Scientists see energy gap modulations in a cuprate superconductor by Staff Writers Upton NY (SPX) Apr 06, 2020
For years physicists have been trying to decipher the electronic details of high-temperature superconductors. These materials could revolutionize energy transmission and electronics because of their ability to carry electric current with no energy loss when cooled below a certain temperature. Details of "high-Tc" superconductors' microscopic electronic structure could reveal how different phases (states of matter) compete or interact with superconductivity - a state in which like-charged electrons somehow overcome their repulsion to pair up and flow freely. The ultimate goal is to understand how to make these materials act as superconductors without the need for supercooling. Now scientists studying high-Tc superconductors at the U.S. Department of Energy's Brookhaven National Laboratory have definitive evidence for the existence of a state of matter known as a pair density wave - first predicted by theorists some 50 years ago. Their results, published in the journal Nature, show that this phase coexists with superconductivity in a well-known bismuth-based copper-oxide superconductor. "This is the first direct spectroscopic evidence that the pair density wave exists at zero magnetic field," said Kazuhiro Fujita, the physicist who led the research at Brookhaven Lab. "We've identified that the pair density wave plays an important role in this material. Our results show that these two states of matter - pair density wave and superconductivity - coexist and interact." The team's results come from measurements of single electrons' tunneling spectra using a state-of-the-art spectroscopic-imaging scanning tunneling microscope (SI-STM) in Brookhaven's OASIS laboratory. "What we measure is how many electrons at a given location 'tunnel' from the sample surface to the superconducting electrode tip of the SI-STM and vice versa as we vary the energy (voltage) between the sample and the tip," Fujita said. "With those measurements we can map out the crystalline lattice and the electron density of states - as well as the number of electrons we have at a given location." When the material is not superconducting, electrons exist over a continuous spectrum of energies, each propagating at its own unique wavelength. But when the temperature goes down, the electrons start to interact - pairing up as the material enters the superconducting state. When this happens, scientists observe a gap in the energy spectrum, created by an absence of electrons within that particular energy range. "The energy of the gap is equal to the energy it takes to break the electron pairs apart (which tells you how tightly bound they were)," Fujita said. As the scientists scanned across the surface of the material, they detected spatially modulating energy gap structures. These modulations in the energy gap revealed that the strength of electrons' binding varies - increasing to a maximum, then dipping to a minimum - with this pattern repeating every eight atoms across the surface of the regularly arrayed crystal lattice. This work built on previous measurements showing that the current created by pairs of electrons tunneling into the microscope also varied in the same periodic way. Those modulations in current were the first evidence, though somewhat circumstantial, that the pair density wave was present. "Modulations in the current of the paired electrons is an indicator that there are modulations in how strongly paired the electrons are across the surface. But this time, by measuring the energy spectrum of individual electrons, we succeeded in directly measuring the modulating gap in the spectra where pairing occurs. The modulations in the size of those gaps is direct spectroscopic evidence that the pair density wave state exists," Fujita said. The new results also included evidence of other key signatures of the pair density wave - including defects called "half-vortices" - as well as its interactions with the superconducting phase. In addition, the energy gap modulations mirror other Brookhaven Lab research indicating the existence of modulating patterns of electronic and magnetic characteristics - sometimes referred to as "stripes" - that also occur with an eight-unit-cell periodicity in certain high-Tc cuprate superconductors. "Together these findings indicate that the pair density wave plays a significant role in these materials' superconducting properties. Understanding this state may help us make sense of the complex phase diagram that maps out how superconducting properties emerge under different conditions, including temperature, magnetic field, and charge-carrier density," Fujita said.
Converting waste heat into electricity to power billions of sensors Osaka, Japan (SPX) Mar 25, 2020 Interconnected healthcare and many other future applications will require internet connectivity between billions of sensors. The devices that will enable these applications must be small, flexible, reliable, and environmentally sustainable. Researchers must develop new tools beyond batteries to power these devices, because continually replacing batteries is difficult and expensive. In a study published in Advanced Materials Technologies, researchers from Osaka University have revealed how the ther ... read more
|
|
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. |