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Toward monodispersed silver nanoparticles with unusual thermal stability

机译:迈向具有异常热稳定性的单分散银纳米颗粒

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A novel in situ autoreduction route has been developed, by which monodispersed silver nanoparticles with tunable sizes could be easily fabricated on silica-based materials, especially inside the channels of mesoporous silica (MPS). C-13 CP/MAS NMR spectroscopy was employed to monitor the whole assembly process. It was demonstrated that the amino groups of APTS (aminopropyltriethoxyl silane)modified MPS can be used to anchor formaldehyde to form novel reducing species (NHCH2OH), on which Ag(NH3)(2)NO3 could be in situ reduced. Monodispersed silver nanoparticles were thus obtained. In situ XRD and in situ TEM experiments were used to investigate and compare the thermal stabilities of silver nanoparticles on the external surface of silica gels (unconfined) and those located inside the channels of SBA-15 (confined). It was observed that unconfined silver nanoparticles tended to agglomerate at low temperatures (i.e., lower than 773 K). The aggregation of silver nanoparticles became more serious at 773 K. However, for those confined silver nanoparticles, no coarsening process was observed at 773 K, much higher than its Tammann temperature (i.e., 617 K). Only when the treating temperature was higher than 873 K could the agglomeration of those confined silver nanoparticles happen with time-varying via the Ostwald ripening process. The confinement of mesopores played a key role in improving the thermal stabilities of silver nanoparticles (stable up to 773 K without any observable coarsening), which is essential to the further investigations on their chemical (e.g., catalytic) properties.
机译:已经开发了一种新颖的原位自还原途径,通过该途径,可以容​​易地在基于二氧化硅的材料上,特别是在中孔二氧化硅(MPS)的通道内制造尺寸可调的单分散银纳米颗粒。使用C-13 CP / MAS NMR光谱监测整个组装过程。结果表明,APTS(氨基丙基三乙氧基硅烷)改性的MPS的氨基可用于锚定甲醛以形成新型还原性物质(NHCH2OH),在其上可原位还原Ag(NH3)(2)NO3。由此获得单分散的银纳米颗粒。使用原位XRD和原位TEM实验研究并比较了硅胶外表面(无侧限)和位于SBA-15通道内部(无侧限)的银纳米粒子的热稳定性。观察到,无限制的银纳米颗粒在低温下(即低于773K)趋于附聚。银纳米颗粒的聚集在773 K处变得更加严重。但是,对于那些受限的银纳米颗粒,在773 K处未观察到粗化过程,该过程远高于其Tammann温度(即617 K)。只有当处理温度高于873 K时,这些受限银纳米颗粒的团聚才会通过Ostwald熟化过程随时间而发生。介孔的限制在改善银纳米颗粒的热稳定性(稳定至773 K,没有任何可观察到的粗化)中起关键作用,这对于进一步研究其化学(例如催化)性能至关重要。

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