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A novel design strategy for nanoparticles on nanopatterns: interferometric lithographic patterning of Mms6 biotemplated magnetic nanoparticles

机译:纳米图案上纳米粒子的新设计策略:Mms6生物模板磁性纳米粒子的干涉平版印刷图案

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Nanotechnology demands the synthesis of highly precise, functional materials, tailored for specific applications. One such example is bit patterned media. These high-density magnetic data-storage materials require specific and uniform magnetic nanoparticles (MNPs) to be patterned over large areas (cm(2) range) in exact nanoscale arrays. However, the realisation of such materials for nanotechnology applications depends upon reproducible fabrication methods that are both precise and environmentally-friendly, for cost-effective scale-up. A potentially ideal biological fabrication methodology is biomineralisation. This is the formation of inorganic minerals within organisms, and is known to be highly controlled down to the nanoscale whilst being carried out under ambient conditions. The magnetotactic bacterium Magnetospirillum magneticum AMB-1 uses a suite of dedicated biomineralisation proteins to control the formation of magnetite MNPs within their cell. One of these proteins, Mms6, has been shown to control formation of magnetite MNPs in vitro. We have previously used Mms6 on micro-contact printed (mu CP) patterned self-assembled monolayer (SAM) surfaces to control the formation and location of MNPs in microscale arrays, offering a bioinspired and green-route to fabrication. However, mCP cannot produce patterns reliably with nanoscale dimensions, and most alternative nanofabrication techniques are slow and expensive. Interferometric lithography (IL) uses the interference of laser light to produce nanostructures over large areas via a simple process implemented under ambient conditions. Here we combine the bottom-up biomediated approach with a top down IL methodology to produce arrays of uniform magnetite MNPs (86 +/- 21 nm) with a period of 357 nm. This shows a potentially revolutionary strategy for the production of magnetic arrays with nanoscale precision in a process with low environmental impact, which could be scaled readily to facilitate large-scale production of nanopatterned surface materials for technological applications.
机译:纳米技术要求合成针对特定应用量身定制的高精度功能材料。这样的例子之一是位模式媒体。这些高密度磁性数据存储材料需要特定且均匀的磁性纳米颗粒(MNP)在精确的纳米级阵列中的大面积(cm(2)范围)上进行图案化。然而,用于纳米技术应用的此类材料的实现取决于可复制的制造方法,该方法既精确又对环境友好,从而具有成本效益地扩大规模。潜在理想的生物制造方法是生物矿化。这是生物体内无机矿物质的形成,已知在环境条件下进行时可高度控制到纳米级。趋磁细菌Magnetospirillum magneticum AMB-1使用一套专用的生物矿化蛋白来控制其细胞内磁铁矿MNP的形成。这些蛋白质之一Mms6已显示在体​​外可控制磁铁矿MNP的形成。我们以前已经在微接触印刷(mu CP)图案化的自组装单层(SAM)表面上使用Mms6,以控制MNP在微尺度阵列中的形成和位置,从而提供了具有生物启发性的绿色制造路径。然而,mCP不能可靠地产生具有纳米级尺寸的图案,并且大多数替代性的纳米加工技术是缓慢且昂贵的。干涉光刻(IL)通过在环境条件下实施的简单工艺,利用激光的干涉在大面积上产生纳米结构。在这里,我们将自下而上的生物介导方法与自上而下的IL方法相结合,以产生周期为357 nm的均匀磁铁矿MNP(86 +/- 21 nm)阵列。这显示了在具有低环境影响的过程中生产具有纳米级精度的磁性阵列的潜在革命性策略,可以容易地进行规模调整以促进大规模生产用于技术应用的纳米图案表面材料。

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