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首页> 外文期刊>Nanotechnology >Aqueous synthesis of highly monodisperse sub-100nm AgCl nanospheres/cubes and their plasmonic nanomesh replicas as visible-light photocatalysts and single SERS probes
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Aqueous synthesis of highly monodisperse sub-100nm AgCl nanospheres/cubes and their plasmonic nanomesh replicas as visible-light photocatalysts and single SERS probes

机译:作为可见光光催化剂和单次SERS探针的高度单分散亚-100nm AgCl纳米纳米纳米纳米纳米球/立方体及其等离子体纳米型复制品

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摘要

Despite the distinctive electrochemical and photocatalytic properties of nanostructured silver chloride (AgCl), the shape-and size-dependence of their properties have not been thoroughly investigated to date. The most substantial reason responsible for this incomplete study and the subsequent limited applications is the failure in controlling the structure of AgCl nanomaterials, mainly owing to the challenging synthetic conditions including organic phase and high reaction temperature. In this work, we reported a rapid one-pot room-temperature aqueous synthesis of highly monodisperse sub100 nm AgCl nanomaterials with various shapes and sizes by controlling the precursor (Ag+ and AuCl4-) ratios. The remaining unreacted metal precursors (Ag+ and AuCl4-) used to produce AgClNC were subsequently reduced by ascorbic acid on the surface of the synthesized AgCl nanomaterials to form Ag/Au bimetallic nanomesh structures (AgClNC#AuAgCMs and SMs). After the removal of the AgCl nanotemplates, only nanomesh structures (AuAgCMs and SMs) were obtained. Importantly, we successfully decreased the size of the AgCl nanomaterials which were replicated into bimetallic spherical and cubic nanomesh structures that were small enough (similar to 100 nm) to show intense surface-plasmon-absorption bands. Based on these unique chemical and physical properties, we could take advantage of the plasmonic photocatalysis properties of the complex comprising semiconducting AgCl/metallic nanomesh replica for the complete removal of the environmentally harmful Cr6+ in the presence of sacrificial agents such as formic acid. Finally, the novel bimetallic nanomesh structures proved themselves to exhibit intense surface-enhanced Raman scattering properties in a single-particle enhancing the electromagnetic field.
机译:尽管纳米结构氯化银(AgCl)的独特电化学和光催化性能,但其性质的形状和尺寸依赖性迄今尚未彻底研究。负责这种不完整的研究的最具实质性原因和随后的有限应用是控制AgCl纳米材料结构的失败,主要是由于包括有机相和高反应温度的具体化的合成条件。在这项工作中,通过控制前体(Ag +和Aucl 4-)比率,我们报道了一种快速的单分散性Sub100nm AgCl纳米材料的一罐室温水性合成,其具有各种形状和尺寸。随后通过合成的AgCl纳米材料表面上的抗坏血酸减少了用于生产ACCLNC的剩余的未反应金属前体(Ag +和Aucl4-),以形成Ag / Au双金属Nanomesh结构(AGCLNC #Auagcms和SMS)。除去AgCl纳米材料后,仅获得纳米表结构(AuAgcms和SMS)。重要的是,我们成功地降低了复制成足够小(类似于100nm)的双金属球形和立方纳米结构的AgCl纳米材料的大小以显示强烈的表面等离子体吸收带。基于这些独特的化学和物理性质,我们可以利用包含半导体AgCl /金属纳米型复制品的复合物的等离子体光催化性能,以在牺牲剂如甲酸如牺牲剂存在下完全除去环保CR6 +。最后,新颖的双金属纳米表结构证明了自己在单粒子增强电磁场中表现出强烈的表面增强拉曼散射性能。

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