Category: U.S. Department of Energy
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Scientists reveal key to affordable, room-temperature quantum light
(Funded by the U.S. Department of Energy and the U.S. National Science Foundation)
Scientists from the University of Oklahoma and Northwestern University have shown that adding a crystalized molecular layer to quantum dots made of perovskite prevents them from darkening or blinking. Quantum dots, which are nanoparticles that have unique optical and electronic properties, usually fade out after 10–20 minutes of use. The crystal coverings developed in this study extend the continuous light emission of quantum dots to more than 12 hours with virtually no blinking. According to Yitong Dong, the scientist who led this study, these findings pave the way for the future design of quantum emitters – devices that emit single photons on demand, with applications in quantum computing. -
Magnetic semiconductor preserves 2D quantum properties in 3D material
(Funded by the U.S. Department of Energy)
Researchers from Penn State; Columbia University; the National Renewable Energy Laboratory in Golden, CO; TUD Dresden University of Technology in Germany; King’s College London; Radboud University in the Netherlands; the University of Chemistry and Technology Prague in the Czech Republic; and the University of Regensburg in Germany have identified a surface exciton – an excited electron and the hole it leaves behind – in chromium sulfide bromide, a layered magnetic semiconductor. Cooling chromium sulfide bromide down to around –223 degrees Fahrenheit brings it to a ground state, or the state of lowest energy. This transforms it into an antiferromagnetic system, in which the magnetic moments – referred to as “spin” – of the system’s particles align in a regular, repeating pattern. This antiferromagnetic ordering ensures that each layer alternates its magnetic alignment. As a result, excitons tend to stay in the layer with the same spin. Like cars on alternating one-way streets, these established boundaries keep excitons confined to the layer with which they share the same spin directions. -
Researchers record ultrafast chorus dance of electrons on super-small particle
(Funded by the U.S. Department of Energy and the U.S. National Science Foundation)
Researchers from the U.S. Department of Energy’s SLAC National Accelerator Laboratory; Villanova University; Northwest Missouri State University; Deutsches Elektronen-Synchrotron DESY in Hamburg, Germany; the Max Planck Institute of Quantum Optics in Garching, Germany; the Max Planck Institute for the Structure and Dynamics of Matter in Hamburg, Germany; the Institute for Photonics and Nanotechnologies in Milano, Italy; and Politecnico di Milano in Italy have observed how electrons, excited by ultrafast light pulses, danced in unison around fullerene (C60) molecules. Researchers measured this dance with unprecedented precision, achieving the first measurement of its kind at the sub-nanometer scale. The synchronized dance of electrons, known as plasmonic resonance, can confine light for brief periods of time. While they’ve been studied extensively in systems from several centimeters across to those just 10 nanometers wide, this is the first time researchers were able to break the field’s “nanometer barrier.” -
New nanoscale technique unlocks quantum material secrets
Scientists at the U.S. Department of Energy’s (DOE) Argonne National Laboratory have unveiled a new technique that could help advance the development of quantum technology. Their innovation provides an unprecedented look at how quantum materials behave at interfaces. “This technique allows us to study surface phonons — the collective vibrations of atoms at a material’s surface or interface between materials,” said Zhaodong Chu, one of the scientists involved in this study. ​“Our findings reveal striking differences between surface phonons and those in the bulk material, opening new avenues for research and applications.” Some of the research activities were performed at Argonne’s Center for Nanoscale Materials, a DOE Office of Science user facility.
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New 2D carbon material is tougher than graphene and resists cracking
(Funded by the U.S. Department of Energy)
Researchers from Rice University; the Massachusetts Institute of Technology; Carnegie Mellon University; the National University of Singapore; Southern University of Science and Technology in Shenzhen, China; and Osaka University in Japan have found a two-dimensional (2D) carbon material that is tougher than graphene and resists cracking. Carbon-derived materials, such as graphene, are among the strongest on Earth, but once established, cracks propagate rapidly through them, making them prone to sudden fracture. The new carbon material, called a monolayer amorphous carbon, is both strong and tough. Like graphene, this material is also a 2D material, but unlike graphene, in which atoms are arranged in an ordered lattice, this material incorporates both crystalline and amorphous regions. “This unique design prevents cracks from propagating easily, allowing the material to absorb more energy before breaking,” said Bongki Shin, one of the researchers involved in this study.
