Researchers demonstrate new type of laser

Lasers are everywhere nowadays: Doctors use them to correct eyesight, cashiers to scan your groceries, and quantum scientist to control qubits in the future quantum computer. For most applications, the current bulky, energy-inefficient lasers are fine, but quantum scientist work at extremely low temperatures and on very small scales. For over 40 years, they have been searching for efficient and precise microwave lasers that will not disturb the very cold environment in which quantum technology works. (from phys.org)

A team of researchers led by Leo Kouwenhoven at TU Delft has demonstrated an on-chip microwave laser based on a fundamental property of superconductivity, the ac Josephson effect. They embedded a small section of an interrupted superconductor, a Josephson junction, in a carefully engineered on-chip cavity. Such a device opens the door to many applications in which microwave radiation with minimal dissipation is key, for example in controlling qubits in a scalable quantum computer.

The scientists have published their work in Science on the 3rd of March.

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Lasers have the unique ability to emit perfectly synchronized, coherent light. This means that the linewidth (corresponding to the color) is very narrow. Typically lasers are made from a large number of emitters (atoms, molecules, or semiconducting carriers) inside a cavity. These conventional lasers are often inefficient, and dissipate a lot of heat while lasing. This makes them difficult to operate in cryogenic environments, such as what is required for operating a quantum computer.

Superconducting Josephson junction

In 1911, the Dutch physicist Heike Kamerlingh Onnes discovered that some materials transition to a superconducting state at very low temperatures, allowing electrical current to flow without any loss of energy. One of the most important applications of superconductivity is the Josephson effect: if a very short barrier interrupts a piece of superconductor, the electrical carriers tunnel through this non-superconducting material by the laws of quantum mechanics. Moreover, they do so at a very characteristic frequency, which can be varied by an externally applied DC voltage. The Josephson junction is therefore a perfect voltage to light (frequency) converter.

Josephson junction laser

The scientists at QuTech coupled such a single Josephson junction to a high-quality factor superconducting micro-cavity, no bigger than an ant. The Josephson junction acts like a single atom, while the cavity can be seen as two mirrors for microwave light. When a small DC voltage is applied to this Josephson junction, it emits microwave photons that are on resonance with the cavity frequency. The photons bounce back and forth between two superconducting mirrors, and force the Josephson junction to emit more photons synchronized with the photons in the cavity. By cooling the device down to ultra-low temperatures (< 1 Kelvin) and applying a small DC voltage to the Josephson junction, the researchers observe a coherent beam of microwave photons emitted at the output of the cavity. Because the on-chip laser is made entirely from superconductors, it is very energy efficient and more stable than previously demonstrated semiconductor-based lasers. It uses less than a picoWatt of power to run, more than 100 billion times less than a light globe.

Low-loss quantum control

Efficient sources of high quality coherent microwave light are essential in all current designs of the future quantum computer. Microwave bursts are used to read out and transfer information, correct errors and access and control the individual quantum components. While current microwave sources are expensive and inefficient, the Josephson junction laser created at QuTech is energy efficient and offers an on-chip solution that is easy to control and modify. The group is extending their design to use tunable Josephson junctions made from nanowires to allow for microwave burst for fast control of multiple quantum components. In the future, such a device may be able to generate so-called “amplitude-squeezed” light with has smaller intensity fluctuations compared to conventional lasers, this is essential in most quantum communication protocols. This work marks an important step towards the control of large quantum systems for quantum computing.

New Measurement Will Help Redefine International Unit of Mass

Using a state-of-the-art device for measuring mass, researchers at the National Institute of Standards and Technology (NIST) have made their most precise determination yet of Planck’s constant, an important value in science that will help to redefine the kilogram, the official unit of mass in the SI, or international system of units. (from nist.gov )

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The new NIST measurement of Planck’s constant is 6.626069934 x 10−34 kg∙m2/s, with an uncertainty of only 13 parts per billion. NIST’s previous measurement, published in 2016, had an uncertainty of 34 parts per billion.

The kilogram is currently defined in terms of the mass of a platinum-iridium artifact stored in France. Scientists want to replace this physical artifact with a more reproducible definition for the kilogram that is based on fundamental constants of nature.

Planck’s constant enables researchers to relate mass to electromagnetic energy. To measure Planck’s constant, NIST uses an instrument known as the Kibble balance, originally called the watt balance. Physicists widely adopted the new name last year to honor the late British physicist Bryan Kibble, who invented the technique more than 40 years ago.

