分子
纳米孔
胶体
扩散
材料科学
纳米技术
化学物理
纳米晶
化学反应
俘获
紫外线
纳米颗粒
化学工程
光化学
化学
光电子学
物理化学
物理
有机化学
工程类
热力学
生态学
生物
作者
Hui Zhao,Soumyo Sen,Udayabhaskararao Thumu,Michał Sawczyk,Kristina Kučanda,Debasish Manna,Pintu K. Kundu,Jiwoong Lee,Petr Král,Rafał Klajn
标识
DOI:10.1038/nnano.2015.256
摘要
The chemical behaviour of molecules can be significantly modified by confinement to volumes comparable to the dimensions of the molecules. Although such confined spaces can be found in various nanostructured materials, such as zeolites, nanoporous organic frameworks and colloidal nanocrystal assemblies, the slow diffusion of molecules in and out of these materials has greatly hampered studying the effect of confinement on their physicochemical properties. Here, we show that this diffusion limitation can be overcome by reversibly creating and destroying confined environments by means of ultraviolet and visible light irradiation. We use colloidal nanocrystals functionalized with light-responsive ligands that readily self-assemble and trap various molecules from the surrounding bulk solution. Once trapped, these molecules can undergo chemical reactions with increased rates and with stereoselectivities significantly different from those in bulk solution. Illumination with visible light disassembles these nanoflasks, releasing the product in solution and thereby establishes a catalytic cycle. These dynamic nanoflasks can be useful for studying chemical reactivities in confined environments and for synthesizing molecules that are otherwise hard to achieve in bulk solution.
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