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Optimizing nanocomposites through nanocrystal surface chemistry : superconducting YBa2Cu3O7 thin films via low-fluorine metal organic deposition and preformed metal oxide nanocrystals

机译:通过纳米晶表面化学优化纳米复合材料:通过低氟金属有机沉积和预制金属氧化物纳米晶体超导YBa2Cu3O7薄膜

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摘要

Achieving low cost, safe, reproducible, and high performance superconducting thin films of YBa2Cu3O7-delta is essential to bring this material to the energy market. Here, we report on the chemical solution deposition of YBa2Cu3O7-delta nanocomposites from environmentally benign precursors with a low fluorine content. Preformed ZrO2 nanocrystals (3.5 nm) were stabilized in a methanolic precursor solution via two strategies: charge stabilization and steric stabilization. Counter-intuitively, charge stabilization did not result in high quality superconducting layers, while the steric stabilization resulted in highly reproducible nanocomposite thin films with a self-field J(c) of 4-5 MA cm(-2) (77 K) and a much smaller decay of J(c) with magnetic field compared to YBa2Cu3O7-delta without nanocrystals. In addition, these nanocomposite films show a strong pinning force enhancement and a reduced J(c) anisotropy compared to undoped YBa2Cu3O7-delta films. Given the relationship between the nanocrystal surface chemistry and final nanocomposite performance, we expect these results to be also relevant for other nanocomposite research.
机译:实现低成本,安全,可复制和高性能的YBa2Cu3O7-δ超导薄膜对于将这种材料推向能源市场至关重要。在这里,我们报告从低氟含量的环境友好的前驱体化学沉积YBa2Cu3O7-δ纳米复合材料。通过两种策略将预制的ZrO2纳米晶体(3.5 nm)稳定在甲醇前体溶液中:电荷稳定化和空间稳定化。违反直觉,电荷稳定化不会产生高质量的超导层,而空间稳定化会产生具有4-5 MA cm(-2)(77 K)的自电场J(c)的高度可再现的纳米复合薄膜。与没有纳米晶体的YBa2Cu3O7-δ相比,具有磁场的J(c)的衰减要小得多。此外,与未掺杂的YBa2Cu3O7-δ薄膜相比,这些纳米复合薄膜显示出强大的钉扎力增强和J(c)各向异性降低。考虑到纳米晶体表面化学性质与最终纳米复合材料性能之间的关系,我们预计这些结果也将与其他纳米复合材料研究相关。

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