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      • IMAGINE | Laue Diffractometer | CG-4D
      • MARS | Multimodal Advanced Radiography Station | CG-1D
      • POWDER | Neutron Powder Diffractometer | HB-2A
      • PTAX | Polarized Triple-Axis Spectrometer | HB-1
      • TAX | Triple-Axis Spectrometer | HB-3
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      • ARCS | Wide Angular-Range Chopper Spectrometer | BL-18
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      • EQ-SANS | Extended Q-Range Small-Angle Neutron Scattering Diffractometer | BL-6
      • FNPB | Fundamental Neutron Physics Beam Line | BL-13
      • HYSPEC | Hybrid Spectrometer | BL-14B
      • LIQREF | Liquids Reflectometer | BL-4B
      • MAGREF | Magnetism Reflectometer | BL-4A
      • MANDI | Macromolecular Neutron Diffractometer | BL-11B
      • NOMAD | Nanoscale-Ordered Materials Diffractometer | BL-1B
      • NSE | Neutron Spin Echo Spectrometer | BL-15
      • POWGEN | Powder Diffractometer | BL-11A
      • SEQUOIA | Fine-Resolution Fermi Chopper Spectrometer | BL-17
      • SNAP | Spallation Neutrons and Pressure Diffractometer | BL-3
      • TOPAZ | Single-Crystal Diffractometer | BL-12
      • USANS | Ultra-Small-Angle Neutron Scattering Instrument | BL-1A
      • VENUS | Versatile Neutron Imaging Instrument | BL-10
      • VISION | Vibrational Spectrometer | BL-16B
      • VULCAN | Engineering Materials Diffractometer | BL-7
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Home » All News

All News

  • A calendar poster showcasing some recent scientific publications from HFIR and SNS. Image credit: Jill Hemman/ORNL
    SNS and HFIR 2018 Calendar Poster
    February 14, 2018
  • National School on Neutron and X-Ray Scattering
    February 12, 2018
  • This image shows the active site of hCA II. The active site is flanked by hydrophilic (violet) and hydrophobic (green) binding pockets that can be used to design specific drugs targeting cancer-associated hCAs. Five clinical drugs are shown superimposed in the hCA II active site, based on room-temperature neutron structures. (ORNL/Andrey Kovalevsky)
    Neutron Study of Glaucoma Drugs Offers Clues About Enzyme Targets for Aggressive Cancers
    February 12, 2018
  • Associate professor Raquel Lieberman in her cool room at Georgia Tech. Credit: Georgia Tech / Rob Felt
    Hatchet Enzyme, Enabler of Sickness and of Health, Exposed by Neutron Beams
    February 6, 2018
  • University of South Carolina researcher Gregory Morrison prepares a SIM sample to be lowered into the neutron beam. This team is studying hierarchical structures for their applications in nuclear waste storage. Eventually, they hope to develop a new material for stabilizing and storing nuclear waste. (Image credit: ORNL/Genevieve Martin)
    Neutrons Inspect Salt-inclusion Materials to Improve Long-term Waste Storage
    January 10, 2018
  • Georgia Tech’s Martin Mourigal (left) and Xiaojian Bai (right), along with Florida State University’
    Neutrons Track Quantum Entanglement in Copper Elpasolite Mineral
    December 20, 2017
  • Former ORNL GO! student Brad O’Dell is among NC State University’s December graduates. O’Dell studied under ORNL’s Flora Meilleur in the Neutron Sciences Directorate for 5 years. He received the UT-Battelle graduate student award in 2016.
