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首页> 外文期刊>Nature >HIGH CURRENT DENSITIES ABOVE 100 K IN THE HIGH-TEMPERATURE SUPERCONDUCTOR HGBA2CACU2O6+DELTA
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HIGH CURRENT DENSITIES ABOVE 100 K IN THE HIGH-TEMPERATURE SUPERCONDUCTOR HGBA2CACU2O6+DELTA

机译:高温超导体HGBA2CACU2O6 + DELA中100 K以上的高电流密度

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THE recent discovery(1,2) of a family of mercury-based copper oxide superconductors having transition temperatures above 130 K is of considerable technological interest, But the viability of high-temperature superconductors for many applications will ultimately depend on the size of the current density, J(c), that they are able to support, not only at high temperatures, but also in high magnetic fields, For the cuprate superconductors, and in particular for Hg-based materials, the combination of high transition temperature(1-3) and large mass anisotropy implies that the transport properties will be intrinsically limited by large thermal fluctuations and short superconducting coherence lengths(4). Here we report that high-quality c-axis-oriented epitaxial films of the compound HgBa2CaCu6O6+delta (Hg-1212; ref, 5) can support large in-plane current densities at temperatures higher than has been achieved for other superconductors. In low magnetic fields oriented normal to the film surface, we find J(c) greater than or similar to 10(7) A cm(-2) at 5 K and J(c) similar to 10(5) A cm(-2) at 110 K, at least an order of magnitude larger than for Bi- or Tl-based films(6-11). For in-plane magnetic fields, the critical current (similar to 10(8) A cm(-2)) is close to the theoretical limit even at high fields, indicative of strong intrinsic pinning in this compound. [References: 25]
机译:过渡温度高于130 K的汞基氧化铜超导体系列的最新发现(1,2)具有相当大的技术意义,但高温超导体在许多应用中的可行性最终将取决于电流的大小。它们不仅能够在高温下而且在强磁场下也能够支撑的密度J(c),对于铜酸盐超导体,特别是对于Hg基材料,结合了高转变温度(1- 3)和大质量各向异性意味着传输特性将受到大的热波动和短的超导相干长度的固有限制(4)。在这里,我们报道了化合物HgBa2CaCu6O6 + delta(Hg-1212; ref,5)的高质量c轴取向外延膜可以在比其他超导体更高的温度下支持较大的面内电流密度。在垂直于薄膜表面取向的低磁场中,我们发现在5 K时J(c)大于或类似于10(7)A cm(-2),而J(c)类似于10(5)A cm(- 2)在110 K下,至少比基于Bi或Tl的薄膜(6-11)大一个数量级。对于平面磁场,临界电流(类似于10(8)A cm(-2))即使在高磁场下也接近理论极限,这表明该化合物具有强大的固有钉扎作用。 [参考:25]

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