1,348 research outputs found

    New insight into cataract formation -- enhanced stability through mutual attraction

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    Small-angle neutron scattering experiments and molecular dynamics simulations combined with an application of concepts from soft matter physics to complex protein mixtures provide new insight into the stability of eye lens protein mixtures. Exploring this colloid-protein analogy we demonstrate that weak attractions between unlike proteins help to maintain lens transparency in an extremely sensitive and non-monotonic manner. These results not only represent an important step towards a better understanding of protein condensation diseases such as cataract formation, but provide general guidelines for tuning the stability of colloid mixtures, a topic relevant for soft matter physics and industrial applications.Comment: 4 pages, 4 figures. Accepted for publication on Phys. Rev. Let

    t1/3t^{1/3} Superdiffusivity of Finite-Range Asymmetric Exclusion Processes on Z\mathbb Z

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    We consider finite-range asymmetric exclusion processes on Z\mathbb Z with non-zero drift. The diffusivity D(t)D(t) is expected to be of O(t1/3){\mathcal O}(t^{1/3}). We prove that D(t)Ct1/3D(t)\ge Ct^{1/3} in the weak (Tauberian) sense that 0eλttD(t)dtCλ7/3\int_0^\infty e^{-\lambda t}tD(t)dt \ge C\lambda^{-7/3} as λ0\lambda\to 0. The proof employs the resolvent method to make a direct comparison with the totally asymmetric simple exclusion process, for which the result is a consequence of the scaling limit for the two-point function recently obtained by Ferrari and Spohn. In the nearest neighbor case, we show further that tD(t)tD(t) is monotone, and hence we can conclude that D(t)Ct1/3(logt)7/3D(t)\ge Ct^{1/3}(\log t)^{-7/3} in the usual sense.Comment: Version 3. Statement of Theorem 3 is correcte

    Thermodynamics, Structure, and Dynamics of Water Confined between Hydrophobic Plates

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    We perform molecular dynamics simulations of 512 water-like molecules that interact via the TIP5P potential and are confined between two smooth hydrophobic plates that are separated by 1.10 nm. We find that the anomalous thermodynamic properties of water are shifted to lower temperatures relative to the bulk by 40\approx 40 K. The dynamics and structure of the confined water resemble bulk water at higher temperatures, consistent with the shift of thermodynamic anomalies to lower temperature. Due to this TT shift, our confined water simulations (down to T=220T = 220 K) do not reach sufficiently low temperature to observe a liquid-liquid phase transition found for bulk water at T215T\approx 215 K using the TIP5P potential. We find that the different crystalline structures that can form for two different separations of the plates, 0.7 nm and 1.10 nm, have no counterparts in the bulk system, and discuss the relevance to experiments on confined water.Comment: 31 pages, 14 figure
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