Energy News  
CARBON WORLDS
A graphene superconductor that plays more than one tune
by Staff Writers
Berkeley CA (SPX) Jul 22, 2019

The graphene/boron nitride moire superlattice material is composed of three atomically thin (2D) layers of graphene (gray) sandwiched between 2D layers of boron nitride (red and blue) to form a repeating pattern called a moire superlattice. Superconductivity is indicated by the light-green circles.

Researchers at the U.S. Department of Energy's Lawrence Berkeley National Laboratory (Berkeley Lab) have developed a graphene device that's thinner than a human hair but has a depth of special traits. It easily switches from a superconducting material that conducts electricity without losing any energy, to an insulator that resists the flow of electric current, and back again to a superconductor - all with a simple flip of a switch. Their findings were reported in the journal Nature.

"Usually, when someone wants to study how electrons interact with each other in a superconducting quantum phase versus an insulating phase, they would need to look at different materials. With our system, you can study both the superconductivity phase and the insulating phase in one place," said Guorui Chen, the study's lead author and a postdoctoral researcher in the lab of Feng Wang, who led the study. Wang, a faculty scientist in Berkeley Lab's Materials Sciences Division, is also a UC Berkeley physics professor.

The graphene device is composed of three atomically thin (2D) layers of graphene. When sandwiched between 2D layers of boron nitride, it forms a repeating pattern called a moire superlattice. The material could help other scientists understand the complicated mechanics behind a phenomenon known as high-temperature superconductivity, where a material can conduct electricity without resistance at temperatures higher than expected, though still hundreds of degrees below freezing.

In a previous study, the researchers reported observing the properties of a Mott insulator in a device made of trilayer graphene. A Mott insulator is a class of material that somehow stops conducting electricity at hundreds of degrees below freezing despite classical theory predicting electrical conductivity. But it has long been believed that a Mott insulator can become superconductive by adding more electrons or positive charges to make it superconductive, Chen explained.

For the past 10 years, researchers have been studying ways to combine different 2D materials, often starting with graphene - a material known for its ability to efficiently conduct heat and electricity. Out of this body of work, other researchers had discovered that moire superlattices formed with graphene exhibit exotic physics such as superconductivity when the layers are aligned at just the right angle.

"So for this study we asked ourselves, 'If our trilayer graphene system is a Mott insulator, could it also be a superconductor?'" said Chen.

Opening the gate to a new world of physics
Working with David Goldhaber-Gordon of Stanford University and the Stanford Institute for Materials and Energy Sciences at SLAC National Accelerator Laboratory, and Yuanbo Zhang of Fudan University, the researchers used a dilution refrigerator, which can reach intensely cold temperatures of 40 millikelvins - or nearly minus 460 degrees Fahrenheit - to cool the graphene/boron nitride device down to a temperature at which the researchers expected superconductivity to appear near the Mott insulator phase, said Chen.

Once the device reached a temperature of 4 kelvins (minus 452 degrees Fahrenheit), the researchers applied a range of electrical voltages to the tiny top and bottom gates of the device. As they expected, when they applied a high vertical electrical field to both the top and bottom gates, an electron filled each cell of the graphene/boron nitride device. This caused the electrons to stabilize and stay in place, and this "localization" of electrons turned the device into a Mott insulator.

Then, they applied an even higher electrical voltage to the gates. To their delight, a second reading indicated that the electrons were no longer stable. Instead, they were shuttling about, moving from cell to cell, and conducting electricity without loss or resistance. In other words, the device had switched from the Mott insulator phase to the superconductor phase.

Chen explained that the boron nitride moire superlattice somehow increases the electron-electron interactions that take place when an electrical voltage is applied to the device, an effect that switches on its superconducting phase. It's also reversible - when a lower electrical voltage is applied to the gates, the device switches back to an insulating state.

The multitasking device offers scientists a tiny, versatile playground for studying the exquisite interplay between atoms and electrons in exotic new superconducting materials with potential use in quantum computers - computers that store and manipulate information in qubits, which are typically subatomic particles such as electrons or photons - as well as new Mott insulator materials that could one day make tiny 2D Mott transistors for microelectronics a reality.

"This result was very exciting for us. We never imagined that the graphene/boron nitride device would do so well," Chen said. "You can study almost everything with it, from single particles to superconductivity. It's the best system I know of for studying new kinds of physics," Chen said.

