Showing posts with label University of Alberta. Show all posts
Showing posts with label University of Alberta. Show all posts

Wednesday, April 22, 2020

Terahertz science discloses the ultrafast photocarrier dynamics in carbon nanotubes


Comparison of computed peak values of THz emission and photocurrent with experimental data.CREDIT @2020 American Chemical Society
https://www.eurekalert.org/pub_releases/2020-04/ou-tsd042020.php
OSAKA UNIVERSITY
A team of researchers from Osaka University, TU Wien, Nanyang Technological University, Rice University, University of Alberta and Southern Illinois University-Carbondale comes closer to unraveling the physics of quasiparticles in carbon nanotubes.
Carbon nanotubes (CNTs), a model one-dimensional (1D) material made up entirely of carbon atoms, have attracted considerable attention ever since their discovery because of the unique properties arising from quantum confinement effects. CNTs have been labeled as one of the materials for next-generation optoelectronic devices. Critical towards this advancement is understanding how quasiparticles - theoretical particles used to describe observable phenomena in solids - behave and interact with each other in a 1D system. This requires a fundamentally different model compared to a conventional 3D material like silicon as a consequence of the reduced dimensionality in CNTs.
"It was difficult to develop a terahertz radiation device with an external high electric field in a specific direction to CNT," says corresponding author Masayoshi Tonouchi.
By combining different experimental techniques, the team was able to directly probe the creation of free charge carriers in CNTs at different time scales after photoexcitation. Very complex interactions that involve different quasiparticles occur after the initial photoexcitation. These processes change over time, and being able to probe one of the quasiparticles makes it easier to understand the whole process.
Together with state-of-the-art simulations, the team was able to identify two key mechanisms that explain their data and helped them develop a detailed microscopic model describing quasiparticle interactions in a strong electric field in CNTs.
"We proposed a model in which electron-hole bound quasiparticles excited in the high energy E22 exciton band diverge to the low energy band and play a role in ultrafast electrical conduction. This model successfully explained the experimental facts and led to the clarification of the physical properties of CNTs."
Their results shed light on a number of long-standing issues in CNT ultrafast dynamics, moving us closer towards the realization of advanced optoelectronics based on CNTs and other low-dimensional materials.
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The article, "Terahertz Excitonics in Carbon Nanotubes: Exciton Autoionization and Multiplication," was published in ACS Nano Letters at DOI: https://doi.org/10.1021/acs.nanolett.9b05082.

Tuesday, February 21, 2017

New window into the nanoworld



This is Vedran Jelic, PhD student at the University of Alberta and lead author on a new paper pioneering microscopy at terahertz frequencies.CREDIT Photo by John Ulan for the University of Alberta

Scientists combine the ultra-fast with the ultra-small to pioneer microscopy at terahertz frequencies
https://www.eurekalert.org/multimedia/pub/133744.php
For the first time ever, scientists have captured images of terahertz electron dynamics of a semiconductor surface on the atomic scale. The successful experiment indicates a bright future for the new and quickly growing sub-field called terahertz scanning tunneling microscopy (THz-STM), pioneered by the University of Alberta in Canada. THz-STM allows researchers to image electron behaviour at extremely fast timescales and explore how that behaviour changes between different atoms.
"We can essentially zoom in to observe very fast processes with atomic precision and over super fast time scales," says Vedran Jelic, PhD student at the University of Alberta and lead author on the new study. "THz-STM provides us with a new window into the nanoworld, allowing us to explore ultrafast processes on the atomic scale. We're talking a picosecond, or a millionth millionth of a second. It's something that's never been done before."
Jelic and his collaborators used their scanning tunneling microscope (STM) to capture images of silicon atoms by raster scanning a very sharp tip across the surface and recording the tip height as it follows the atomic corrugations of the surface. While the original STM can measure and manipulate single atoms--for which its creators earned a Nobel Prize in 1986--it does so using wired electronics and is ultimately limited in speed and thus time resolution.
Modern lasers produce very short light pulses that can measure a whole range of ultra-fast processes, but typically over length scales limited by the wavelength of light at hundreds of nanometers. Much effort has been expended to overcome the challenges of combining ultra-fast lasers with ultra-small microscopy. The University of Alberta scientists addressed these challenges by working in a unique terahertz frequency range of the electromagnetic spectrum that allows wireless implementation. Normally the STM needs an applied voltage in order to operate, but Jelic and his collaborators are able to drive their microscope using pulses of light instead. These pulses occur over really fast timescales, which means the microscope is able to see really fast events.
By incorporating the THz-STM into an ultrahigh vacuum chamber, free from any external contamination or vibration, they are able to accurately position their tip and maintain a perfectly clean surface while imaging ultrafast dynamics of atoms on surfaces. Their next step is to collaborate with fellow material scientists and image a variety of new surfaces on the nanoscale that may one day revolutionize the speed and efficiency of current technology, ranging from solar cells to computer processing.
"Terahertz scanning tunneling microscopy is opening the door to an unexplored regime in physics," concludes Jelic, who is studying in the Ultrafast Nanotools Lab with University of Alberta professor Frank Hegmann, a world expert in ultra-fast terahertz science and nanophysics.
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Their findings, "Ultrafast terahertz control of extreme tunnel currents through single atoms on a silicon surface," appeared in the February 20 issue of Nature Physics.

