Department of Chemical and Biomolecular Engineering, University of Houston, 4226 Martin Luther King Boulevard, Houston, TX, 77204, USA.
Department of Materials and Environmental Chemistry, Stockholm University, Stockholm, 106 91, Sweden.
Adv Mater. 2022 Dec;34(49):e2205885. doi: 10.1002/adma.202205885. Epub 2022 Oct 27.
The synthesis of zeolites with nano-sized dimensions is often limited to a narrow design space that conventionally relies upon the design of organics to direct hierarchical materials. Here, it is demonstrated that the addition of an inorganic modifier, germanium oxide (GeO ), to a zeolite growth mixture directs the formation of crystals with ultrasmall dimensions. This effect is observed for zeolites ZSM-11 and ZSM-5 over a range of synthesis conditions wherein the role of GeO in zeolite crystallization deviates from its typical function as a heteroatom. Notably, the final products contain trace amounts of Ge, which indicates the inorganic modifier does not compete for sites in the zeolite framework based on its formation of a discrete phase that enables GeO recovery. Catalytic tests using the methanol-to-hydrocarbons reaction reveal significant enhancement in the performance of zeolite catalysts prepared with GeO compared to reported examples of nano-sized zeolites. These findings highlight a potentially generalizable and commercially viable synthesis method to reduce mass-transport limitations in zeolites for diverse applications.
沸石的纳米级合成通常受到局限,因为其设计空间狭窄,传统上依赖于有机物的设计来指导分级材料。在这里,证明了在沸石生长混合物中添加无机改性剂氧化锗(GeO )可以指导具有超小尺寸的晶体的形成。在一系列合成条件下,观察到 ZSM-11 和 ZSM-5 沸石的这种效应,其中 GeO 在沸石结晶中的作用偏离了其作为杂原子的典型功能。值得注意的是,最终产物中含有痕量的 Ge,这表明无机改性剂不会基于其形成离散相而与沸石骨架中的位点竞争,从而实现 GeO 的回收。使用甲醇制烃反应的催化测试表明,与报道的纳米沸石相比,用 GeO 制备的沸石催化剂的性能有了显著提高。这些发现突出了一种潜在的可广泛应用且具有商业可行性的合成方法,可以减少沸石在各种应用中的传质限制。