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Influence of morphology on electrical and optical properties of graphene/Al-doped ZnO-nanorod composites

机译:形态对石墨烯/乙烯ZnO-Nanorod复合材料电气和光学性能的影响

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The development of future 3D-printed electronics relies on the access to highly conductive inexpensive materials that are printable at low temperatures (100 degrees C). The implementation of available materials for these applications are, however, still limited by issues related to cost and printing quality. Here, we report on the simple hydrothermal growth of novel nanocomposites that are well suited for conductive printing applications. The nanocomposites comprise highly Al-doped ZnO nanorods grown on graphene nanoplatelets (GNPs). The ZnO nanorods play the two major roles of (i) preventing GNPs from agglomerating and (ii) promoting electrical conduction paths between the graphene platelets. The effect of two different ZnO-nanorod morphologies with varying Al-doping concentration on the nanocomposite conductivity and the graphene dispersity are investigated. Time-dependent absorption, photoluminescence and photoconductivity measurements show that growth in high pH solutions promotes a better graphene dispersity, higher doping levels and enhanced bonding between the graphene and the ZnO nanorods. Growth in low pH solutions yields samples characterized by a higher conductivity and a reduced number of surface defects. These samples also exhibit a large persistent photoconductivity attributed to an effective charge separation and transfer from the nanorods to the graphene platelets. Our findings can be used to tailor the conductivity of novel printable composites, or for fabrication of large volumes of inexpensive porous conjugated graphene-semiconductor composites.
机译:未来3D印刷电子设备的开发依赖于对低温可印刷的高导电廉价材料(&lt 19℃)。然而,这些应用的可用材料的实施仍然受到与成本和印刷质量相关的问题的限制。在这里,我们报告了适合导电印刷应用的新型纳米复合材料的简单水热生长。纳米复合材料包含在石墨烯纳米泊型(GNPS)上生长的高度抗ZnO纳米棒。 ZnO Nanorods发挥了(i)的两个主要作用,防止GNP从附聚物和(ii)促进石墨烯血小板之间的导电路径。研究了两种不同的ZnO-Nanorod形态对纳米复合电导率和石墨烯分散性不同的ZnO-Nanorod形态的影响。时间依赖性吸收,光致发光和光电导测量表明,高pH溶液中的生长促进了石墨烯和ZnO纳米棒之间的更好的石墨烯分散度,更高的掺杂水平和增强的粘合。低pH溶液中的生长产生具有较高导电性和减少的表面缺陷的样品。这些样品还表现出归因于有效电荷分离并从纳米棒转移到石墨烯血小板的大持续光电导。我们的发现可用于根据新颖的可打印复合材料来定制电导率,或用于制造大量的廉价多孔共轭石墨烯 - 半导体复合材料。

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