Wednesday, January 6, 2016

Intense Terahertz Pulses Cause DNA Damage But Also Induce DNA Repair

My Note: This piece is a little dated, but I just came across it, and thought it was worth including on the DNA damage question. Happy New Year to everyone!




Source : The Optical Society
Biomedical Optics Express research details how terahertz pulses that destroy skin tissue at the same time increase tumor-suppressing proteins
Terahertz (THz) radiation, a slice of the electromagnetic spectrum that occupies the middle ground between microwaves and infrared light, is rapidly finding important uses in medical diagnostics, security, and scientific research. As scientists and engineers find evermore practical uses for this form of radiation, questions persist about its potential human health risks.
New research performed on lab-grown human skin suggests that short but powerful bursts of THz radiation may both cause DNA damage and increase the production of proteins that help the body fight cancer. The findings, which are the result of a collaboration between physicists at the University of Alberta and molecular biologists at the University of Lethbridge in Canada, are published today in the Optical Society's (OSA) open-access journal Biomedical Optics Express.
"While these investigations of the biological effects of intense THz pulses are only just beginning," said Lyubov Titova, with the University of Alberta and a member of the research team, "the fact that intense THz pulses can induce DNA damage but also DNA repair mechanisms in human skin tissue suggests that intense THz pulses need to be evaluated for possible therapeutic applications."
THz photons, like their longer wavelength cousins in the microwave range, are not energetic enough to break the chemical bonds that bind DNA together in the nucleus of cells. These waves, however, have just the right frequency to energize water molecules, causing them to vibrate and produce heat, which is why microwave ovens are so efficient at cooking food. For this reason, it was believed that heat-related injuries were the principal risks posed by THz radiation exposure.
Recent theoretical studies, however, suggest that intense THz pulses of picosecond (one trillionth of a second) duration may directly affect DNA by amplifying natural vibrations (the so-called "breathing" mode) of the hydrogen bonds that bind together the two strands of DNA. As a result, "bubbles" or openings in DNA strands can form. According to the researchers, this raised the question: "Can intense THz pulses destabilize DNA structure enough to cause DNA strand breaks?"
As shown in earlier animal cell culture studies, THz exposure may indeed affect biological function under specific conditions such as high power and extended exposure. There is, however, a vast gulf between animal research and conclusions that can be drawn about human health.
In a first of its kind study, the Canadian researchers exposed laboratory-grown human skin tissue to intense pulses of THz electromagnetic radiation and have detected the telltale signs of DNA damage through a chemical marker known as phosphorylated H2AX. At the same time, they observed THz-pulse induced increases in the levels of multiple tumor suppressor and cell-cycle regulatory proteins that facilitate DNA repair. This may suggest that DNA damage in human skin arising from intense picosecond THz pulse exposure could be quickly and efficiently repaired, therefore minimizing the risk of carcinogenesis.
The researchers used a skin tissue model made of normal, human-derived epidermal and dermal cells. This tissue is able to undergo mitosis (cell division) and is metabolically active, thus providing an appropriate platform for assessing the effects of exposure to high intensity THz pulses on human skin. For their study, Titova and her colleagues exposed the skin tissue to picosecond bursts of THz radiation at levels far above what would typically be used in current real-world applications. They then studied the sample for the presence of phosphorylated H2AX, which "flags" the DNA double strand break site and attracts cellular DNA repair machinery to it.
"The increase in the amount of phosphorylated H2AX in tissues exposed to intense THz pulses compared to unexposed controls indicated that DNA double strand breaks were indeed induced by intense THz pulses," observed Titova. Once DNA breaks occur, they can eventually lead to tumors if unrepaired. "This process," she continued, "is very slow and cells have evolved many effective mechanisms to recognize damage, pause cell cycle to allow time for damage to be repaired, and – in case repair is unsuccessful – to prevent damage accumulation by inducing apoptosis, or programmed cell death of the affected cell."
The researchers confirmed that these cellular repair mechanisms were taking place by detecting an elevated presence of multiple proteins that play vital roles in DNA repair, including protein p53 (often called "a guardian of the genome"); p21, which works to stop cell division to allow time for repair; protein Ku70, which helps reconnect the broken DNA strands; and several other important cell proteins with known tumor-suppressor roles. These observations indicate that exposure to intense THz pulses activates cellular mechanisms that repair DNA damage. However, the researchers note, it is too soon to make predictions on the long-term implications of exposure.
"In our study we only looked at one moment in time – 30 minutes after exposure," Titova said. "In the future, we plan to study how all the observed effects change with time after exposure, which should allow us to establish how quickly any induced damage is repaired."
The Canadian researchers hope to explore the potential therapeutic effects of intense THz radiation exposure to see if directed treatment with intense THz pulses can become a new tool to fight cancer.
###
Paper: "Intense THz pulses cause H2AX phosphorylation and activate DNA damage response in human skin in vivo," Titova, L. V. et al., Biomedical Optics Express, Vol. 4, Issue 4, pp. 559-568 (2013) (link: http://www.opticsinfobase.org/boe/abstract.cfm?URI=boe-4-4-559).

