首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Fabrication of hollow nanoporous gold nanoshells with high structural tunability based on the plasma etching of polymer colloid templates
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Fabrication of hollow nanoporous gold nanoshells with high structural tunability based on the plasma etching of polymer colloid templates

机译:基于聚合物胶体模板等离子体蚀刻的高结构可调性制造空心纳米多孔金纳米孔

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摘要

Recently, nanoporous gold nanoparticles have attracted great interest due to their optical and catalytic properties. However, most reports on their fabrication are based on the dealloying method. Here, we report a new fabrication technique for hollow nanoporous gold nanoshells (NPGNSs) with high structural tunability by sintering chemically synthesized gold nanoparticles (AuNPs) on the surface of polymer colloid particles. Size reduction of the colloid template by plasma etching induces contact of the AuNPs on the colloid surface. Elimination of the capping layers of AuNPs by plasma etching facilitates sintering of the contacted AuNPs. Complete removal of the colloid template after AuNP sintering results in hollow NPGNSs. A combination of AuNPs and polymer colloid templates of different sizes can change the structure and optical properties of hollow NPGNSs. Furthermore, AuNPs of different shapes, such as gold nanorods with a high aspect ratio and spherical AuNPs, can be used to make hollow NPGNSs, which gives more flexibility in tuning their structures. Our proposed fabrication technique based on shrinkage of templates and sintering of nanoparticles can be a new platform to prepare hollow nanoporous metal structures having nanoscale overall sizes with high structural tunability.
机译:最近,纳米孔金纳米颗粒由于其光学和催化性能而引起了巨大的兴趣。然而,大多数关于其制造的报告基于易用的方法。在这里,我们通过在聚合物胶体颗粒的表面上烧结化学合成的金纳米粒子(AUNP)来报告一种具有高结构可调性的空心纳米多孔金纳米烯壳(NPGNS)的新制造技术。通过等离子体蚀刻将胶体模板的尺寸减小诱导耳膜对胶体表面上的接触。通过等离子体蚀刻消除叠层层的覆盖层促进了接触的AUNP的烧结。在AUNP烧结导致中空NPGNS中,完全除去胶体模板。不同尺寸的AUNP和聚合物胶体模板的组合可以改变中空NPGNS的结构和光学性质。此外,可以使用诸如具有高纵横比和球形AUNP的金纳米棒等不同形状的剖腹产,这可以制造空心的NPGNS,这在调整它们的结构方面提供了更大的灵活性。我们所提出的基于模板收缩和纳米颗粒烧结的制造技术可以是制备具有高结构可调性的纳米级整体尺寸的空心纳米多孔金属结构的新平台。

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