Friday, March 8, 2019

Is it not very fascinating to know that Bacteria can possibly ‘eat pollution’ and emit electricity captured in hot springs for first time ?
Scientists hope ‘electrogenic’ microbes could one day be used to power devices.
Scientists hope to employ microbes to generate power
Tiny creatures that can “eat” pollution and generate electricity in the process have been captured for the first time.
Scientists trekked into the depths of Yellowstone National Park to extract these bacteria, which are adapted to living in geysers and hot springs that can reach over 90C.
The so-called “electrogenic” microbes were targeted due to their ability to produce power, which experts hope could be harnessed in the future to drive devices.
However, publishing their findings in the Journal of Power Sources, the scientists admitted this could be tricky because of the extreme environments the bacteria live in, which is why they had to test their abilities in the field.
“This was the first time such bacteria were collected in situ in an extreme environment like an alkaline hot spring,” said Abdelrhman Mohamed, a PhD student at Washington State University who led the research.The team stuck electrodes into the water of four hot springs, and left them for a month to be colonised by the bacteria.
“The natural conditions found in geothermal features such as hot springs are difficult to replicate in laboratory settings,” said Dr Haluk Beyenal, who supervised the study. “So, we developed a new strategy to enrich heat-loving bacteria in their natural environment.”
Some of these electricity-producing bacteria have the power to convert toxic pollutants into less harmful substances.As they do so, the electrons passing through their body as they digest their food are dumped outside their bodies on minerals or metals, using hair-like structures that protrude from their bodies like wires.
This produces a stream of electricity in an efficient process that can conceivably be used in low-power applications.
While scientists hope that the microbes could one day power all kinds of systems, they have been limited by the handful of varieties that have been grown in labs.
But by employing the naturally occurring populations in places like Yellowstone, they hope they can develop something that helps to both produce electricity and clear up pollutants.

Thursday, March 7, 2019


Can Quantum dots spit out clone-like photons ?


Photons could help pave the way for quantum information processors or communications.

Researchers of Massachusetts Institute of Technology have produced coherent single photon emitters, a key component for future quantum computers and communications systems.

In the global quest to develop practical computing and communications devices based on the principles of quantum physics, one potentially useful component has proved elusive: a source of individual particles of light with perfectly constant, predictable, and steady characteristics. Now, researchers at MIT and in Switzerland say they have made major steps toward such a single photon source.

 

Scanning Transmission Electron Microscope image (STEM) of single perovskite quantum dots. New study shows that single perovskite quantum dots could be a fundamental building block for quantum-photonic technologies for computing or communications.