Thursday, June 25, 2015

Ultrafast imaging of terahertz Cherenkov waves and transition-like radiation in LiNbO3


Spotlight Summary by József A. Fülöp 

https://www.osapublishing.org/spotlight/summary.cfm?URI=oe-23-6-8073

Visualizing a phenomenon is often an important driving force for scientific results and new measurement techniques. It is probably the best way also for learning and understanding. The work of Frank Hegmann’s group on ultrafast imaging of terahertz (THz) waves in lithium niobate (LiNbO3) benefits both technology and understanding.

The researchers at University of Alberta in Edmonton, Canada, applied a technique developed about one and half decades ago to map the generation and propagation of THz Cherenkov waves and what they call transition-like THz radiation in LiNbO3, a nonlinear material commonly used for THz pulse generation. The technological novelty in the work is the use of phase contrast imaging to visualize the full profile of the THz Cherenkov cone in bulk LiNbO3 in a transverse imaging geometry, where an expanded optical probe (imaging) beam travels in a direction perpendicular to the optical pump pulse generating the THz radiation. The THz electric field modulates the phase of the optical probe pulse and the phase modulation is converted to amplitude modulation through Talbot imaging, where the camera is moved out of the image plane of the sample. Talbot imaging is easy to set up and yields qualitative field images.

Ultrafast phase-contrast imaging can find applications in the development and optimization of pulsed optical or THz sources. The technique enables the direct observation and visualization of various nonlinear optical interaction processes. For example, one of the most widely used methods for the generation of intense THz pulses is optical rectification of femtosecond pulses with tilted pulse front. Such sources use a combination of a diffraction grating and imaging optics to generate the pump pulse-front tilt. Imaging can introduce distortions which limit the useful pumped area and therefore the achievable THz pulse energy. Ultrafast phase-contrast imaging can help to measure and minimize such distortions by providing a direct and easy-to-interpret method, superior, for example, to measuring the output beam characteristics of the THz radiation.

