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Showing posts with label Berkeley Lab. Show all posts
Showing posts with label Berkeley Lab. Show all posts

Thursday, April 27, 2023

Research on Light Emission From Black Phosphorus Hints at New Applications

 Berkeley Lab News Release:


A material known for its electronic properties could find a use in night vision, gas sensing, and spectroscopy technologies
MEDIA RELATIONS | (510) 486-5183 | APRIL 27, 2023
Two scientists with short black hair prepare some samples on a spectroscopy instrument that is on the right of the frame.
Naoki Higashitarumizu and Ali Javey prepare samples for infrared spectroscopy at UC Berkeley. (Credit: Thor Swift/Berkeley Lab)
Energy efficient LEDs (light emitting diodes) have begun to replace many types of lighting both indoor and outdoor. A key reason for the rise of LEDs has been materials research that greatly improved the quality and intensity of light achievable with these devices. But those materials must be handled with very high levels of precision, including surfaces that are as defect-free as possible. 

 “They're more efficient and last longer,” said Lawrence Berkeley National Laboratory (Berkeley Lab) Senior Faculty Scientist Ali Javey, of the materials that comprise today’s LED devices, “but to get good efficiencies, you really have to treat the [material] surfaces to perfection - you have to watch and control the surface chemistry and even then, you still have some light losses.” Javey is also a professor of electrical engineering and computer sciences at the University of California, Berkeley.

Javey and his team said their recent research on black phosphorus (BP) – a material of interest for its electronic properties – reveals a tantalizing capability for light emission at the BP surface. 

It turns out that extremely thin layers of BP can be stimulated to emit useful quantities of light in specific wavelengths. What’s more, it will do so without regard to the surface. In fact, they can even let BP oxidize (think rust) and it will still emit light in the mid infrared (IR) without any loss of efficiency. 

“We don't do anything special to the surface. We don't do any special chemistry. We don't put down any special protection layers,” he said.

The Javey team published their findings in the journal Nature Nanotechnology

The work is both a fundamental discovery about the properties of BP, and it suggests exciting prospects for applications.

“Black phosphorus is really good for midwave IR light emission and detection,” Javey said. “Our group and others have shown very bright midwave IR LEDs before. Mid-IR LEDs using conventional semiconductors are not very efficient due to fundamental materials properties. BP has an inherent advantage in that wavelength range.”

The mid-IR range is of interest for applications in night vision, sensing, spectroscopy, and more, Javey continued. “Our findings emphasize the unique material characteristics of layered materials for novel optoelectronic applications such as light-emitting devices and photodetectors.” 

Getting Light from Thin Black Phosphorus

The Javey lab has been investigating the “magical properties” of BP for some time. In 2022, they reported that, under mechanical strain, BP can be induced to emit or detect infrared (IR) light dynamically in a range of desirable wavelengths – 2.3 to 5.5 micrometers, which spans the short- to mid-wave infrared – and to do so reversibly at room temperature.

“In this new paper, we look at how the light emission mechanism changes when we change the thickness of BP,” said co-author Shiekh Uddin. In thick units of BP, electrons and holes – that is, negatively and positively charged particles – can generate light when they collide with each other.”

Thinned below a few nanometers, however, the electrons and holes at the BP surface are so confined that they combine like magnets drawn together in a pocket. This excited state, called exciton, emits the light more efficiently than isolated electrons and holes. 

“Importantly, we find the surface is less detrimental to the luminescence efficiency owing to the inherent crystal structure of BP,” said co-author Naoki Higashitarumizu. It turns out that BP has an unusually low surface recombination velocity. That is a measure of how quickly carriers — electrons or holes — are lost on the material’s surface without generating light. 

In fact, the surface recombination velocity of BP is two orders of magnitude lower than for other materials, Uddin said. This is true even when the surface has been oxidized or damaged due to environmental exposure. As a result, we can achieve bright-light emission even when BP is made very thin. 

Moving forward, Javey said, “We believe the low surface recombination is not limited to BP but should also be applicable to other layered materials with similar crystal structures.”

Berkeley Lab Faculty Scientist Eran Rabani, who is a UC Berkeley professor of chemistry; along with graduate research assistants Daniel Weinberg, I. K. M. Reaz Rahman, and Vivian Wang, also contributed to the work. Other coauthors include researchers from the University of Melbourne, Australia.

The research was supported by the Department of Energy’s Office of Science.
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Friday, April 7, 2023

7 Ways Berkeley Lab Researchers Improve Health for All

 Berkeley Lab News Release:


In honor of World Health Day on April 7, here’s how our researchers are tackling COVID, cancer, infections, and beyond
MEDIA RELATIONS | (510) 486-5183 | APRIL 7, 2023
“Health for all” is the theme of this year’s World Health Day, celebrated on April 7. It’s also a theme for many researchers at the Department of Energy’s Lawrence Berkeley National Laboratory (Berkeley Lab). Their work is advancing how we treat cancer, develop antibiotics, diagnose diseases, cope with COVID, and more.
 