The study, which involves using a family of materials known as perovskites to make light-emitting particles called quantum dots, appears today in the journal Science. The paper is by MIT graduate student in chemistry Hendrik Utzat, professor of chemistry Moungi Bawendi, and nine others at MIT and at ETH in Zurich, Switzerland.
The ability to produce individual photons with precisely known and persistent properties, including a wavelength, or color, that does not fluctuate at all, could be useful for many kinds of proposed quantum devices. Because each photon would be indistinguishable from the others in terms of its quantum-mechanical properties, it could be possible, for example, to delay one of them and then get the pair to interact with each other, in a phenomenon called interference.
"This quantum interference between different indistinguishable single photons is the basis of many optical quantum information technologies using single photons as information carriers," Utzat explains. "But it only works if the photons are coherent, meaning they preserve their quantum states for a sufficiently long time."
Many researchers have tried to produce sources that could emit such coherent single photons, but all have had limitations. Random fluctuations in the materials surrounding these emitters tend to change the properties of the photons in unpredictable ways, destroying their coherence. Finding emitter materials that maintain coherence and are also bright and stable is "fundamentally challenging," Utzat says. That's because not only the surroundings but even the materials themselves "essentially provide a fluctuating bath that randomly interacts with the electronically excited quantum state and washes out the coherence," he says.
"Without having a source of coherent single photons, you can't use any of these quantum effects that are the foundation of optical quantum information manipulation," says Bawendi, who is the Lester Wolfe Professor of Chemistry. Another important quantum effect that can be harnessed by having coherent photons, he says, is entanglement, in which two photons essentially behave as if they were one, sharing all their properties.
Previous chemically-made colloidal quantum dot materials had impractically short coherence times, but this team found that making the quantum dots from perovskites, a family of materials defined by their crystal structure, produced coherence levels that were more than a thousand times better than previous versions. The coherence properties of these colloidal perovskite quantum dots are now approaching the levels of established emitters, such as atom-like defects in diamond or quantum dots grown by physicists using gas-phase beam epitaxy.
One of the big advantages of perovskites, they found, was that they emit photons very quickly after being stimulated by a laser beam. This high speed could be a crucial characteristic for potential quantum computing applications. They also have very little interaction with their surroundings, greatly improving their coherence properties and stability.
Such coherent photons could also be used for quantum-encrypted communications applications, Bawendi says. A particular kind of entanglement, called polarization entanglement, can be the basis for secure quantum communications that defies attempts at interception.
Now that the team has found these promising properties, the next step is to work on optimizing and improving their performance in order to make them scalable and practical. For one thing, they need to achieve 100 percent indistinguishability in the photons produced. So far, they have reached 20 percent, "which is already very remarkable," Utzat says, already comparable to the coherences reached by other materials, such as atom-like fluorescent defects in diamond, that are already established systems and have been worked on much longer.
"Perovskite quantum dots still have a long way to go until they become applicable in real applications," he says, "but this is a new materials system available for quantum photonics that can now be optimized and potentially integrated with devices."
It's a new phenomenon and will require much work to develop to a practical level, the researchers say. "Our study is very fundamental," Bawendi notes. "However, it's a big step toward developing a new material platform that is promising."
The work was supported by the U.S. Department of Energy, the National Science Foundation, and the Swiss Federal Commission for Technology and Innovation

The central theory behind materials science involves relating the microstructure of a material to its macromolecular physical and chemical properties. These precious minds laid down the building blocks for this Material Science"s infrastructure.

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Friday, March 1, 2019


Can Electric Car batteries inspire safer, cheaper way to manufacture compounds used in medicines ?

 Refined Electrochemistry has the answer.

