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Showing posts with label Henry O. Everitt. Show all posts
Showing posts with label Henry O. Everitt. Show all posts
Tuesday, June 19, 2018
Abstract-A high-efficiency regime for gas-phase terahertz lasers
Fan Wang, Dane J. Phillips, Jeongwon Lee, Henry O. Everitt
https://www.researchgate.net/publication/325702634_A_high-efficiency_regime_for_gas-phase_terahertz_lasers
We present both an innovative theoretical model and an experimental validation of a molecular gas optically pumped far-infrared (OPFIR) laser at 0.25 THz that exhibits 10× greater efficiency (39% of the Manley–Rowe limit) and 1,000× smaller volume than comparable commercial lasers. Unlike previous OPFIR-laser models involving only a few energy levels that failed even qualitatively to match experiments at high pressures, our ab initio theory matches experiments quantitatively, within experimental uncertainties with no free parameters, by accurately capturing the interplay of millions of degrees of freedom in the laser. We show that previous OPFIR lasers were inefficient simply by being too large and that high powers favor high pressures and small cavities. We believe that these results will revive interest in OPFIR laser as a powerful and compact source of terahertz radiation.
Tuesday, June 12, 2018
Abstract- Millimeter Wave and Terahertz Synthetic Aperture Radar for Locating Metallic Scatterers Embedded in Scattering Media
Jonathan T. Richard, Henry O. Everitt
https://ieeexplore.ieee.org/document/8070469/
A rail-mounted synthetic aperture radar has been constructed to operate at W-band (75-110 GHz) and a terahertz (THz) band (325-500 GHz) in order to ascertain its ability to detect and locate isolated small, visually obscured metallic scatterers embedded in highly scattering dielectric hosts that are either semitransparent or opaque. A “top view” two-dimensional (2-D) algorithm was used to reconstruct scenes from the acquired data, locating metallic scatterers at W-band with high-range and crossrange resolution of 4.3 and 16 mm, respectively, improved to 0.86 and 5 mm at the THz band. Millimeter-sized metallic scatterers were easily located when embedded in semitransparent, highly scattering target hosts of polystyrene and polyethylene packing foam but were more difficult to locate when embedded in relatively opaque, highly scattering polyisocyanurate insulation panels. Although the THz band provided the expected greater spatial resolution, it required the target to be moved closer to the rail and had a more limited field of view that prevented some targets from being identified. Techniques for improving the signal-to-noise ratio are discussed. This paper establishes a path for developing techniques to render a complete 3-D reconstruction of a scene rapidly
Tuesday, November 14, 2017
Abstract-Characterization of an active metasurface using terahertz ellipsometry
Nicholas Karl, Martin S. Heimbeck, Henry O. Everitt, Hou-Tong Chen, Antoinette J. Taylor, Igal Brener, Alexander Benz, John L. Reno, Rajind Mendis, Daniel M. Mittleman,
http://aip.scitation.org/doi/abs/10.1063/1.5004194
Switchable metasurfaces fabricated on a doped epi-layer have become an important platform for developing techniques to control terahertz (THz) radiation, as a DC bias can modulate the transmission characteristics of the metasurface. To model and understand this performance in new device configurations accurately, a quantitative understanding of the bias-dependent surface characteristics is required. We perform THz variable angle spectroscopic ellipsometry on a switchable metasurface as a function of DC bias. By comparing these data with numerical simulations, we extract a model for the response of the metasurface at any bias value. Using this model, we predict a giant bias-induced phase modulation in a guided wave configuration. These predictions are in qualitative agreement with our measurements, offering a route to efficient modulation of THz signals.
Thursday, December 8, 2016
Research center physicist recognized by his peers
By NIKKI FICKEN AMRDEC
http://www.theredstonerocket.com/military_scene/article_ffedf934-bc80-11e6-bf22-2b921fd3b353.html
An Aviation and Missile Research, Development and Engineering Center employee has been named a Fellow of the American Association for the Advancement of Science, a distinction that recognizes his outstanding contributions in scientific research.
