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Scalable Synthesis of Ag Networks with Optimized Sub-monolayer Au-Pd Nanoparticle Covering for Highly Enhanced SERS Detection and Catalysis

机译:具有优化的亚单层Au-Pd纳米粒子覆盖的Ag网络的可扩展合成用于高度增强的SERS检测和催化。

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摘要

Highly porous tri-metallic AgxAuyPdz networks with a sub-monolayer bimetallic Au-Pd nanoparticle coating were synthesized via a designed galvanic replacement reaction of Ag nanosponges suspended in mixed solutions of HAuCl4 and K2PdCl4. The resulting networks’ ligaments have a rough surface with bimetallic nanoparticles and nanopores due to removal of Ag. The surface morphology and composition are adjustable by the temperature and mixed solutions’ concentration. Very low combined Au and Pd atomic percentage (1−x) where x is atomic percentage of Ag leads to sub-monolayer nanoparticle coverings allowing a large number of active boundaries, nanopores, and metal-metal interfaces to be accessible. Optimization of the Au/Pd atomic ratio y/z obtains large surface-enhanced Raman scattering detection sensitivity (at y/z = 5.06) and a higher catalytic activity (at y/z = 3.55) toward reduction reactions as benchmarked with 4-nitrophenol than for most bimetallic catalysts. Subsequent optimization of x (at fixed y/z) further increases the catalytic activity to obtain a superior tri-metallic catalyst, which is mainly attributed to the synergy of several aspects including the large porosity, increased surface roughness, accessible interfaces, and hydrogen absorption capacity of nanosized Pd. This work provides a new concept for scalable synthesis and performance optimization of tri-metallic nanostructures.
机译:通过设计的悬浮在HAuCl4和K2PdCl4混合溶液中的Ag纳米海绵的电置换反应,合成了具有亚单层双金属Au-Pd纳米涂层的高度多孔的三金属AgxAuyPdz网络。由于去除了银,所得的网状韧带的表面粗糙,带有双金属纳米颗粒和纳米孔。表面形态和组成可通过温度和混合溶液的浓度来调节。非常低的Au和Pd原子百分数(1-x),其中x是Ag的原子百分数,导致亚单层纳米颗粒覆盖,从而可以使用大量的活性边界,纳米孔和金属-金属界面。 Au / Pd原子比y / z的优化获得较大的表面拉曼散射检测灵敏度(y / zy = 5.06)和更高的催化活性(y / z = 3.55),以4-硝基苯酚为基准比大多数双金属催化剂x的后续优化(以y / z固定)进一步提高了催化活性,从而获得了优异的三金属催化剂,这主要归因于多个方面的协同作用,包括大孔隙率,增加的表面粗糙度,可及的界面以及氢吸收纳米钯的容量。这项工作为三金属纳米结构的可扩展合成和性能优化提供了新概念。

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