Research paper


Related Links
Lawrence Berkeley National Laboratory
Carbon Worlds - where graphite, diamond, amorphous, fullerenes meet


Thanks for being here;
We need your help. The SpaceDaily news network continues to grow but revenues have never been harder to maintain.

With the rise of Ad Blockers, and Facebook - our traditional revenue sources via quality network advertising continues to decline. And unlike so many other news sites, we don't have a paywall - with those annoying usernames and passwords.

Our news coverage takes time and effort to publish 365 days a year.

If you find our news sites informative and useful then please consider becoming a regular supporter or for now make a one off contribution.
SpaceDaily Contributor
$5 Billed Once


credit card or paypal
SpaceDaily Monthly Supporter
$5 Billed Monthly


paypal only


CARBON WORLDS
Gene identified that will help develop plants to fight climate change
La Jolla CA (SPX) Jul 13, 2019
Hidden underground networks of plant roots snake through the earth foraging for nutrients and water, similar to a worm searching for food. Yet, the genetic and molecular mechanisms that govern which parts of the soil roots explore remain largely unknown. Now, Salk Institute researchers have discovered a gene that determines whether roots grow deep or shallow in the soil. In addition, the findings, published in Cell on July 11, 2019, will also allow researchers to develop plants that can help comba ... read more

Comment using your Disqus, Facebook, Google or Twitter login.



Share this article via these popular social media networks
del.icio.usdel.icio.us DiggDigg RedditReddit GoogleGoogle

CARBON WORLDS
Global warming = more energy use = more warming

Big energy discussion 'scrubbed from record' at UN climate talks

New York to get one of world's most ambitious carbon reduction plans

Wartsila and Summit sign Bangladesh's biggest ever service agreement to maintain Summit's 464 MW power plants

CARBON WORLDS
A new way to measure the stability of next-generation magnetic fusion devices

Tiny granules can help bring clean and abundant fusion power to Earth

Highview Power Unveils CRYOBattery, World's First Giga-Scale Cryogenic Battery

Researchers introduce novel heat transport theory in quest for efficient thermoelectrics

CARBON WORLDS
Kenya launches Africa's biggest wind farm

Stanford study shows how to improve production at wind farms

Windmill protesters placed on Dutch terror list

Can sound protect eagles from wind turbine collisions?

CARBON WORLDS
Solar power with a free side of drinking water

Twenty overlooked benefits of distributed solar energy

Nanobowl arrays endow perovskite solar cells with iridescent colors

Window film could even out the indoor temperature using solar energy

CARBON WORLDS
US hits Iran 'nuclear enrichment network' with sanctions

IAEA head to step down next year on health grounds: diplomats

GE Hitachi Nuclear Energy awarded contract to support decommissioning of Oyster Creek

Get your fax right: Bungling officials spark Japan nuclear scare

CARBON WORLDS
Left out to dry: A more efficient way to harvest algae biomass

Symbiotic upcycling: Turning 'low value' compounds into biomass

How to capture waste heat energy with improved polymers

Total starts production at French biofuel refinery

CARBON WORLDS
Saudi Arabia has decided to host US troops: Saudi defence ministry

Iran Guards seize British-flagged tanker in Strait of Hormuz

Gulf tensions rise as US downs Iranian drone

Canadian platform spills 3,200 gallons of oil-mix into Atlantic

CARBON WORLDS
More 'reactive' land surfaces cooled the Earth down

Dramatic warming projected in world's major cities by 2050

UN chief makes climate change plea in cyclone-hit Mozambique

US banks must consider climate risk: Fed's Powell









The content herein, unless otherwise known to be public domain, are Copyright 1995-2024 - Space Media Network. All websites are published in Australia and are solely subject to Australian law and governed by Fair Use principals for news reporting and research purposes. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA news reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. All articles labeled "by Staff Writers" include reports supplied to Space Media Network by industry news wires, PR agencies, corporate press officers and the like. Such articles are individually curated and edited by Space Media Network staff on the basis of the report's information value to our industry and professional readership. Advertising does not imply endorsement, agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. General Data Protection Regulation (GDPR) Statement Our advertisers use various cookies and the like to deliver the best ad banner available at one time. All network advertising suppliers have GDPR policies (Legitimate Interest) that conform with EU regulations for data collection. By using our websites you consent to cookie based advertising. If you do not agree with this then you must stop using the websites from May 25, 2018. Privacy Statement. Additional information can be found here at About Us.