1,017 research outputs found

    Postcard: No. 2.Cow Boy\u27s Delight. Bringing Calves to Brand

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    This black and white photographic postcard features two men on horses roping calves. One cow on the right follows the calf and the rest of the herd is in the background. Written text is at the bottom of the card. Handwriting is on the back of the card. (Note indicates the photo was taken by Liberal, Kansas photographer Hal Reid.)https://scholars.fhsu.edu/tj_postcards/2331/thumbnail.jp

    Theoretical studies of a hydrogen abstraction tool for nanotechnology

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    In the design of a nanoscale, site-specific hydrogen abstraction tool, the authors suggest the use of an alkynyl radical tip. Using ab initio quantum-chemistry techniques including electron correlation they model the abstraction of hydrogen from dihydrogen, methane, acetylene, benzene and isobutane by the acetylene radical. By conservative estimates, the abstraction barrier is small (less than 7.7 kcal mol^-1) in all cases except for acetylene and zero in the case of isobutane. Thermal vibrations at room temperature should be sufficient to supply the small activation energy. Several methods of creating the radical in a controlled vacuum setting should be feasible. The authors show how nanofabrication processes can be accurately and inexpensively designed in a computational framework

    Principal Project Investigators

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    This document contains source-sensitive and proprietary information. It was written using unclassified sources and primary source interviews. The views stated herein are those of the authors only

    The Atlantic Alliance and European Security in the 1990’s

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    The Atlantic Alliance and European Security in the 1990’s

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    Sequence and Entropy-Based Control of Complex Coacervates

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    Biomacromolecules rely on the precise placement of monomers to encode information for structure, function, and physiology. Efforts to emulate this complexity via the synthetic control of chemical sequence in polymers are finding success; however, there is little understanding of how to translate monomer sequence to physical material properties. Here we establish design rules for implementing this sequence-control in materials known as complex coacervates. These materials are formed by the associative phase separation of oppositely charged polyelectrolytes into polyelectrolyte dense (coacervate) and polyelectrolyte dilute (supernatant) phases. We demonstrate that patterns of charges can profoundly affect the charge–charge associations that drive this process. Furthermore, we establish the physical origin of this pattern-dependent interaction: there is a nuanced combination of structural changes in the dense coacervate phase and a 1D confinement of counterions due to patterns along polymers in the supernatant phase
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