & Materials Science in City University of Hong Kong, he holds or has held advisory / visiting professorship in ten universities and research institutes in China: Institute of Microelectronics in Peking University (Beijing), Department of Materials Science in Fudan University (Shanghai), Department of Materials Science and Engineering in Shanghai Jiaotong University (Shanghai), Department of Materials Engineering in Southwest Jiaotong University (Chengdu), School of Materials Science and Engineering in Harbin Institute of Technology (Harbin), Department of Physics in Nanjing University (Nanjing), College of Materials Engineering in Jiamusi University (Jiamusi), Southwestern Institute of Physics (Chengdu), Shanghai Institute of Ceramics of The Chinese Academy of Sciences, and Shanghai Institute of Microsystem and Information Technology of The Chinese Academy of Sciences. He has established a joint PhD program with the University of Sydney in Australia in which students in his research group in City University of Hong Kong or School of Physics in the University of Sydney receive PhD degrees from both universities upon graduation. He also participates in a similar joint PhD program between City University of Hong Kong and Tsinghua University, China. Paul's teaching credentials are quite impressive. He won the DuPont Teaching Award at Cornell University. At City University of Hong Kong, he has been voted “best lecturer” and “best presenter” by students in his department and short listed for the Teaching Excellence Award. He has taught many short courses and professional seminars on materials characterization and processing in universities and companies in the US, Canada, China, Japan, Korea, Taiwan, and Singapore.

Paul's research activities are quite diverse, spanning plasma science and engineering, ion implantation, surface modification, functional thin films, biomaterials, semiconductor materials and processing, optoelectronic materials, as well as nanotechnology. He is the editor of two books on biomaterials and plasma engineering. He has published more than 10 book chapters, 550 papers in international refereed journals, and 550 international conference papers, many of which invited or plenary. His innovative works on light emission from plasma-implanted silicon, novel silicon-on-insulator (SOI) materials, as well as the enhancement of surface bioactivity and blood compatibility of biomaterials using plasma, chemical, and optical techniques have been featured many times in magazines and electronic journals. He has obtained US$10 million in research funding from agencies and companies in Hong Kong, Australia, China, Germany, Switzerland, and the US. Two of his research projects were awarded the "Excellent" rating by the City University of Hong Kong and Hong Kong Research Grants Council and he was the winner of the Second Best Paper Award in the IEEE International SOI Conference.

Paul is also heavily involved in applied research and industrial applications. His innovations on plasma processing and instrumentation have led to 8 United States patents and 3 Chinese patents. He founded his second company, Plasma Technology Ltd., in 1998 and co-founded his third company, Chengdu Pulsetech Electrical Co. Ltd., in 2001 to address the Chinese and other markets. The two companies specialize in the development of commercial plasma-based technologies as well as production of hardware such as ion sources, plasma implanters, and power supplies while also providing consultation to the industry. He was awarded the Applied Research Certificate of Merits for innovations in plasma instrumentation and power supplies and Hong Kong Awards for Industry: Technological Achievement Certificate of Merit for the development of plasma implantation and deposition technologies. Internationally, Paul’s achievement was instrumental to the establishment of Silicon Genesis Corporation in the Silicon Valley in California. Paul's research group produced the world’s first 100mm and 150mm silicon-on-insulator (SOI) wafers by plasma immersion ion implantation and ion-cutting, leading to multi-million dollar capital infusion from Intel, Applied Materials, MEMC, Komatsu, H&Q and other VCs into Silicon Genesis. The invention was featured on the cover of the 40th anniversary issue of Solid State Technology as the representative technology from Hong Kong.

Paul participates actively in amateur sports and is Honorary Manager of the City University of Hong Kong varsity badminton and swimming teams. He has won men's singles, men's doubles, mixed doubles, and teams events in CityU Student/Staff badminton tournaments. In swimming, he holds all of the City University of Hong Kong staff records in breast stroke and butterfly and has won more than 100 medals in Hong Kong masters swimming competitions.

For more information, please go to this website:
http://www.cityu.edu.hk/ap/plasma/Paul%20Chu/paul_chu.htm

show more of this story......