NIST’s Kibble balance uses electromagnetic forces to balance a kilogram mass. The electromagnetic forces are provided by a coil of wire sandwiched between two permanent magnets. The Kibble balance has two modes of operation. In one mode, an electrical current goes through the coil, generating a magnetic field that interacts with the permanent magnetic field and creates an upward force to balance the kilogram mass. In the other mode, the coil is lifted at a constant velocity. This upward motion induces a voltage in the coil that is proportional to the strength of the magnetic field. By measuring the current, the voltage and the coil’s velocity, researchers can calculate the Planck constant, which is proportional to the amount of electromagnetic energy needed to balance a mass.

There are three major reasons for the improvement in the new measurements, said physicist Stephan Schlamminger, leader of the NIST effort.

First, the researchers have much more data. The new result uses 16 months’ worth of measurements, from December 2015 to April 2017. The increase in experimental statistics greatly reduced the uncertainty in their Planck value.

Second, the researchers tested for variations in the magnetic field during both modes of operation and discovered they had been overestimating the impact the coil’s magnetic field was having on the permanent magnetic field. Their subsequent adjustment in their new measurements both increased their value of Planck’s constant and reduced the uncertainty in their measurement.

Finally, the researchers studied in great detail how the velocity of the moving coil affected the voltage. “We varied the speed that we moved the coil through the magnetic field, from 0.5 to 2 millimeters per second,” explained Darine Haddad, lead author of the NIST results.

In a magnetic field, the coil acts like an electric circuit consisting of a capacitor (a circuit element that stores electric charge), a resistor (an element that dissipates electrical energy) and an inductor (an element that stores electrical energy). In a moving coil, these circuit-like elements generate an electrical voltage that changes over time, said Schlamminger. The researchers measured this time-dependent voltage change to account for this effect and reduced the uncertainty in their value.

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This new NIST measurement joins a group of other new Planck’s constant measurements from around the world. Another Kibble balance measurement, from the National Research Council of Canada, has an uncertainty of just 9.1 parts per billion. Two other new measurements use the alternative Avogadro technique, which involves counting the number of atoms in a pure silicon sphere.

The new measurements have such low uncertainty that they exceed the international requirements for redefining the kilogram in terms of Planck’s constant.

“There needed to be three experiments with uncertainties below 50 parts per billion, and one below 20 parts per billion,” Schlamminger said. “But we have three below 20 parts per billion.”

All of these new values of the Planck’s constant do not overlap, “but overall they’re in amazingly good agreement,” Schlamminger said, “especially considering that researchers are measuring it with two completely different methods.” These values will be submitted to a group known as CODATA ahead of a July 1 deadline. CODATA will consider all of these measurements in setting a new value for Planck’s constant. The kilogram is slated for redefinition in November 2018, along with other units in the SI.

SESAME passes an important milestone at CERN

The SESAME project has reached an important milestone: the first complete cell of this accelerator for the Middle East has been assembled and successfully tested at CERN. (from home.cern/about/updates/2015/04/sesame-passes-important-milestone-cern)

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SESAME is a synchrotron light source under construction in Jordan. It will allow researchers from the region to investigate the properties of innovative materials, biological processes and cultural artefacts. SESAME is a unique joint venture that brings together scientists from its Members: Bahrain, Cyprus, Egypt, Iran, Israel, Jordan, Pakistan, the Palestinian Authority and Turkey. Not only is SESAME an important scientific project, it is also helping to build bridges between diverse cultures in a part of the world that usually hits the headlines for its conflicts.

A sextupole assembled in Cyprus and Pakistan based on CERN/SESAME design (Image: Maximilien Brice/CERN)

A sextupole assembled in Cyprus and Pakistan based on CERN/SESAME design (Image: Maximilien Brice/CERN)

 

CERN has been a strong partner to SESAME, providing technical expertise for the design and procurement of accelerator components. In particular, CERN is responsible for the magnets of the SESAME storage ring and their powering scheme, under a project largely funded by the European Commission (FP7 CESSAMag).

Within this project, CERN has been collaborating with SESAME to design, test and characterize the components of the magnetic system, which is now in production. The main contracts have been split among different companies in Cyprus, France, Israel, Italy, Spain, Switzerland, Turkey and the UK, with additional in-kind support (material and personnel) from Iran, Pakistan and Turkey.

