Lu Youhua, Fang Ye-Guang, Chen Yang, Xue Han, Mao Junqiang, Guan Bo, Liu Jie, Li Jinping, Li Libo, Zhu Chongqin, Fang Wei-Hai, Russell Thomas P, Wang Jianjun
Beijing National Laboratory for Molecular Science, Institute of Chemistry, Chinese Academy of Sciences, Beijing, China.
Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, China.
Nat Commun. 2025 Apr 10;16(1):3397. doi: 10.1038/s41467-025-56949-w.
Current strategies to tailor the formation of nanoparticle clusters require specificity and directionality built into the surface functionalization of the nanoparticles by involved chemistries that can alter their properties. Here, we describe a non-disruptive approach to place nanomaterials of different shapes between nanosheets, i.e., nano-sandwiches, absent any pre-modification of the components. We demonstrate this with metal-organic frameworks (MOFs) and silicon oxide (SiO) nanoparticles sandwiched between graphene oxide (GO) nanosheets, MOF-GO and SiO-GO, respectively. For the MOF-GO, the MOF shows significantly enhanced conductivity and retains its original crystallinity, even after one-year exposure to aqueous acid/base solutions, where the GO effectively encapsulates the MOF, shielding it from polar molecules and ions. The MOF-GOs are shown to effectively capture CO from a high-humidity flue gas while fully maintaining their crystallinities and porosities. Similar behavior is found for other MOFs, including water-sensitive HKUST-1 and MOF-5, promoting the use of MOFs in practical applications. The nanoparticle sandwich strategy provides opportunities for materials science in the design of nanoparticle clusters consisting of different materials and shapes with predetermined spatial arrangements.
当前定制纳米颗粒簇形成的策略需要通过能够改变其性质的相关化学方法,在纳米颗粒的表面功能化中构建特异性和方向性。在此,我们描述了一种非破坏性方法,即在纳米片之间放置不同形状的纳米材料,即纳米三明治结构,而无需对组分进行任何预先修饰。我们分别用夹在氧化石墨烯(GO)纳米片之间的金属有机框架(MOF)和氧化硅(SiO)纳米颗粒,即MOF-GO和SiO-GO,来证明这一点。对于MOF-GO,即使在暴露于酸性/碱性水溶液一年后,MOF仍显示出显著增强的导电性并保持其原始结晶度,其中GO有效地包裹了MOF,使其免受极性分子和离子的影响。结果表明,MOF-GO能够在高湿度烟道气中有效捕获CO,同时完全保持其结晶度和孔隙率。对于其他MOF,包括对水敏感的HKUST-1和MOF-5,也发现了类似的行为,这促进了MOF在实际应用中的使用。纳米颗粒三明治策略为材料科学在设计由不同材料和形状组成、具有预定空间排列的纳米颗粒簇方面提供了机会。