Recent advances in battery technology, from the engineering of their cases to the electrochemistry that takes place inside them, has enabled the rapid rise of Teslas, Leafs, Volts and other electric cars.
Now, scientists at Scripps Research, inspired by the refined electrochemistry of these batteries, have developed a battery-like system that allows them to make potential advancements for the manufacturing of medicines.
Their new method, reported February 22 in Science, avoids safety risks associated with a type of chemical reaction known as dissolving metal reduction, which is often used to produce compounds used in the manufacturing of medicines. Their method would offer tremendous advantages over current methods of chemical manufacturing, but until now, has largely been sidelined due to safety considerations.
“The same types of batteries we use in our electric cars today were far too dangerous for commercial use a few decades ago, but now they are remarkably safe thanks to advances in chemistry and engineering,” says Phil Baran, PhD, who holds the Darlene Shiley Chair in Chemistry at Scripps Research and is a senior author of the Science paper. “By applying some of the same principles that made this new generation of batteries possible, we have developed a method to safely conduct powerfully reductive chemical reactions that have very rarely been used on a large scale because — until now — they were too dangerous or costly.”
“This could have a major impact on not only the manufacturing of pharmaceuticals,” Baran adds, “but also on the mindset of medicinal chemists who traditionally avoid such chemistry due to safety concerns. This problem was in fact brought to our attention by co-author Michael Collins, a medicinal chemist at Pfizer, for precisely this reason.”
One of the most powerful reactions, and representative examples of this deeply reducing chemistry that chemists use to make new molecules is the Birch reduction, which was largely pioneered by Australian chemist Arthur Birch in the 1940s. This reductive reaction involves dissolving a reactive metal in liquid ammonia to manipulate ring-shaped molecules that can be used as the foundation for making many chemical products, including drug molecules.
The procedure calls for condensing ammonia or similar compounds, which are corrosive, toxic and volatile, and combining it with metals such as lithium that are prone to bursting into flames if exposed to air. The process must take place at extremely cold temperatures, requiring expensive equipment and specialists.
A rare example of the use of a dissolving metal reduction in pharmaceutical manufacturing is a compound that was previously in development at Pfizer, a remarkable achievement in chemical manufacturing that required a herculean effort. The system to produce the compound on a large scale required enough gaseous ammonia to fill three Boeing 747 airliners and must be conducted at -35 degrees Celsius. The lengths to which Pfizer went to utilize this chemistry are a testimony to the reaction’s synthetic power.
To overcome these significant barriers to using such chemistry, Baran and his team looked to the advances made in battery manufacturing by joining forces with experts at the University of Utah, led by Shelley Minteer, PhD, and the University of Minnesota, led by Matthew Neurock, PhD.
The lithium-ion (Li-ion) batteries used in modern electronics such as mobile phones, laptop computers and electric cars rely on advances in an internal component called the solid electrolyte interphase (SEI). The SEI is a protective layer that forms on one of the electrodes inside a Li-ion when the battery is first charged and allows the battery to be recharged. Producing the safe and efficient batteries now used in consumer electronics relied on years of advances in optimizing the chemical conditions—the composition of electrolytes, solvents and additives—that produced the SEI.
The team noted that the reaction that forms the SEI in batteries is an electrochemical reaction akin to the Birch reaction and its relatives. They surmised that they could borrow from what battery makers had learned to pursue a safe and practical method of conducting an electroreduction reaction.
“In many ways you’re looking at similar situations—powerful reactions that, when effectively harnessed, can provide tremendous utility,“ says Solomon Reisberg, a graduate student in the Baran lab and one of the co-authors on the Science paper. “The team took advantage of the hard-won knowledge about the conditions that make reductive electrochemistry in batteries practical and used that knowledge to rethink how deeply reductive chemistry could be used on a large scale.”
The Scripps Research team began by testing a range of additives used to prevent overcharging in Li-ion batteries and found that a combination of two, substances called dimethylurea and TPPA, made the Birch reaction possible at room temperature.
Testing various other materials used in batteries, Baran’s team came up with a set of conditions that allowed them to not only conduct reductive electrosynthesis safely but also to increase the versatility of the reaction to create a wider variation of products that was not possible with previous electrochemical methods.
This method avoided the need for dissolving liquid metals in large quantities of ammonia—and the associated cost and risks—and instead used an electrolyte system similar to that used in batteries. In addition to the Birch reaction, the researchers were able to apply the technique to other types of powerful reactions often used in synthesis but rarely, if ever, used in industrial settings.
"Chemists have been slow to adopt these electrosynthesis techniques, partially due to concerns about using them safely at scale," says Carol Bessel, PhD, acting division director for chemistry at the National Science Foundation. "This collaboration was able to address existing concerns with an elegant electrochemical solution that could dramatically reduce the costs of synthesizing organic compounds in medicines and other high-value products.”
The researchers synthesized multiple versions of important single-ring compounds as well as molecules where multiple rings were combined to create more complex structures that form the skeletons of drugs and other chemical products. In contrast to the enormously expensive devices previously required to conduct reductive chemistry in large quantities, the team collaborated with Asymchem Life Science, a chemical manufacturer based in Tianjin, China, to build a small modular device capable of generating large quantities of products for less than $250.
“This demonstrates that kilogram-scale synthesis of pharmaceutically relevant building blocks can be produced by adapting what we’ve learned about electrochemistry from the rapid advance of battery technology,” Baran says. “We anticipate that this will be a boon to industry, allowing them to finally bring these reactions to practical use.”
Let us hope for the best. Share your views on this thought-provoking piece of matter.

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