Last, but not least, I would like to emphasize the educational value of the work. The scheme is very well suited for an advanced student laboratory course where a suitable femtosecond laser is available. It can help students to get acquainted with important concepts like pulse front tilt or (non-collinear) phase matching.

Wednesday, April 3, 2013

Terahertz Pulses Simultaneously Kills Skin Tissue, Increases Tumor-Suppressing Proteins


My Note: Yet one more interesting article on the recent paper from the University of Alberta, University of Edmonton, about the health effect of exposure to very high levels of THz photons
By BiotechDaily International staff writers
Posted on 01 Apr 2013

http://www.biotechdaily.com/lab_technologies/articles/294745472/terahertz_pulses_simultaneously_kills_skin_tissue_increases_tumorsuppressing_proteins.html

Terahertz (THz) radiation, a sliver of the electromagnetic spectrum that lies in the middle region between microwaves and infrared light, is providing significant benefits in medical diagnostics and scientific research.

As scientists and engineers find more real-world uses for this type of radiation, however, questions remain about its potential human health risks. New research performed on lab-grown human skin suggests that short but powerful bursts of THz radiation may both cause DNA damage and increase the production of proteins that help the body fight cancer. The findings, which are the result of a collaboration between physicists at the University of Alberta (Edmonton, Canada) and molecular biologists at the University of Lethbridge (Lethbridge, Canada) was published March 18, 2013, in the Optical Society’s (OSA) open-access journal Biomedical Optics Express.

“While these investigations of the biological effects of intense THz pulses are only just beginning,” said Dr. Lyubov Titova, with the University of Alberta and a member of the research team, “the fact that intense THz pulses can induce DNA damage but also DNA repair mechanisms in human skin tissue suggests that intense THz pulses need to be evaluated for possible therapeutic applications.”

THz photons, similar to their longer wavelength cousins in the microwave range, are not strong enough to disrupt the chemical ties that bind DNA together in the nucleus of cells. These waves, however, have just the right frequency to galvanize water molecules, causing them to vibrate and generate heat, which is why microwave ovens are so effective at cooking food. For this reason, it was believed that heat-related injuries were the primary risks posed by THz radiation exposure.

Recent theoretic studies, however, suggest that intense THz pulses of picosecond (one trillionth of a second) duration may directly affect DNA by amplifying natural vibrations (so-called “breathing” mode) of the hydrogen bonds that bind together the two strands of DNA. As a result, “bubbles” (openings in DNA strands) can form. According to the researchers, this brought up the question if intense THz pulses can destabilize DNA structure enough to cause DNA strand breaks.

As shown in earlier animal cell culture studies, THz exposure may indeed affect biologic function under specific conditions such as high power and extended exposure. There is, however, a huge gap between animal research and conclusions that can be drawn about human health.

In a first of its kind study, the Canadian researchers exposed laboratory-grown human skin tissue to intense pulses of THz electromagnetic radiation and have detected the telltale signs of DNA damage through a chemical marker known as phosphorylated H2AX. At the same time, they observed THz-pulse induced increases in the levels of multiple tumor-suppressor and cell-cycle regulatory proteins that facilitate DNA repair. This may suggest that DNA damage in human skin arising from intense picosecond THz pulse exposure could be quickly and effectively repaired, therefore lessening the risk of carcinogenesis.

The researchers used a skin tissue model made of healthy, human-derived epidermal and dermal cells. This tissue is able to undergo mitosis and is metabolically active, thus providing a suitable platform for assessing the effects of exposure to high intensity THz pulses on human skin. For their study, Dr. Titova and her colleagues exposed the skin tissue to picosecond bursts of THz radiation at levels far above what would typically be used in current real-world applications. They then examined the sample for the presence of phosphorylated H2AX, which “flags” the DNA double-strand break site and attracts cellular DNA repair machinery to it.