The test carried out at CERN together with colleagues from SESAME aimed at assembling a full periodic cell of the machine, one of the 16 which make up the regular structure of the ring. Besides the magnets themselves, this involved also the girder support structure as well as the vacuum chamber for the beam.

Engineers test the installation of a vacuum chamber for SESAME at the CERN magnet-testing facility SM18 (Image: Maximilien Brice/CERN)

Engineers test the installation of a vacuum chamber for SESAME at the CERN magnet-testing facility SM18 (Image: Maximilien Brice/CERN)

 

“We already knew that the various individual elements fulfil and even exceed the specifications,” says Attilio Milanese, the CERN engineer in charge of the magnets, who is well satisfied since “this test now confirms that all the subsystems work harmoniously together”.

The magnet production is now in full swing. After acceptance tests, these components will be shipped in batches to SESAME by the end of the year, where installation and commissioning of the main synchrotron is planned for 2016.

Saccorhytus coronarius, Humans’ Earliest-Known Ancestor

A microscopic, bag-like marine creature that lived approximately 540 million years ago (Fortunian stage of the Cambrian period) has been identified from microfossils found in Shaanxi Province, China. (from sci-news.com)

The ancient animal, named Saccorhytus coronarius, is the most primitive example of a so-called deuterostome.

The creature is thought to be the common ancestor of a huge range of species, and the earliest step yet discovered on the evolutionary path that eventually led to humans, hundreds of millions of years later.

Forty-five phosphatized specimens of Saccorhytus coronaries were collected from the Kuanchuanpu Formation, Hexi, Xixiang County, Shaanxi Province, central China.

They were analyzed by experts from the University of Cambridge in the UK, the University of Kassel in Germany, Northwest University, China University of Geosciences and Xi’an Shiyou University in China. The research was published in the journal Nature on January 30, 2017.

“To the naked eye, the fossils we studied look like tiny black grains, but under the microscope the level of detail is jaw-dropping. All deuterostomes had a common ancestor, and we think that is what we are looking at here,” said lead co-author Prof. Simon Conway Morris, from the University of Cambridge.

“Our team has notched up some important discoveries in the past, including the earliest fish and a remarkable variety of other early deuterostomes,” added lead co-author Dr. Degan Shu, from Northwest University.

Saccorhytus coronarius now gives us remarkable insights into the very first stages of the evolution of a group that led to the fish, and ultimately, to us.”

Most other early deuterostome groups are from about 510 to 520 million years ago, when they had already begun to diversify into not just the vertebrates, but the sea squirts, echinoderms and hemichordates.

This level of diversity has made it extremely difficult to work out what an earlier, common ancestor might have looked like.

By isolating the microfossils from the surrounding rock, and then studying them both under an electron microscope and using a CT scan, the paleontologists were able to build up a picture of how Saccorhytus coronarius might have looked and lived.

This revealed features and characteristics consistent with current assumptions about primitive deuterostomes.

Saccorhytus coronarius was about a millimeter in size, and probably lived between grains of sand on the seabed.

Its body was bilaterally symmetrical — a characteristic inherited by many of its descendants, including humans — and was covered with a thin, relatively flexible skin.

“The body is hemi-ellipsoidal, with a maximum length of 1,300 μm, width 800 μm and height 900 μm. Most material is crushed but several specimens confirm original bilateral symmetry,” the authors said.

image_4578-Saccorhytus-coronariesThis in turn suggests that it had some sort of musculature, leading the team to conclude that it could have made contractile movements, and got around by wriggling.

Perhaps its most striking feature, however, was its rather primitive means of eating food and then dispensing with the resulting waste.

The animal had a large mouth, relative to the rest of its body, and probably ate by engulfing food particles, or even other creatures.

A crucial observation are the small conical structures on its body. These may have allowed the water that it swallowed to escape and so were perhaps the evolutionary precursor of the gills we now see in fish.

But the scientists were unable to find any evidence that the creature had an anus.

