Synthesis of zeolitic imidazolate framework-8 and gold nanoparticles in a sustained out-of-equilibrium state

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作者
Brigitta Dúzs
Gábor Holló
Gábor Schuszter
Dezső Horváth
Ágota Tóth
István Szalai
István Lagzi
机构
[1] Eötvös Loránd University,Laboratory of Nonlinear Chemical Dynamics, Institute of Chemistry
[2] Budapest University of Technology and Economics,Department of Physics
[3] Budapest University of Technology and Economics,MTA
[4] University of Szeged,BME Condensed Matter Physics Research Group
[5] University of Szeged,Department of Physical Chemistry and Materials Science
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The design and synthesis of crystalline materials are challenging due to the proper control over the size and polydispersity of the samples, which determine their physical and chemical properties and thus applicability. Metal − organic frameworks (MOFs) are promising materials in many applications due to their unique structure. MOFs have been predominantly synthesized by bulk methods, where the concentration of the reagents gradually decreased, which affected the further nucleation and crystal growth. Here we show an out-of-equilibrium method for the generation of zeolitic imidazolate framework-8 (ZIF-8) crystals, where the non-equilibrium crystal growth is maintained by a continuous two-side feed of the reagents in a hydrogel matrix. The size and the polydispersity of the crystals are controlled by the fixed and antagonistic constant mass fluxes of the reagents and by the reaction time. We also present that our approach can be extended to synthesize gold nanoparticles in a redox process.
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