394 research outputs found

    On the transport and thermodynamic properties of quasi-two-dimensional purple bronzes A0.9_{0.9}Mo6_6O17_{17} (A=Na, K)

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    We report a comparative study of the specific heat, electrical resistivity and thermal conductivity of the quasi-two-dimensional purple bronzes Na0.9_{0.9}Mo6_6O17_{17} and K0.9_{0.9}Mo6_6O17_{17}, with special emphasis on the behavior near their respective charge-density-wave transition temperatures TPT_P. The contrasting behavior of both the transport and the thermodynamic properties near TPT_P is argued to arise predominantly from the different levels of intrinsic disorder in the two systems. A significant proportion of the enhancement of the thermal conductivity above TPT_P in Na0.9_{0.9}Mo6_6O17_{17}, and to a lesser extent in K0.9_{0.9}Mo6_6O17_{17}, is attributed to the emergence of phason excitations.Comment: 8 pages, 6 figures, To appear in Physical Review

    Nonsaturating magnetoresistance and nontrivial band topology of type-II Weyl semimetal NbIrTe4

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    Weyl semimetals, characterized by nodal points in the bulk and Fermi arc states on the surface, have recently attracted extensive attention due to the potential application on low energy consumption electronic materials. In this report, the thermodynamic and transport properties of a theoretically predicted Weyl semimetal NbIrTe4 is measured in high magnetic fields up to 35 T and low temperatures down to 0.4 K. Remarkably, NbIrTe4 exhibits a nonsaturating transverse magnetoresistance which follows a power-law dependence in B. Low-field Hall measurements reveal that hole-like carriers dominate the transport for T >> 80 K, while the significant enhancement of electron mobilities with lowering T results in a non-negligible contribution from electron-like carriers which is responsible for the observed non-linear Hall resistivity at low T. The Shubnikov-de Haas oscillations of the Hall resistivity under high B give the light effective masses of charge carriers and the nontrivial Berry phase associated with Weyl fermions. Further first-principles calculations confirm the existence of 16 Weyl points located at kz = 0, ±\pm0.02 and ±\pm0.2 planes in the Brillouin zone.Comment: 5 figures, 1 tabl

    Spontaneous activity promotes synapse formation in a cell-type-dependent manner in the developing retina

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    Spontaneous activity is thought to regulate synaptogenesis in many parts of the developing nervous system. In vivo evidence for this regulation, however, is scarce and comes almost exclusively from experiments in which normal activity was reduced or blocked completely. Thus, whether spontaneous activity itself promotes synaptogenesis or plays a purely permissive role, remains uncertain. In addition, how activity influences synapse dynamics to shape connectivity and whether its effects among neurons are uniform or cell type-dependent is unclear. In mice lacking the cone-rod homeobox gene (Crx), photoreceptors (PRs) fail to establish normal connections with bipolar cells (BCs). Here, we find that retinal ganglion cells (RGCs) in Crx−/− mice become rhythmically hyperactive around the time of eye-opening; as a result of increased spontaneous glutamate release from BCs. This elevated neurotransmission enhances synaptogenesis between BCs and RGCs, without altering the overall circuit architecture. Using live imaging, we discover that spontaneous activity selectively regulates the rate of synapse formation, not elimination, in this circuit. Reconstructions of the connectivity patterns of three BC types with a shared RGC target further revealed that neurotransmission specifically promotes the formation of multisynaptic appositions from one BC type without affecting the maintenance or elimination of connections from the other two. While hyperactivity in Crx−/− mice persists, synapse numbers do not increase beyond four weeks of age, suggesting closure of a critical period for synaptic refinement in the inner retina. Interestingly, despite their hyperactivity, RGC axons maintain normal eye-specific territories and cell type-specific layers in the dorsolateral geniculate nucleus (dLGN)
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