“If that was the case, then any waste material would simply have been taken out back through the mouth, which from our perspective sounds rather unappealing,” Prof. Conway Morris explained.

the physikalisch technische bundesanstalt braunschweig/germany paves the way for the redefinition of the ampere

The universe of physics is experiencing great changes: by 2018, scientists want to place all physical base units on solid, unchangeable foundation in the form of fundamental constants. The units “meter” and “second” were well ahead of schedule; now the kelvin, the kilogram, the mole and the ampere are next in line. The research activities of the Physikalisch-Technische Bundesanstalt (PTB) are contributing to this project. Scientists from PTB have now succeeded in measuring the extremely small currents of a single-electron pump with unprecedented accuracy. This is a milestone towards the revision of the International System of Units (SI). (from ptb.de)

set-pumpe-ulca-1The definition of the ampere as it is today is anything but convenient: It is based on a hypothetical test setup which includes two conductors of infinite length. In this setup, an ampere would generate a precisely fixed force. This definition is closely related to mass, which has been a headache for physicists for a long time. Not to mention the instability of the international prototype of the kilogram. The current definition of the kilogram sharply limits the precision with which the ampere can be realized. Physicists have therefore decided that the kilogram prototype has become obsolete and will have to “retire” in 2018, and that the fundaments of the SI should, at the same time, be thoroughly revised.

In order to help the ampere take the leap into the realm of fundamental constants, physicists are counting the electrons which flow in a given time through a conducting track that is only a few nanometers wide. This presupposes that they are able to manipulate the electron flow – which they indeed achieve by means of a single-electron pump. It pumps one electron after the other through what can be imagined as a mountain chain from one valley to the next. In this way, it is possible to count the electrons arriving in the “valley”, and thus to determine the elementary charge.

The use of single-electron pumps has been presented to physicists from all over the world with two main challenges: firstly, the pumps only supply very small currents, which are very difficult to measure. Secondly, statistical errors occur during the electron transport, for instance when an electron falls back into the “valley” where it came from or when two electrons are pumped into the same valley. This is detrimental to precision. A solution has already been developed to solve the pumping errors and has been demonstrated with very slow pumps: the physicists connect several pumps in series and between the pumps, special detectors indicate whether too many or too few electrons pass through the valley. It is thus possible to correct errors while the pumps are active.

Now, scientists at PTB have succeeded in developing an innovative technique to also meet the measurement challenge. Thanks to a novel amplifier, researchers are able to amplify the small current produced by the pumps by a factor of approx. 1000. Combined with two other quantum standards, it then became possible to measure small currents with a level of precision that is unprecedented worldwide.

In their work, PTB’s physicists have shown that controlled single-electron pumps provide a considerably more precise realization of the ampere than the conventional ampere definition would allow. “For the time being, the single-electron pump is operated without correction. However, the measurement showed that the errors are indeed so small that the correction method should also work with these fast pumps. This is a real milestone towards the new SI” explains Franz Ahlers, Head of the Electrical Quantum Metrology Department of PTB. There seem to be no obstacles left on the path to the redefinition of the ampere, which is planned for 2018. Since the redefinition will only cause very small changes in the electrical units, the revision of the SI will not be noticeable for most consumers. However, things look slightly different in fields such as micro- and nano-electronics or in medical and environmental metrology. In areas such as these, the new ampere will enable a much more accurate calibration of measuring instruments.

Technology Pioneers Are Mixing Latest Technologies to Kickstart the Next Wave of Industry Disruption

The World Economic Forum today announced its list of the 30 most promising Technology Pioneers 2016, including fintech provider Blockchain, collaboration tool Slack and market trend visualizer Quid. (from weforum.org)

Other awarded pioneers blend existing innovations like drones, 3D printing and the Internet of Things to create real-world solutions in fields such as health, food, energy, IT and finance

70 per cent of the recognized pioneers come from the US, a sign of the country’s continued strength in innovation; other nominees come from Canada, France, Israel, Luxembourg and Sweden

For more information, visit http://wef.ch/techpioneers

Tianjin, People’s Republic of China, 27 June 2016 –Many of the world’s most innovative start-ups come from the US and blend innovations like 3D printing, the Internet of Things and drones to create new ones in health, agriculture, finance and other industries. That is the insight from the World Economic Forum’s 2016 class of Technology Pioneers, announced today in China.

The annual list this year includes well-known tech start-ups such as Luxembourg-based fintech provider Blockchain, market trends visualizer Quid andcloud-based collaboration tool Slack (US), but also many companies that combine innovations from the Fourth Industrial Revolution – including 3D printing, genome editing, the Internet of Things, drones and mixed reality – into innovations for different industries.

“This class demonstrates how companies can act at the interplay of different technologies,” said Fulvia Montresor, Head of Technology Pioneers at the World Economic Forum. “It also shows how quickly some technologies are evolving, and how current innovations start to provide real-world solutions for global challenges.”

