21,120 research outputs found

    Ultrapure glass optical waveguide development in microgravity by the sol-gel process

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    The alkali-borosilicate system was selected as the glass system for the preparation of ultrapure low loss glasses suitable for optical communication. The effect of different oxide contents on the absorption loss was critically reviewed. One composition was chosen to develop the gel preparation procedure in the alkali-borosilicate system. In addition, several procedures for the preparation of gels based on two different approaches were developed. The influence of different preparation parameters were investigated qualitatively. Several conclusions are drawn from the results

    Ginzburg-Landau theory of noncentrosymmetric superconductors

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    The data of temperature dependent superfluid density ns(T)n_s(T) in Li2_2Pd3_3B and Li2_2Pt3_3B [Yuan {\it et al.}, \phrl97, 017006 (2006)] show that a sudden change of the slope of ns(T)n_s (T) occur at slightly lower than the critical temperature. Motivated by this observation, we microscopically derive the Ginzburg-Landau (GL) equations for noncentrosymmetric superconductors with Rashba type spin orbit interaction. Cooper pairing is assumed to occur between electrons only in the same spin split band and pair scattering is allowed to occur between two spin split bands. The GL theory of such a system predicts two transition temperatures, the higher of which is the conventional critical temperature TcT_c while the lower one T∗T^* corresponds to the cross-over from a mixed singlet-triplet phase at lower temperatures to only spin-singlet or spin-triplet (depending on the sign of the interband scattering potential) phase at higher temperatures. As a consequence, ns(T)n_s (T) shows a kink at this cross-over temperature. We attribute the temperature at which sudden change of slope occurs in the observed ns(T)n_s (T) to the temperature T∗T^*. This may also be associated with the observed kink in the penetration depth data of CePt3_3Si. We have also estimated critical field near critical temperature.Comment: 7 pages, 1 figur
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