Dr. Henry Everitt, an AMRDEC physicist, is among 391 AAAS members elected by their peers to the rank of Fellow this year, one of two researchers employed by the Army. AAAS is the world’s largest multidisciplinary scientific society, with more than 120,000 members, and a leading publisher of cutting-edge research through its science family of journals. The AAAS seeks to “advance science, engineering and innovation throughout the world for the benefit of all people.”
“It is a tremendously humbling honor to be recognized by your peers for the work you do,” Everitt said. “I’m blessed to get paid for doing research, something I so much enjoy doing. My career has been about doing research in a variety of ways, including mentoring outstanding students and researchers and sponsoring top scientists and engineers around the world. Any successes I’ve had derive from their successes.”
He is one of the Army’s three dozen chief scientists, a senior executive “scientific technologist” who has worked for 25 years as a program manager, researcher and adviser on subjects as wide ranging as nanotechnology, photonics, ultrafast spectroscopy of semiconductor physics, quantum information, molecular spectroscopy and terahertz frequency holography and radar.
“Dr. Everitt has an extensive technical knowledge-base as represented in his numerous journal publications, book chapters, manuscripts and numerous technical reports,” Juanita Harris, AMRDEC Weapons Development and Integration Directorate director, said. “His guidance and strategic direction in the quantum networking activities allows the Army to lay out its strategic path in response to this very critical OSD initiative on quantum research. Dr. Everitt has proven himself time and time again to utilize his technical strengths to provide real world solutions to critical missile-based problems.”
In announcing the honor, AAAS recognized him “for pioneering spectroscopic investigations of wide bandgap semiconductors and ultraviolet plasmonic nanostructures, terahertz holography and nascent federal programs in quantum information, photonic crystals and nanotechnology.”
Because of his pioneering work in these fields, Everitt was previously selected as a Fellow of the Optical Society of America and the American Physical Society. He also holds adjunct faculty positions at several universities including Duke University, Rice University and the University of Alabama in Huntsville where he has taught classes and personally mentored more than 75 undergraduate researchers, graduate students and research scientists.
He and the other new Fellows will be presented with an official certificate and rosette pin on Feb. 18 at the AAAS Fellows forum during the 2017 AAAS annual meeting in Boston.
“As an Army scientist, my job and the purpose of my research is ultimately about service, service to my colleagues, service to the nation and especially service to the brave men and women in uniform who protect our freedoms,” Everitt said. “Selfless service is one of the Army’s core values, so it means a lot that AAAS recognizes Fellows for their ‘service to society.’ I hope I’ve done that.”
Wednesday, December 3, 2014
Laser sniffs out toxic gases from afar
This powerful one-ton laser, capable of firing dozens of pulses a second, gives researchers a new way to detect tiny amounts of hazardous gases from up to one kilometer away, and under normal atmospheric pressure -- something that wasn't thought possible before. Credit: Henry Everitt, U.S. Army and Duke University.
http://phys.org/news/2014-12-laser-toxic-gases-afar.html#jCp
Scientists have developed a way to sniff out tiny amounts of toxic gases—a whiff of nerve gas, for example, or a hint of a chemical spill—from up to one kilometer away.
The new technology can discriminate one type of gas from another with greater specificity than most remote sensors—even in complex mixtures of similar chemicals—and under normal atmospheric pressure, something that wasn't thought possible before.
The researchers say the technique could be used to test for radioactive byproducts from nuclear accidents or arms control treaty violations, for example, or for remote monitoring of smokestacks or factories for signs of air pollution or chemical weapons.
"You could imagine setting this up around the perimeter of an area where soldiers are living, as a kind of trip wire for nerve gas," said lead author Henry Everitt, an Army scientist and adjunct professor of physics at Duke University.
The technique uses a form of invisible light called terahertz radiation, or T-rays.
Already used to detect tumors and screen airport passengers, T-rays fall between microwaves and infrared radiation on the electromagnetic spectrum.
Zapping a gas molecule with a terahertz beam of just the right energy makes the molecule switch between alternate rotational states, producing a characteristic absorption spectrum "fingerprint," like the lines of a bar code.
