Showing posts with label Humboldt University. Show all posts
Showing posts with label Humboldt University. Show all posts

Tuesday, December 15, 2015

Isolating water's impact on vibrations within DNA


http://phys.org/news/2015-12-isolating-impact-vibrations-dna.html

In a biological system, the ratio of water-to-non-water molecules, known as the hydration level, influences both the arrangement of biomolecules and the strength of the electric interactions that occur between biomolecules, free ions, and functional groups, which are groups of atoms within molecules that strongly influence the molecules' chemical properties. To isolate the contribution of water to the vibrational fluctuations that occur between DNA, bulk water, and the charged biomolecular interface between the two, researchers at the Max-Born Institute for Nonlinear Optics and Short Pulse Spectroscopy in Berlin have performed two-dimensional spectroscopic analyses on double-stranded DNA helices at different hydration levels.

The analysis gives insight into the way  and DNA interact, which could ultimately help scientists understand how biological systems function at the molecular level and what goes wrong when adverse conditions cause the systems to fail.

Two-dimensional infrared spectroscopy is a laser technique used to map correlated vibrations, the basic oscillatory motions of atoms, and their fluctuations into observable data.
The researchers used an amplified titanium-sapphire laser system to generate a sequence of four femtosecond infrared pulses in the low-frequency range that corresponds to the vibrational modes of DNA's sugar-phosphate backbones between 920 and 1120 cm-1. They found that the spectra give evidence of both ultrafast structural fluctuations and a broadening of vibrational transitions, which reflects the structural disorder and variation of hydrogen bonding at the DNA-water interface.
"We were looking for probes which are most sensitive to dynamics at the [DNA-water] interface and noninvasive, leaving the structure of the interface unchanged," said Thomas Elsaesser, director of the institute and a professor of experimental physics at Humboldt University of Berlin. "We concluded that [DNA] backbone modes would be interesting candidates, as their elongations are at the interface and they should be sensitive to local electric fields."
Elsaesser and his colleagues at the Max-Born Institute detail their investigations this week in Structural Dynamics.
Their current work builds on a seminal paper published in Nature in 2005 - with the collaboration of Dwayne Miller's group at the University of Toronto - which reported the first two-dimensional spectra of bulk water and established the basic time scales of the structural fluctuations that determine the lineshapes of vibrations.
For DNA, dehydration induces a transition from the traditional B-helix form to the A-helix form, the second most common shape. To determine the vibrational contribution of a system's hydration level, Elsaesser and his colleagues spectroscopically examined DNA strands at 0% humidity and 92% humidity, which correspond to around 2 and 20 water molecules per base pair, respectively.
By analyzing the two-dimensional spectral lineshapes, the researchers found that the hydrated DNA strands display structural fluctuations on a sub-picosecond time scale - less than a trillionth of a second - and that the structural disorder of local arrangements of water and DNA functional groups persists for time scales longer than 10 picoseconds, leaving water-DNA hydrogen bonds intact. Additionally, they found that although the arrangement of interfacial water molecules fluctuates at a slower rate compared to bulk water, it makes a substantial contribution to the sub-picosecond fluctuations, along with the low-frequency motions of the DNA helix.
They also noticed a pronounced coupling of the different, partly delocalized backbone modes. According to Elsaesser, this results in an energy transfer between the modes on a time scale of a few picoseconds.
Future work for Elsaesser and his colleagues includes extending their investigation toward longer natural DNA and RNA systems, such as DNA from salmon testes in a full water environment, as well as investigating the terahertz spectroscopy of low frequency motions and electric interactions.
More information: Biswajit Guchhait et al. Ultrafast vibrational dynamics of the DNA backbone at different hydration levels mapped by two-dimensional infrared spectroscopy, Structural Dynamics (2016). DOI: 10.1063/1.4936567


Monday, April 28, 2014

New Record for Quantum-cascade Laser Operation Temperature



Laser chip mounted on a heat sink. The chip with several terahertz quantum-cascade lasers is soldered in the middle of a U-shaped contact pad with attached electrical leads. Courtesy of PDI

By: Forschungsverbund Berlin e.V. (FVB)
http://www.scientificcomputing.com/news/2014/04/new-record-quantum-cascade-laser-operation-temperature