Here are seven ways Berkeley Lab researchers are working toward health for all:
 

Bacteriophages, the viruses that infect bacteria, could be the key to combating drug-resistant bacterial infections. These tiny viruses have evolved potent protein weapons that are deadly to their host strain, but harmless to human cells. Studying phages can be challenging and slow going, because these entities are difficult to isolate from the environment and examine in a lab. Our researchers have developed fast and efficient techniques to discover and characterize phages and their proteins, so we can expedite the development of new antibiotics.
 
 
Researchers have developed a new machine learning tool that sheds light on the wide range of chronic COVID symptoms, and can identify strong correlations between different long COVID subtypes and pre-existing conditions such as diabetes and hypertension. This research will help improve our understanding of how and why some individuals develop long COVID symptoms and may enable more effective treatments by helping clinicians develop tailored therapies for each group.
 
 
Researchers from Berkeley Lab and Heidelberg University in Germany cranked up the speed of studying infected cells using a microscopic imaging technique that can generate incredibly detailed 3-D scans. Their approach takes mere minutes to gather data that would require weeks of prep and analysis with other methods, giving scientists an easy way to examine how our cells respond to pathogens (such as SARS-CoV-2) and how the cells respond to drugs. Their approach also chemically kills and preserves the cells, which allows many labs to safely image infected cells without the inherent risks of working with live infected cells.
 
 
Biologists and physicists at Berkeley Lab have teamed up to create new opportunities for cancer treatment using laser-generated proton beams. The ongoing project seeks to make a more effective type of radiation therapy more readily available to patients. Researchers are also investigating the potential benefit of using accelerators to deliver proton beam radiation therapy at ultrahigh doses within extremely short exposure times – a technique called FLASH radiotherapy. Though the approach remains experimental for now, FLASH radiotherapy could change the landscape of radiation oncology.
 
 
Synthetic biology pioneer Jay Keasling was part of an international team that engineered yeast to produce the precursor molecules for the chemotherapy drug vinblastine. Previously, the drug could only be obtained in trace concentrations from the native plant that produces it, and hundreds of pounds of leaves were needed to make one dose. The breakthrough ensures that the supply of this plant-derived anti-cancer drug can finally meet global demand.


A technology developed by scientists at Berkeley Lab shows great promise for diagnosing Alzheimer’s disease before symptoms arise, potentially changing the course of research and treatment for this condition, which affects millions of people worldwide and is estimated to be the sixth leading cause of death in the United States. By combining infrared light analysis and machine learning, the new, non-invasive testing process shows potential to break barriers in disease detection.


Researchers at Berkeley Lab have found strong evidence that indoor environmental controls – such as ventilation, filtration, airflow management, and UV light disinfection – can effectively reduce the spread of virus transmission, making it safer for us to share spaces as we navigate a post-Covid world. The researchers thoroughly reviewed the state of the science for several key building technologies strategies to reduce airborne infection risk.
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Founded in 1931 on the belief that the biggest scientific challenges are best addressed by teams, Lawrence Berkeley National Laboratory and its scientists have been recognized with 16 Nobel Prizes. Today, Berkeley Lab researchers develop sustainable energy and environmental solutions, create useful new materials, advance the frontiers of computing, and probe the mysteries of life, matter, and the universe. Scientists from around the world rely on the Lab’s facilities for their own discovery science. Berkeley Lab is a multiprogram national laboratory, managed by the University of California for the U.S. Department of Energy's Office of Science.
 
DOE's Office of Science is the single largest supporter of basic research in the physical sciences in the United States, and is working to address some of the most pressing challenges of our time. For more information, please visit energy.gov/science.

Monday, February 27, 2023

New DESI planetarium show to premier in 2023

 Berkeley Lab News:


“5000 Eyes: Mapping the Universe with DESI” presents a fly-through of the project’s first year of data
MEDIA RELATIONS | (510) 486-5183 | FEBRUARY 27, 2023
DESI atop Kitt Peak. (Photo: Marilyn Sargent/Berkeley Lab)
– By Marsha Fenner

This spring, a stunning new documentary film featuring recent discoveries from the Dark Energy Spectroscopic Instrument (DESI) will be released to planetariums worldwide. 