Terahertz sensors have been used for decades to identify trace gases in the dry, low-pressure conditions of interstellar space or in controlled conditions in the lab, where they are capable of unambiguous identification and ultra-sensitive, part-per-trillion detection.
But until now, efforts to use the same technique to detect trace gases under normal atmospheric conditions have failed because the pressure and water vapor in the air smears and weakens the spectral fingerprint.
In a study published in the journal Physical Review Applied, Everitt, Ohio State University physicist Frank De Lucia and colleagues have developed a way around this problem.
Their approach works by blasting a cloud of gas with two beams at once. One is a steady terahertz beam, tuned to the specific rotational transition energy of the gas molecule they're looking for.
The second beam comes from a laser, operating in the infrared, which emits light in high-speed pulses.
At the U.S. Army Aviation and Missile Research, Development, and Engineering Center near Huntsville, Alabama, the researchers have installed a one-of-a-kind infrared laser.
Manufactured by a company called STI Optronics, it's capable of firing dozens of pulses of infrared light a second, each of which is less than a billionth-of-a-second long.
"It's kind of like whacking a molecule with an infrared sledgehammer," Everitt said.
Normal atmospheric pressure still blurs the chemical "bar code" produced by the blast of the Terahertz beam, but the ultra-short pulses of light from the more powerful infrared laser knock the molecule out of equilibrium, causing the smeared absorption lines to flicker.
"We just have to tune each beam to the wavelengths that match the type of molecule we're looking for, and if we see a change, we know it has to be that gas and nothing else," Everitt said.
The researchers directed the two beams onto samples of methyl fluoride, methyl chloride and methyl bromide gases in the lab to determine what combination of laser settings would be required to detect trace amounts of these gases under different weather conditions.
"Terahertz waves will only propagate so far before water vapor in the air absorbs them, which means the approach works a lot better on, say, a cold winter day than a hot summer day," Everitt said.
The researchers say they are able to detect trace gases from up to one kilometer away. But even under ideal weather conditions, the technology isn't ready to be deployed in the field just yet.
For one, converting an eight-foot, one-ton laser into something closer in size to a briefcase will take some time.
Having demonstrated that the technique can work, their next step is to figure out how to tune the beams to detect additional gases.
Initially, they plan to focus on toxic industrial chemicals such as ammonia, carbon disulfide, nitric acid and sulfuric acid.
Eventually, the researchers say their technique could also be useful for law enforcement in detecting toxic gases generated by meth labs, and other situations where detection at the gas's source isn't feasible.
"Point sensing at close range is always better than remote sensing if you can do it, but it's not always possible. These methods let us collect chemical intelligence that tells us what's going on before we get somewhere," Everitt said.
More information: "Design and signature analysis of remote trace-gas identification methodology based on infrared-terahertz double-resonance spectroscopy," Tanner, E., et al. Physical Review Applied, 2014. dx.doi.org/10.1103/PhysRevApplied.2.054016
Thursday, April 5, 2012
Infrared-terahertz double-resonance spectroscopy of CH3F and CH3Cl at atmospheric pressure
Dane J. Phillips, Elizabeth A. Tanner, Frank C. De Lucia, and Henry O. Everitt
Accepted Friday Mar 30, 2012
A new method for highly selective remote sensing of atmospheric trace polar molecular gases is described. Based on infrared/terahertz double resonance spectroscopic techniques, the moleculespecific coincidence between the lines of a CO2 laser and rotational-vibrational molecular absorption transitions provide two dimensions of recognition specificity: infrared coincidence frequency and the corresponding terahertz frequency whose absorption strength is modulated by the laser. Atmospheric pressure broadening expands the molecular recognition "specificity matrix" by simultaneously relaxing the infrared coincidence requirement and strengthening the corresponding terahertz signature. Representative double resonance spectra are calculated for prototypical molecules CH sub 3 F and CH sub 3 Cl and their principal isotopomers, from which a heuristic model is developed to estimate the specificity matrix and double resonance signature strength for any polar molecule.
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