Companies like Voxel 8 (US), a 3D electronics printing company; Farmers Edge (Canada), which provides satellite data for precision agriculture; and Cylance (US), which specializes in predictive cyberthreat prevention, are among those pioneers blending innovations.

Magic Leap (US), which specializes in virtual retinal displays for mixed reality applications; Kensho (US), which does real time analytics for the financial industry through artificial intelligence; and Wrightspeed (US), which provides hybrid electric powertrains for heavy-duty trucks, show how fast certain technologies are evolving in providing real-life solutions to global challenges.

The Technology Pioneers 2016 follow in the footsteps of companies such as Google (2001), Wikimedia (2007), Kickstarter (2011), Dropbox (2011) and TransferWise (2015). Many of the awardees will take part in the World Economic Forum’s Annual Meeting of the New Champions in China this week, as well as the Annual Meeting 2017 in Davos, Switzerland, in January.

Twenty-one out of 30 Technology Pioneers 2016 come from the US, continuing a trend from previous years, in which more than 60% of awardees are from the that country. Europe (6) and Canada (1) accounted for the remaining 30% of the awardees.

“Innovation increasingly happens all around the world, but many breakthrough innovations continue to come from the US and, to a lesser extent, Europe,” said Montresor. “The availability of funding in the US, the large single market and access to talent make for a pioneer-friendly environment.”

About half of the technology pioneers also work exclusively on global challenges including food, health, energy and the environment, signalling a shift in innovation towards sustainability, whether for people or the planet.

“Past technology pioneers like Google introduced the world to the internet reality; today’s Technology Pioneers are fully native in this new world and are working both on digital innovations and how to solve the physical world’s challenges,” Montresor said.

The Technology Pioneers were selected from hundreds of applicants by a committee of 68 academics, entrepreneurs, venture capitalists and corporate executives. The Technology Pioneers join a cohort that will meet for the first time in Tianjin, People’s Republic of China, for the Annual Meeting of the New Champions, and will reconvene at the Annual Meeting 2017 in Davos.

Appendix A: Full List of Technology Pioneers 2016 per sector and country

Health

Cellectis (France) – Immunotherapies based on genome edited cell
Chrono Therapeutics (USA) – Optimized drug delivery with embedded sensor technology
Eargo (USA) Virtually invisible comfortable hearing device
Flatiron Health (USA) – Cloud-based software supporting cancer care
Healthy.io (Israel) – Smartphone-based medical test
Omada Health (USA) – Digital behavioural medicine tackling chronic disease

Production

Formlabs (USA) – Accessible 3D printer delivering industrial quality objects
Voxel 8 (USA) – Embedded 3D printing of electronics
SIGFOX (France) – Communication network dedicated to the Internet of Things
Ginkgo Bioworks (USA) – Engineered microbes for food, health and consumer goods
Synthace (United Kingdom) – High yielding bioprocesses through computation and automation

Food Security

Impossible Foods (USA) – Sustainable, plant-based meat
Farmers Edge (Canada) Precision agriculture for productive and sustainable farming

Energy

24M Technologies (USA) – Lower cost lithium-ion batteries
Wrightspeed (USA) – Hybrid electric powertrains for heavy duty trucks

Environment and Natural Resources Security

APATEQ (Luxembourg) – Membrane-based wastewater treatment
GlassPoint Solar (USA) – Solar steam generators for the oil and gas industry
WaterSmart Software (USA) – Data analytics and customer engagement for water utilities
Universal Bio Mining – Synthetic biology for improving mining productivity

Internet


Cylance (USA) – Predictive cyber threats prevention and defense
PrecisionHawk (USA) – Terrestrial data acquisition and analysis through Unmanned Aerial Vehicle
Orbital Insight (USA) – Geospatial big data for studying social and economic trends
Magic Leap (USA) – Virtual retinal display and software for augmented reality applications
APX Labs (USA) – Smart glasses software for enterprises
Mapillary (Sweden) – Crowdsourcing street-level map photos
Quid (USA) – Platform for visualization of market trends and cultural phenomena
FiscalNote (USA) – Platform for access to legislative and regulative data
Slack (USA) – Cloud-based team collaboration tool

Financial Systems


Blockchain (Luxembourg)
– Bitcoin wallet and transaction data services
Kensho (USA) – Real time analytics for the financial industry