Showing posts with label UCSB. Show all posts
Showing posts with label UCSB. Show all posts

Wednesday, May 11, 2016

A quasiparticle collider

Mark Sherwin and an international team prove that basic collider concepts from particle physics can be transferred to solid-state research
UNIVERSITY OF CALIFORNIA - SANTA BARBARA
In the early 1900s, Ernest Rutherford shot alpha particles onto gold foils and concluded from their scattering properties that atoms contain their mass in a very small nucleus. A hundred years later, modern scientists took that concept to a new level, building the Large Hadron Collider in Switzerland to smash protons into each other, which led to the discovery of the Higgs boson.
However, what worked for particles like the Higgs hasn't translated to solids -- until now. Experiments conducted by UCSB physicist Mark Sherwin and an international team prove that basic collider concepts from particle physics can be transferred to solid-state research. Their findings appear in the journal Nature.
"Ultimately, this approach might lead to the clarification of some of the most outstanding enigmas of condensed matter physics," said co-author Sherwin, director of UCSB's Institute for Terahertz Science and Technology and a professor in the Department of Physics. "This is a fundamentally new concept that could lead to better-designed modern materials. Our results also may one day provide a better understanding of important phases of matter such as those found in high-temperature superconductors."
Despite the fact that modern technology depends on knowing the structural and electronic properties of solids, a parallel to the atomic-level collider has been lacking in solid-state research. Within a solid, the most useful analogs to particles like protons are called quasiparticles. Think of them this way: If each person in a very large stadium is like an atom in a solid, then the audience doing the "wave" is akin to a quasiparticle.
Earlier experiments by the Sherwin group at UCSB have created quasiparticles called excitons -- pairs of electrons and holes (electron vacancies) bound by the electrical force between them -- and continuously accelerated them using laser beams that remain on during the entire process. But without short pulses of laser light, actual collision events were not previously observable as distinct flashes of light.
This new research employed a unique laser source at the terahertz high-field lab in Regensburg, Germany, which enabled the investigators to directly observe quasiparticle collision events. Since the quasiparticle exists for an extremely short amount of time, it was crucial to operate on ultrashort timescales. If one second were stretched to the age of the universe, a quasiparticle would only exist for a few hours.
The scientists produced collisions within excitons in a thin flake of tungsten diselenide. A light wave of the terahertz pulse accelerated the electrons and holes of the exciton within a period shorter than a single oscillation of light (1 terahertz means 1 trillion oscillations per second).
The experiment demonstrates that only excitons created at the right time lead to electron-hole collisions, just as in conventional accelerators. However, this process of recollision generates ultrashort light bursts that encode key aspects of the solid. These laboratory observations have been supported and explained by a quantum mechanical simulation performed by co-authors at the University of Marburg in Germany.
"These time-resolved collision experiments in a solid prove that the basic collider concepts that have transformed our understanding of the subatomic world can be transferred from particle physics to solid-state research," Sherwin said. "They also shed new light on quasiparticles and many-body excitations in condensed matter systems."
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Monday, March 3, 2014

Novel quantum dot laser paves the way for lower-cost photonics


http://phys.org/news/2014-03-quantum-dot-laser-paves-lower-cost.html

With the explosive growth of bandwidth demand in telecommunications networks, experts are continually seeking new ways to transmit increasingly large amounts of data in the quickest and cheapest ways possible. Photonic devices—which convert light to electricity and vice versa—offer an energy-efficient alternative to traditional copper network links for information transmission. Unfortunately, these devices are also almost always prohibitively pricey.

One way to bring those costs down is to make photonics compatible with the existing silicon microelectronics industry. A promising way to do that is by growing "quantum dot" lasers directly on silicon substrates, according to graduate student Alan Y. Liu of the University of California at Santa Barbara (UCSB) and his colleagues, who include UCSB professors John E. Bowers and Arthur C. Gossard. Although such quantum dot lasers have been grown on silicon before, their performance has not equaled that of quantum dot lasers grown on their native substrates, which are platforms made of similar materials as the quantum dot lasers themselves.
Now Liu and his collaborators in Bowers and Gossard's groups have demonstrated a novel quantum dot laser that not only is grown on silicon but that performs as well as similar lasers grown on their native substrates. The team will discuss its record-breaking results achieved using such lasers at this year's OFC Conference and Exposition, being held March 9-13 in San Francisco, Calif., USA.
The researchers believe the work is an important step towards large-scale photonic integration in an ultra low-cost platform.
Currently, so-called "quantum well" lasers are used for data transmission. They consist of nanometers-thick layers of light-emitting material, representing the quantum well, sandwiched between other materials that serve to guide both the injected electrical current as well as the output light. A quantum dot laser is similar in design, but the sheets of quantum well materials are replaced with a high density of smaller dots, each a few nanometers high and tens of nanometers across. To put it in perspective, 50 billion of them would fit onto one side of a penny.
"Quantum wells are continuous in two dimensions, so imperfections in one part of the well can affect the entire layer. Quantum dots, however, are independent of each other, and as such they are less sensitive to the crystal imperfections resulting from the growth of laser material on silicon," Liu said.
"Because of this, we can grow these lasers on larger and cheaper silicon substrates. And because of their small size," Liu added, "they require less power to operate than quantum well lasers while outputting more light, so they would enable low-cost silicon photonics."
In their new work, the team grew quantum dots directly on silicon substrates using a technique known as molecular beam epitaxy, or MBE ("epitaxy" refers to the process of growing one crystal on top of another, with the orientation of the top layer determined by that of the bottom).
"The major advantage of epitaxial growth is that it enables us to exploit the existing economies of scale for silicon, which would drive down cost," Liu said. He added that "MBE is the best method for creating high-quality quantum dots that are suitable for use in lasers" and that "the entire laser can be grown continuously in a single run, which minimizes potential contamination."
More information: Presentation W4C.5. titled "High Performance 1.3μm InAs Quantum Dot Lasers Epitaxially Grown on Silicon" will take place Wednesday, March 12 at 5:00 p.m. in room 121 of the Moscone Center. (www.ofcconference.org/)
This work was recently published in Applied Physics Letters: Liu, A. Y., et al. "High performance continuous wave 1.3 μm quantum dot lasers on silicon." Applied Physics Letters, 104, 041104 (2014)
Journal reference: Applied Physics Letters search and more info website