2007-05-04

Breakthrough of This Year:Areas to Watch in 2007(excerpt from Science)


World-weary? Hardly. Four fledgling spacecraft will give planetary scientists plenty to ponder in 2007. Europe's COROT orbiting exoplanet hunter, scheduled for launch 27 December, should detect dozens of new "hot Jupiters" around other stars and may even bag its big quarry: signs of rocky planets just a few times the size of Earth. Closer to home, the Mars Reconnaissance Orbiter will take the sharpest-ever pictures of the martian surface and will use radar to look for rock layers--and ice--as much as 1 kilometer deep. The Venus Express orbiter will be going full tilt, and in February, New Horizons will send back snapshots of Jupiter en route to its 2015 rendezvous with Pluto.

Skulls and bones. In recent years, paleoanthropologists have uncovered new skulls, teeth, and lower limbs of the earliest members of our genus Homo at sites in the Republic of Georgia, China, and Kenya. In 2007, the first descriptions of these fossils should give clues to the identity of the first human ancestors to leave Africa about 1.8 million years ago--such as whether the bones all belong to one species (Homo erectus) or to two or more. Meanwhile, the long-awaited partial skeleton of Ardipithecus ramidus, an early human ancestor that lived in Ethiopia 4.4 million years ago, promises to shed light on how upright walking evolved in early hominids.

Loads of new primate genes. With the human and chimpanzee genomes sequenced, genetic research into our evolutionary past is scrambling up other branches of the primate family tree. Lowresolution maps of gorilla, rhesus macaque, orangutan, marmoset, and gibbon genomes are already available, and refined, error-free versions should be ready in 2007. In addition, look forward to rough drafts of the genomes of the galago, tree shrew, and mouse lemur. If things go as planned, a comparative analysis of all these genomes might finally begin to explain what sets humans apart.

A climate of change? The case for human-induced warming will grow even more ironclad as the Intergovernmental Panel on Climate Change releases its report in February. Meanwhile, the International Polar Year, opening in March, will feature climate research on Earth's coldest climes. And the world is watching the U.S. Congress, which, under Democratic control, is expected to pass some sort of mandatory emission regime, and President George W. Bush, whose response will be sure to shape the debate.

Whole-genome association studies. The trickle of studies comparing the genomes of healthy people to those of the sick is fast becoming a flood. Already, scientists have applied this strategy to macular degeneration, memory, and inflammatory bowel disease, and new projects on schizophrenia, psoriasis, diabetes, and more are heating up. But will the wave of data and new gene possibilities offer real insight into how diseases germinate? And will the genetic associations hold up better than those found the old-fashioned way?

CREDIT: CIRAC AND ZOLLER/SCIENCE (2003)
Light crystals. Ultracold atoms continue to be one of the hottest areas in physics. Now researchers are loading the atoms into corrugated patterns of laser light known as optical lattices. The lattices work like artificial crystals, with the spots of light serving as the ions in the crystal lattice and the atoms playing the role of electrons moving through it. Optical lattices could help crack problems such as high-temperature superconductivity and seem sure to produce interesting new physics. Look for rapid progress in this burgeoning effort.

show more of this story......

Fastest Waves Ever Photographed!




Pictures of the fastest moving waves ever photographed were presented this morning at APS Division of Plasma Physics meeting in Philadelphia. These shots are more than your typical pretty pictures – they represent a major advance in wakefield accelerator technology, a technology that could make tabletop high-energy particle accelerators a reality.



The matter waves, which are oscillations moving through a plasma, are known as wakefields because they are created in the wake of an ultra-intense laser pulse. The waves travel at 99.997% of the speed of light and generate electric fields exceeding 100 billion electron volts/meter.


The ability to create huge electric fields makes wakefields a promising method for shrinking the size of accelerators from miles long (like those at the Stanford Linear Accelerator Center, FermiLab and CERN) to tabletop. Small accelerators would allow universities and hospitals to take advantage of the research and medical applications afforded by an accelerator without competing for time at a major particle accelerator facility.



Much work remains before tabletop accelerators can be a reality – particularly in understanding the interactions between a wakefield, the accelerated electrons, and the laser pulse. The ability to photograph wakefields is exciting news for scientists because it allows them to explore these interactions and compare theoretical predictions to real data.



Researchers from the University of Texas designed a holographic-strobe camera to take these pictures. Their method, called Frequency Domain Holography, sends two additional laser pulses though the plasma along with the ultra-intense pulse. The additional pulses detect the oscillations and then travel through a spectrometer where they interfere and are analyzed.An abstract of the talk and a lay language paper describing the research are available online.

show more of this story......