    Outstanding December Graduate: William Brad O’Dell
    December 15, 2017
  • Researchers from Washington University in St. Louis and ORNL
    Cyanobacterial Studies Examine Cellular Structure During Nitrogen Starvation
    November 15, 2017
  • Chlorite dismutase is a unique oxygen-generating enzyme that degrades chlorite, an industrial pollutant found globally in groundwater, drinking water and soils. Research conducted at ORNL contributes to a comprehensive structural and biochemical analysis of the enzyme, paving the way for future environmental applications. Journal cover art reprinted with permission from ACS Catalysis, vol. 7, issue 11, November 3, 2017. Further permissions related to the material excerpted should be directed to the American
    Neutrons probe oxygen-generating enzyme for a greener approach to clean water
    November 13, 2017
  • Bacteria containing enzymes called beta-lactamases, illustrated by the light blue cluster, break down antibiotics and allow bacterial infections to develop and spread through human cells (orange). A team from ORNL’s Neutron Sciences Directorate is using neutrons to study how resistant bacteria, represented by the light blue rod shapes, are evolving to negate the effects of the beta-lactam class of antibiotics. (Image credit: SCIstyle/Thomas Splettstoesser)
    Resisting the resistance: Neutrons search for clues to combat bacterial threats
    November 6, 2017
  • Ada Sedova, a postdoctoral research associate at the Oak Ridge Leadership Computing Facility (OLCF), develops computational calculations for supercomputing codes. In front of the OLCF’s Titan supercomputer, Sedova displays a spectrum from her experimental work, measuring the vibrational frequency of nucleobases (bases of DNA and RNA) at the Spallation Neutron Source, and complementary computational calculations.
    OLCF Postdoc Fuses the Gap Between Experiment and Computation
    November 1, 2017
  • Professors Zhenzhen Yu (left) and Michael Joachim Andreassen use neutrons at HFIR’s NRSF2 to investigate residual stresses expected to occur in the welds of offshore underwater wind turbine foundations. (Credit: ORNL/Genevieve Martin)
    Neutrons Improve Weld Integrity of Underwater Wind Turbine Foundations
    October 25, 2017
  • Neutrons observe vitamin B6-dependent enzyme activity useful for drug development
    Neutrons observe vitamin B6-dependent enzyme activity useful for drug development
    October 20, 2017
  • (Image credit: Genevieve Martin)
    Neutrons reveal suppression of magnetic order in pursuit of a quantum spin liquid
    October 19, 2017
  • Researchers from the DOE Manufacturing Demonstration Facility located at ORNL used neutrons to test residual stress in 3D-printed steel parts. By studying complex geometries like the figure 6 shown here, researchers can design and build more complex structures with large-scale 3D metal printing. Pictured from left, Jeffrey Bunn, Andrzej Nycz, Mark Noakes, and Niyanth Sridharan. (Credit: ORNL/Genevieve Martin)
    At ORNL, neutron scattering impacts daily life
    October 17, 2017
  • Neutrons and quantum spin liquids: Exploring the next materials revolution
    Neutrons and quantum spin liquids: Exploring the next materials revolution
    September 18, 2017
  • Hundreds of researchers from the nanoscience and neutron scattering communities coalesced at ORNL for a weeklong event to discuss new avenues for collaboration and science discovery. (Credit: ORNL/Genevieve Martin)
    Joint user meeting brings bright future for ORNL neutrons and nanosciences
    September 12, 2017
  • With the help of other researchers from ORNL and Colorado State University, Daniel Olds and Katharine Page developed a U-tube gas flow cell to study catalysts and better understand how they facilitate chemical reactions. With this cell integrated into a new sample environment, they can combine neutron diffraction and isotope analysis techniques to view catalytic behavior under realistic operating conditions. (Image credit: ORNL/Genevieve Martin)
    Interdisciplinary team designs gas flow cell to analyze catalytic behavior
    August 2, 2017
  • Researchers used neutrons to probe a running engine at ORNL’s Spallation Neutron Source, giving them the opportunity to test an aluminum-cerium alloy under operating conditions. From left, researchers Orlando Rios, Ke An, and Lt. Eric Stromme show off a cylinder head made from the new alloy. (Image credit: ORNL/Genevieve Martin)
