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Written on 23 March 2009. Posted in Department News.

Blake High School Students Publish Paper with Professor James Gates

James Hubert Blake High School students James Gonzales and James Parker recently became “published” authors in theoretical physics as coauthors of 4D, N = 1 Supersymmetry Genomics (I), which is a mathematically derived supersymetric relationship between specific particles.

Mr.Gonzales and Mr. Parker participated in the Student Summer Theoretical Physics Research Session (SSTPRS) at the University of Maryland with Dr. James Gates Jr. - John S. Toll Professor & Director of Center for String & Particle Theory.

Twelve students from Maryland and the University of Iowa cooperated in the research on string theory for two months during the summer. During the first month the students learned advanced math concepts from Dr. Gates and then applied these concepts to their research during the second month.

Both Blake students worked diligently and made a valuable contribution to the research and where the only high school students to coauthor the article. Mr. Parker said “it was a great learning experience to work with Dr. Gates”.

Their paper can be viewed at http://arxiv.org/abs/0902.3830.  ArXiv is the premiere website in the world where each day the world’s community of theoretical physicists publicize their work.

 

Written on 19 March 2009. Posted in Department News.

UM Research Posts Recovery Act Info

Please bookmark the campus Recovery Act Information page:

www.umresearch.umd.edu/recovery

and the departmental page:

http://umdphysics.umd.edu/index.php/services/2009-stimulus-information.html

Written on 09 March 2009. Posted in Research News.

A Tabletop Source of Strong Terahertz Radiation

By: Ki-Yong Kim

Sandwiched between the traditional optical and microwave regimes, far infrared or terahertz (THz) frequency (1 THz = 1012 Hz) has recently drawn special attention due to its potential for molecular sensing, biomedical imaging and spectroscopy, security scanners, and plasma diagnostics. These applications provide strong motivation to advance the state of the art in THz source development. In particular, large-scale electron accelerators such as synchrotrons and free electron lasers are currently available to produce THz radiation energy in excess of several microjoule per pulse. However, due to its large cost to build those facilities and thereby limited access, there is a present and growing need to realize such strong THz generation at the tabletop scale. In this effort, we have recently demonstrated a high-energy (>5 microjoule), super-broadband (>75 THz), tabletop THz source via ultrafast photoionization in gases [1].

In this scheme, an ultrafast pulsed laser’s fundamental and second harmonic fields are mixed in a gas of atoms or molecules, causing them to ionize. Microscopically, the laser fields act to suppress the atom’s or molecule’s Coulomb potential barrier, and, via rapid tunneling ionization, bound electrons are freed. The electrons, once liberated, oscillate at the laser frequencies, and also drift away from their parent ions at velocities determined by the laser field amplitudes and the relative phase between the two laser fields. Depending on the relative phase, symmetry can be broken to produce a net directional electron current. As this current occurs on the timescale of photoionization, for sub-picosecond lasers, it can generate electromagnetic radiation at THz frequencies.

This THz generation mechanism turns out to be closely related to the mechanism used to explain high harmonic generation (HHG) in gases, as both processes originate from a common source, that is, a nonlinear electron current. The electrons re-colliding with the parent ions are responsible for HHG, whereas the electrons drifting away from the ions without experiencing re-scattering ions account for THz generation. As demonstrated experimentally [1], the generated THz and third-harmonic are strongly correlated in such a way that changing the relative phase can effectively switch the emission between THz and harmonics. This provides the basis to coherently control electromagnetic radiation in a broad spectral range, from THz to extreme ultraviolet.

Now, the next step is to scale up the laser power to produce even more powerful THz radiation. Using the Maryland’s 30 terawatt (TW) laser, we anticipate producing an unprecedented millijoule level of THz radiation. Such radiation may allow us to observe extreme nonlinear THz phenomena in a university laboratory.


[1]  K. Y. Kim et al., Nature Photon. 2, 605 (2008).

Written on 23 January 2009. Posted in Research News.

Long-Distance Teleportation Between Atoms

For the first time, scientists have successfully teleported information between two separate atoms in unconnected enclosures a meter apart – a significant milestone in the global quest for practical quantum information processing.

Teleportation may be nature’s most mysterious form of transport: Quantum information, such as the spin of a particle or the polarization of a photon, is transferred from one place to another, but without traveling through any physical medium. It has previously been achieved between photons over very large distances, between photons and ensembles of atoms, and between two nearby atoms through the intermediary action of a third. None of those, however, provides a feasible means of holding and managing quantum information over long distances. 

Read More

Written on 07 January 2009. Posted in Research News.

UMD Physicists Play Major Roles in Four of AIP's Top Ten Physics Discoveries of 2008

Editors and science writers at the American Institute of Physics and the American Physical Society selected a list of Top Ten Physics Stories in 2008. The selections were released on December 22, 2008 and included four discoveries in which UMD Physicists had major roles (Large Hadron Collider, Quarks , Ultracold Molecules and Cosmic Rays).

To view the full article, visit: http://www.aip.org/pnu/2008/split/879-1.html

More Articles …

  1. Robert Gluckstern: 1924 - 2008
  2. Nicholas Hadley Elected Fellow of AAAS
  3. Heavy electrons: new ways to break old rules
  4. MILAGRO Detects Cosmic Ray Hot Spots

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