For the observation of cold matter in the interstellar medium, astronomers need instruments for the detection of terahertz radiation. Specific high-resolution instruments are based on terahertz quantum-cascade lasers, but operate only at cryogenic temperatures. Physicists have now developed a terahertz quantum-cascade laser, which operates at significantly higher temperatures than previously achieved. The new development allows for the use of more compact cooling systems — also reducing the obstacles for many other applications.
The wavelengths of terahertz radiation lie between the microwave and infrared range. It penetrates many materials such as plastics and clothes. At the same time, terahertz radiation is — due to its small energy — non-ionizing and not dangerous for people. Applications of terahertz radiation include non-destructive material testing and safety checks at airports.
For astronomers, terahertz radiation provides new insights in the investigation of so-called cold matter. This kind of matter does not emit visible light such as the stars, but electromagnetic radiation in the infrared to microwave range. The German Aerospace Center (DLR) measures such emission lines with high precision within the US-German SOFIA project. Due to the Doppler shift of the detected frequencies, the researchers can determine the velocity of the motion of cold matter through the galaxy. To reduce the absorption by water in the earth atmosphere, the measurements are carried out from an airplane. One key element of the detector system is a quantum-cascade laser developed at the PDI.
In a joint project funded by the Investitionsbank Berlin, researchers  at the Paul Drude Institute (PDI) in Berlin have developed a compact quantum-cascade laser system. The partners in this project were in addition to the PDI the Ferdinand Braun Institute in Berlin, the Humboldt University in Berlin, and the company Eagleyard Photonics located also in Berlin.
“One problem of the lasers are the low operating temperatures, which are typically even below the temperature of liquid nitrogen  of 77 Kelvin or -196 °C for continuous-wave  operation”, explains Martin Wienold from the PDI. “We achieved a new record: our lasers operate up to 129 Kelvin (-144 °C) improving the previous record by more than 10 degrees.” This is still rather cold, “but, in combination with a significantly reduced power dissipation of the new lasers, it allows for the use of much smaller mechanical coolers. Thereby, we will be able to reduce the size of systems based on terahertz quantum-cascade lasers in the future — an important point for flight missions such as SOFIA”, Wienold emphasizes.
The physicists at the PDI achieved the high operating temperatures by developing a semiconductor heterostructure, which requires only a very low driving power. The laser ridge is only about 10-15 microns high and 15 microns wide, while the emission wavelength is about 100 microns. The active region is confined by two metal layers, which are almost perfect mirrors in the terahertz range. This combination results in very low power dissipation and operation at low current densities and voltages.
“However, there has been an additional problem”, explains Martin Wienold: “We achieved relatively high operating temperatures, but the strong spatial confinement of the light in the laser resulted in an extremely divergent beam profile”. The physicists solved the problem by applying a concept from the early days of radio broadcasting. A grating on top of the laser ridge — a so-called third-order grating — acts as a directive antenna, which collimates the laser emission. “We are currently working on achieving even higher operating temperatures”, says Wienold. “However, room temperature operation will become difficult to achieve because of some physical limits.”
Quantum-cascade laser
Quantum-cascade lasers differ from common diode lasers by its structure and the involved physical processes. Typical diode lasers emit light, when electrons from the conduction band recombine with holes from the valence band. Upon recombination, a photon is emitted with the energy of approximately the semiconductors energy gap. Since the energy gap is determined by the used semiconductor material, the wavelength of a diode laser is basically determined by the material.
In a quantum-cascade laser, the electron remains in the conduction band, and the laser transitions takes place between two confined subband states within the conduction band. This performance is achieved by alternating extremely thin semiconductor layers, resulting in so-called potential wells in the conduction band. When an electric field is applied, the electrons move from an energetically higher lying potential well to an energetically lower lying potential well via the quantum mechanical tunneling effect. The electrons tumble down from one potential well to the next potential well in such a way, as falling down a staircase.
Citation: High-temperature, continuous-wave operation of terahertz quantum-cascade lasers with metal-metal waveguides and third-order distributed feedback. M. Wienold, B. Röben, L. Schrottke, R. Sharma, A. Tahraoui, K. Biermann, and H. T. Grahn.Optics Express, Vol. 22, Issue 3, pp. 3334-3348 (2014) http://www.opticsinfobase.org/oe/abstract.cfm?uri=oe-22-3-3334