“The increase in the amount of phosphorylated H2AX in tissues exposed to intense THz pulses compared to unexposed controls indicated that DNA double strand breaks were indeed induced by intense THz pulses,” noted Dr. Titova. Once DNA breaks occur, they can ultimately lead to tumors if unrepaired. “This process,” she continued, “is very slow and cells have evolved many effective mechanisms to recognize damage, pause cell cycle to allow time for damage to be repaired, and—in case repair is unsuccessful—to prevent damage accumulation by inducing apoptosis, or programmed cell death of the affected cell.”

The researchers validated that these cellular repair mechanisms were taking place by detecting an elevated presence of multiple proteins that play vital roles in DNA repair, including protein p53 (frequently called “a guardian of the genome”); p21, which works to stop cell division to allow time for repair; protein Ku70, which helps reconnect the broken DNA strands; and several other important cell proteins with known tumor-suppressor roles. These observations indicate that exposure to intense THz pulses activates cellular processes that repair DNA damage. However, the researchers noted, it is too soon to make forecasts on the long-term implications of exposure.

“In our study we only looked at one moment in time—30 minutes after exposure,” Dr. Titova said. “In the future, we plan to study how all the observed effects change with time after exposure, which should allow us to establish how quickly any induced damage is repaired.”

The Canadian researchers hope to study the potential therapeutic effects of intense THz radiation exposure to see if directed treatment with intense THz pulses can become a new approach to combat cancer.

Related Links:

University of Alberta
University of Lethbridge

Thursday, March 21, 2013

Terahertz Radiation Increases Production of Proteins to Fight Cancer but also Damages DNA

http://www.medindia.net/news/terahertz-radiation-increases-production-of-proteins-to-fight-cancer-but-also-damages-dna-115920-1.htm

My note: Here is one more article on one of the most intriguing THz discoveries in recent memory.

A new study has found that Terahertz (THz) radiation, a section of electromagnetic spectrum between microwave and infrared light, may be effective in fighting cancer by increasing the production of proteins that aid the immune system in fighting the cancer cells. But the issue is that this can also lead to DNA damage.


The findings, which are the result of a collaboration between physicists at the University of Alberta and molecular biologists at the University of Lethbridge in Canada, are published today in the Optical Society's (OSA) open-access journal Biomedical Optics Express


"While these investigations of the biological effects of intense THz pulses are only just beginning," said Lyubov Titova, with the University of Alberta and a member of the research team, "the fact that intense THz pulses can induce DNA damage but also DNA repair mechanisms in human skin tissue suggests that intense THz pulses need to be evaluated for possible therapeutic applications." 


THz photons, like their longer wavelength cousins in the microwave range, are not energetic enough to break the chemical bonds that bind DNA together in the nucleus of cells. These waves, however, have just the right frequency to energize water molecules, causing them to vibrate and produce heat, which is why microwave ovens are so efficient at cooking food. For this reason, it was believed that heat-related injuries were the principal risks posed by THz radiation exposure. 


Recent theoretical studies, however, suggest that intense THz pulses of picosecond (one trillionth of a second) duration may directly affect DNA by amplifying natural vibrations (the so-called "breathing" mode) of the hydrogen bonds that bind together the two strands of DNA. As a result, "bubbles" or openings in DNA strands can form. According to the researchers, this raised the question: "Can intense THz pulses destabilize DNA structure enough to cause DNA strand breaks?" 


As shown in earlier animal cell culture studies, THz exposure may indeed affect biological function under specific conditions such as high power and extended exposure. There is, however, a vast gulf between animal research and conclusions that can be drawn about human health. 


In a first of its kind study, the Canadian researchers exposed laboratory-grown human skin tissue to intense pulses of THz electromagnetic radiation and have detected the telltale signs of DNA damage through a chemical marker known as phosphorylated H2AX. At the same time, they observed THz-pulse induced increases in the levels of multiple tumor suppressor and cell-cycle regulatory proteins that facilitate DNA repair. This may suggest that DNA damage in human skin arising from intense picosecond THz pulse exposure could be quickly and efficiently repaired, therefore minimizing the risk of carcinogenesis. 




Source-Eurekalert