5000 Eyes: Mapping the Universe with DESI is a new feature-length planetarium show created in collaboration with DESI‘s consortium of worldwide collaborators, a dedicated group of scientists and engineers who are creating the most complete map of our universe. 
DESI is a unique instrument – comprising 5000 robotically positioned fibers that feed an array of ten high-efficiency spectrographs – to measure the effect of dark energy on the expansion of the Universe. By measuring the spectra of many galaxies at once, DESI’s five-year survey is mapping the large-scale structure of the universe over one-third of the sky and 11 billion years of cosmic history. DESI is an international science collaboration managed by the Department of Energy’s Lawrence Berkeley National Laboratory (Berkeley Lab) with primary funding for construction and operations from DOE’s Office of Science.

The 22-minute planetarium film provides a rare glimpse into modern cosmology by introducing viewers to DESI researchers and featuring original footage of the telescope and interviews with DESI scientists from all over the world. The film's exciting conclusion is a fly-through of DESI's first year of data. The positions of over 14 million extra-galactic objects are visualized in 3D for the first time, revealing the largest structures in the universe as never seen before. 

DESI Director, Michael Levi, a senior scientist in Berkeley Lab’s Physics Division, is enthusiastic about this new presentation: “I am very excited to be able to visualize the first year of data just taken by the instrument, now available to be seen in the film by scientists and the public alike. The quality of the three dimensional data is breathtaking in its beauty and ability to reveal the hidden large-scale structures of the Universe. The fly-through in the film lets the viewer peer back in time to billions of years ago.”

The film’s director, Claire Lamman, who joined DESI as a graduate student from Harvard University, has been working on the film since May 2020. “When you watch videos about observations in astronomy, ... you’re often seeing a very neat, distilled version of the actual process. Real data can be messy and there are so many small things to take into account – from the subtle ways that galaxies are oriented, to humidity and wind at the telescope. That’s why we need many different people, with many different specialties, to take on a project like this one.” 

According to Levi, “The DESI collaboration funded this production in part to give our early career scientists a means to express and share their excitement in doing world-class research. Their youthful exuberance comes through and I am thrilled for everyone to see it.” 
This new feature-length planetarium show, created by the Fiske Planetarium (University of Colorado Boulder), will be distributed for free to planetariums worldwide. There are currently plans to make the film available in 9 languages – English, Spanish, French, Mandarin, Catalan, Korean, Galician, German, and Portuguese – and all script translations are being made by DESI collaborators. The film will premiere at the Fiske on March 2, and at Oakland’s Chabot Space & Science Center on March 8. The film will then be freely available for download and showing to public audiences, and the Fiske Planetarium will also present a “flat” English version of the film, to be made freely accessible online on their Fiske Productions website and on YouTube.
DESI’s robotic “eyes” in a screenshot from the film.
DESI was originally proposed over a decade ago, and construction began in 2015 at the Mayall Telescope at Kitt Peak National Observatory near Tucson, Arizona. The DESI instrument saw first light in late 2019, and the validation phase was delayed at the onset of global coronavirus pandemic, but testing resumed in December 2020 and DESI finally launched in May 2021. During its first seven months, DESI broke all previous records for three-dimensional galaxy surveys, and then after another brief hiatus in late 2021 due to a massive wildfire on Kitt Peak which threatened the observatory, DESI resumed its cataloging of the cosmos.

DESI construction and its operations at the Mayall telescope are supported by the DOE Office of Science and by the National Energy Research Scientific Computing Center (NERSC), a DOE Office of Science user facility. Additional support for DESI is provided by the U.S. National Science Foundation, the Science and Technologies Facilities Council of the United Kingdom, the Gordon and Betty Moore Foundation, the Heising-Simons Foundation, the French Alternative Energies and Atomic Energy Commission (CEA), the National Council of Science and Technology of Mexico, the Ministry of Economy of Spain, and by the DESI member institutions. The DESI collaboration is honored to be permitted to conduct scientific research on Iolkam Du’ag (Kitt Peak), a mountain with particular significance to the Tohono O’odham Nation. View the full list of DESI collaborating institutions, and learn more about DESI here: www.desi.lbl.gov.
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Wednesday, April 7, 2021

Century-Old Problem Solved With First-Ever 3D Atomic Imaging of an Amorphous Solid

 From Berkeley Lab News:


With help from Berkeley Lab’s Molecular Foundry, UCLA-led study captures the structure of metallic glass
THERESA DUQUE | (510) 495-2418 | APRIL 6, 2021
At left, an experimental 3D atomic model of a metallic glass nanoparticle, 8 nanometers in diameter. Right: The 3D atomic packing of a supercluster within the structure. Differently colored balls represent different types of atoms. Berkeley Lab scientists’ invention of the highly stable sample holder for the Molecular Foundry’s award-winning Transmission Electron Aberration-corrected Microscope (TEAM 0.5) helped lay the foundation for the achievement reported in the current study. (Courtesy of Yao Yang and Jianwei “John” Miao/UCLA)
Note: This press release has been adapted from an original UCLA release. View the original release.