    Neutrons peer into a running engine
    July 26, 2017
  • As the proton beam (pink) impinges upon the target and passes into the liquid mercury inside, the mercury absorbs the protons and creates a “spall” of neutrons (blue) that are then sent through moderators and guides to research instruments to study the fundamental properties of materials. (Image credit: ORNL/Jill Hemman)
    Leading the way: ORNL builds more reliable, longer-lasting targets for high-powered neutron scattering
    July 20, 2017

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        • SNS Celebrates 20 Years
        • HFIR Celebrates 60 Years
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      • Virtual Tours
        • SNS - Take a Virtual Tour
        • SNS Klystron Gallery - Take a Virtual Tour
        • HFIR - Take a Virtual Tour
      • Neutron Nexus
        • Nexus Program Overview
        • Neutron Ambassador Program
        • New User Beamtime (NUBe) Program
        • Why Neutrons? See Basic2Breakthrough Video
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    • Future
      • Overview
      • Projects & Upgrades
        • Second Target Station
        • HFIR Beryllium Reflector Replacement
        • HFIR Cold Guide Hall Extension
        • HFIR Pressure Vessel Replacement Project
        • HFIR & SNS 5-Year Working Schedule
    • Science
      • Science
        • Overview
        • Science Highlights
      • Science Initiatives
        • Biological Materials and Systems
        • Chemistry
        • Geochemistry and Environmental Sciences
        • Computing, Modeling, and Data Analytics
        • Physics of Matter under Extremes
        • Materials and Engineering
        • Quantum Materials
        • Soft Matter and Polymers
      • Science Techniques
        • Neutron Scattering
          • Diffraction
          • Imaging
          • Reflectometry
          • Small Angle Neutron Scattering
          • Spectroscopy
        • Nuclear
          • Gamma Irradiation
          • In-Vessel Irradiation
          • Nuclear Forensics (Neutron Activation Analysis)
    • For Users
      • Introduction
        • Overview
        • Contact Us
      • Become A User
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      • High Flux Isotope Reactor
        • BIO-SANS | Biological Small-Angle Neutron Scattering Instrument | CG-3
        • CTAX | Cold Neutron Triple-Axis Spectrometer | CG-4C
        • DEMAND | Dimensional Extreme Magnetic Neutron Diffractometer | HB-3A
        • DEV BEAMS | Instrument Development Beamline | HB-2D CG-1A CG-1B CG-4B
        • GP-SANS | General-Purpose Small-Angle Neutron Scattering Diffractometer | CG-2
        • HIDRA | High Intensity Diffractometer for Residual stress Analysis | HB-2B
        • IMAGINE | Laue Diffractometer | CG-4D
        • MARS | Multimodal Advanced Radiography Station | CG-1D
        • POWDER | Neutron Powder Diffractometer | HB-2A
        • PTAX | Polarized Triple-Axis Spectrometer | HB-1
        • TAX | Triple-Axis Spectrometer | HB-3
        • VERITAS | Versatile Intense Triple-Axis Spectrometer | HB-1A
        • WAND² | Wide-Angle Neutron Diffractometer | HB-2C
      • Spallation Neutron Source
        • ARCS | Wide Angular-Range Chopper Spectrometer | BL-18
        • BASIS | Backscattering Spectrometer | BL-2
        • CNCS | Cold Neutron Chopper Spectrometer | BL-5
        • CORELLI | Elastic Diffuse Scattering Spectrometer | BL-9
        • EQ-SANS | Extended Q-Range Small-Angle Neutron Scattering Diffractometer | BL-6
        • FNPB | Fundamental Neutron Physics Beam Line | BL-13
        • HYSPEC | Hybrid Spectrometer | BL-14B
        • LIQREF | Liquids Reflectometer | BL-4B
        • MAGREF | Magnetism Reflectometer | BL-4A
        • MANDI | Macromolecular Neutron Diffractometer | BL-11B
        • NOMAD | Nanoscale-Ordered Materials Diffractometer | BL-1B
        • NSE | Neutron Spin Echo Spectrometer | BL-15
        • POWGEN | Powder Diffractometer | BL-11A
        • SEQUOIA | Fine-Resolution Fermi Chopper Spectrometer | BL-17
        • SNAP | Spallation Neutrons and Pressure Diffractometer | BL-3
        • TOPAZ | Single-Crystal Diffractometer | BL-12
        • USANS | Ultra-Small-Angle Neutron Scattering Instrument | BL-1A
        • VENUS | Versatile Neutron Imaging Instrument | BL-10
        • VISION | Vibrational Spectrometer | BL-16B
        • VULCAN | Engineering Materials Diffractometer | BL-7
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