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首页> 外文期刊>ACS Omega >In Situ Synthesis of Ag–Fe3O4 Nanoparticles Immobilized on Pure Cellulose Microspheres as Recyclable and Biodegradable Catalysts
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In Situ Synthesis of Ag–Fe3O4 Nanoparticles Immobilized on Pure Cellulose Microspheres as Recyclable and Biodegradable Catalysts

机译:原位合成纯纤维素微球固定在纯纤维素微球中的Ag-Fe3O4纳米颗粒作为可回收和可生物降解的催化剂

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The preparation of reusable and eco-friendly materials from renewable biomass resources such as cellulose is an inevitable choice for sustainable development. In this work, cellulose was dissolved in 7 wt % NaOH/12 wt % urea aqueous solution at ?12 °C with rapid stirring. Cellulose microspheres (Cels) were fabricated by a sol–gel transition method. Subsequently, novel magnetic Ag–Fe_(3)O_(4) nanoparticles (NPs) supported on cellulose microspheres were successfully constructed by an in situ one-pot synthesis. The magnetic cellulose microspheres (MCels) displayed a spherical shape with mesoporous structure and had a narrow particle size distribution (10–20 μm). Many nanopores with a pore diameter of 5–40 nm were observed in MCels. The Ag–Fe_(3)O_(4) NPs were immobilized by anchoring with the hydroxyl groups on the surface of Cels. MCels were applied as a microreactor to evaluate their catalytic activities. 4-Nitrophenol (4-NP) could be reduced to 4-aminophenol (4-AP) in 5 min, catalyzed by MCels. Moreover, the magnetic microspheres exhibited a small hysteresis loop and low coercivity. Thus, MCels could be quickly gathered in water under a magnetic field in 10 s, as well as almost 9 cycle times, maintaining relatively high catalytic activity. In this work, cellulose matrix as the catalyst support could be biodegraded completely in the environment. It provided a green process for the utilization of biomass in nanocatalytic applications.
机译:从可再生生物质资源如纤维素制备可重复使用和环保材料是可持续发展的不可避免的选择。在这项工作中,通过快速搅拌将纤维素溶解在7wt%NaOH / 12wt%的尿素水溶液中。通过溶胶 - 凝胶过渡方法制造纤维素微球(CELs)。随后,通过IN原位单罐合成成功构建纤维素微球的新型磁性Ag-Fe_(3)o_(4)纳米颗粒(NPS)。磁性纤维素微球(MCEL)呈现具有介孔结构的球形形状,并且具有窄的粒度分布(10-20μm)。在MCEL中观察到具有孔径为5-40nm的许多纳米孔。通过将羟基锚固在斜面上的羟基上固定Ag-Fe_(3)O_(4)。将MCEL作为微反应器应用以评估它们的催化活性。在5分钟内,4-硝基苯酚(4-NP)可以在5分钟内将其降至4-氨基苯酚(4-AP),由MCEL催化。此外,磁性微球表现出小的滞后回路和低矫顽力。因此,MCEL可以在10 s的磁场下快速聚集在水中,以及几乎循环时间,保持相对高的催化活性。在这项工作中,作为催化剂载体的纤维素基质可以在环境中完全生物降解。它为在纳米催化应用中利用生物质提供了一种绿色方法。

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