Glass, rubber and plastics all belong to a class of matter called amorphous solids. And in spite of how common they are in our everyday lives, amorphous solids have long posed a challenge to scientists. 

Since the 1910s, scientists have been able to map in 3D the atomic structures of crystals, the other major class of solids, which has led to myriad advances in physics, chemistry, biology, materials science, geology, nanoscience, drug discovery and more. But because amorphous solids aren’t assembled in rigid, repetitive atomic structures like crystals are, they have defied researchers’ ability to determine their atomic structure with the same level of precision. 

Now, a UCLA-led study in collaboration with the Molecular Foundry, a nanoscience user facility at the U.S. Department of Energy’s Lawrence Berkeley National Laboratory (Berkeley Lab), reports on the first-ever determination of the 3D atomic structure of an amorphous solid – in this case, a material called metallic glass. Their findings were reported in the journal Nature

“We combined state-of-the-art electron microscopy with powerful algorithms and analysis techniques to study structures down to the level of single atoms,” said co-author Peter Ercius, a staff scientist at the Molecular Foundry, where the experiment was conducted. “This is very similar to a medical CT (computed tomography) scan – except at the atomic level. Direct knowledge of amorphous structures at this level is a game changer for the physical sciences.”

“We know so much about crystals, yet most of the matter on Earth is non-crystalline and we know so little about their atomic structure,” said the study’s senior author, Jianwei “John” Miao, a UCLA professor of physics and astronomy and member of the California NanoSystems Institute at UCLA . “This study just opened a new door,” he added. 

Observing the 3D atomic arrangement of an amorphous solid has been Miao’s dream since he was a graduate student. That dream has now been realized, after 22 years of relentless pursuit.  

Metallic glasses tend to be both stronger and more shapeable than standard crystalline metals, and they are used today in products ranging from electrical transformers to high-end golf clubs and the housings for Apple laptops and other electronic devices. Understanding the atomic structure of metallic glasses could help engineers design even better versions of these materials, for an even wider array of applications.

The researchers used a technique called atomic electron tomography, a type of 3D imaging pioneered by Miao’s group at UCLA and staff scientists in the National Center for Electron Microscopy, a facility at the Molecular Foundry. The approach involves beaming electrons through a sample and collecting an image on the other side. The sample is rotated so that measurements can be taken from multiple angles, yielding data that is stitched together to produce a 3D image. 

The researchers examined a sample of metallic glass about 8 nanometers in diameter, made of eight different metals. (A nanometer is one-billionth of a meter.) Using 55 atomic electron tomography images, the researchers created a 3D map of the approximately 18,000 atoms that made up the nanoparticle. 

Because amorphous solids have been so difficult to characterize, the researchers expected the atoms to be arranged chaotically. And although about 85% of the atoms were in a disordered arrangement, the researchers were able to identify pockets where a fraction of atoms coalesced into ordered superclusters. The finding demonstrated that even within an amorphous solid, the arrangement of atoms is not completely random. 

Some of the metal atoms were so similar in size that electron imaging couldn’t distinguish between them. For the purposes of the study, the researchers grouped the metals into three categories, uniting neighbors from the periodic table of elements: cobalt and nickel in the first category; ruthenium, rhodium, palladium and silver in the second; and iridium and platinum in the third.  

“All properties of any material come from how the atoms are arranged together, and one vexing goal has been to image the 3D atomic structure of a material that is completely disordered,” said co-author Andreas Schmid, whose invention of the highly stable sample holder for the Molecular Foundry’s award-winning Transmission Electron Aberration-corrected Microscope (TEAM 0.5) helped lay the foundation for the achievement reported in the current study. “This really is a breakthrough. It’s exciting to see that we have finally achieved 3D atomic imaging of an amorphous material.”

Ercius attributes the current study’s success to the TEAM microscopes and to Berkeley Lab’s decades of experience in pushing the limits of electron tomography toward atomic resolution. Now that they have demonstrated 3D atomic imaging of a metallic glass, Ercius would like to use the technique to image the atoms of other amorphous materials – or atomic defects in metals for quantum information systems: “In a transistor or quantum qubit, how do we know which defects are good for performance, and which ones are bad? With this technique, we could potentially find out, and push the limits of Moore’s Law.” 

The Molecular Foundry is a DOE Office of Science user facility at Berkeley Lab.

The research was supported primarily by the STROBE National Science Foundation Science and Technology Center, of which Miao is deputy director, and in part by the U.S. Department of Energy.
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