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Unconventional Route to Encapsulated Ultrasmall Gold Nanoparticles for High-Temperature Catalysis

机译:封装的超小金纳米颗粒高温催化的非常规途径

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Ultrasmall gold nanoparticles (us-AuNPs, <3 nm) have been recently recognized as surprisingly active and extraordinarily effective green catalysts. Their stability against sintering during reactions, however, remains a serious issue for practical applications. Encapsulating such small nanoparticles in a layer of porous silica can dramatically enhance the stability, but it has been extremely difficult to achieve using conventional sol-gel coating methods due to the weak metal/oxide affinity. In this work, we address this challenge by developing an effective protocol for the synthesis of us-AuNP@SiO_2 single-core/shell nanospheres. More specifically, we take an alternative route by starting with ultrasmall gold hydroxide nanoparticles, which have excellent affinity to silica, then carrying out controllable silica coating in reverse micelles, and finally converting gold hydroxide particles into well-protected us-AuNPs. With a single-core/shell configuration that prevents sintering of nearby us-AuNPs and amino group modification of the Au/SiO_2 interface that provides additional coordinating interactions, the resulting us-AuNP@SiO_2 nanospheres are highly stable at high temperatures and show high activity in catalytic CO oxidation reactions. A dramatic and continuous increase in the catalytic activity has been observed when the size of the us-AuNPs decreases from 2.3 to 1.5 nm, which reflects the intrinsic size effect of the Au nanoparticles on an inert support. The synthesis scheme described in this work is believed to be extendable to many other ultrasmall metal@oxide nanostructures for much broader catalytic applications.
机译:最近,超小金纳米颗粒(us-AuNPs,<3 nm)被公认为是令人惊讶的活性和非常有效的绿色催化剂。然而,它们在反应过程中对烧结的稳定性仍然是实际应用中的严重问题。将这种小的纳米颗粒包裹在多孔二氧化硅层中可以极大地提高稳定性,但是由于金属/氧化物亲和力弱,使用常规的溶胶-凝胶涂覆方法很难实现。在这项工作中,我们通过开发用于合成us-AuNP @ SiO_2单核/壳纳米球的有效协议来应对这一挑战。更具体地说,我们采取另一种方法,从对二氧化硅具有极好的亲和力的超小氢氧化金纳米颗粒开始,然后在反胶束中进行可控的二氧化硅涂层,最后将氢氧化金颗粒转化为保护良好的us-AuNPs。单核/壳结构可防止附近us-AuNP的烧结以及Au / SiO_2界面的氨基修饰(提供额外的配位相互作用),所得的us-AuNP @ SiO_2纳米球在高温下高度稳定,并显示出高活性在催化CO氧化反应中当us-AuNPs的尺寸从2.3 nm减小到1.5 nm时,可以观察到催化活性的显着而连续的增加,这反映了Au纳米颗粒在惰性载体上的固有尺寸效应。据信,在这项工作中描述的合成方案可扩展到许多其他超小金属氧化物纳米结构,以用于更广泛的催化应用。

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