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首页> 外文期刊>CERAMICS INTERNATIONAL >Effect of solids concentration on pore structure of ZnO-foams prepared by particle-stabilized foaming route
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Effect of solids concentration on pore structure of ZnO-foams prepared by particle-stabilized foaming route

机译:固含量对颗粒稳定发泡途径制备的ZnO泡沫孔结构的影响

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摘要

An initially hydrophilic zinc oxide (ZnO) surface with a contact angle (θ) of ~32° has been changed to hydrophobic (θ~90°) through preferential adsorption of anionic sodium dodecul sulfate molecules on the particle surface by electrostatic interactions. Macroporous ZnO foams are prepared by anchoring the hydrophobic ZnO nanoparticles at the air/water interface to stabilize the air-in-water bubbles produced by mechanical frothing, followed then by sintering at elevated temperatures. Solids concentration (φ) of the ZnO suspensions is found critically important to pore structure of the sintered ZnO foams; in which, a broad pore-size distribution (~ 20-160 μm) results and the pore volume decreases pronouncedly from 2.41 mL g~(-1) to 0.85 mL g~(-1) when φ was increased from 3 vol% to 6 vol%. The pore-volume difference stems primarily from the degree of coverage of the nanoparticles on the bubble surface. This is particularly pronounced for the suspension with φ of 3 vol%; to which, interconnected spherical pores with a highly porous wall structure are formed because of the insufficient coverage. The process is indeed facile and is readily applicable to "one-pot" preparation of composite foams, such as ZnO foams decorated with discrete distribution of silver particles.
机译:接触角(θ)为约32°的最初亲水性氧化锌(ZnO)表面通过静电相互作用将阴离子十二烷基硫酸钠分子优先吸附在颗粒表面上,已变为疏水性(θ〜90°)。大孔ZnO泡沫是通过将疏水性ZnO纳米颗粒锚定在空气/水界面以稳定由机械起泡产生的水包气泡,然后在高温下烧结而制备的。发现ZnO悬浮液的固体浓度(φ)对于烧结ZnO泡沫的孔结构至关重要。其中,当φ从3 vol%增大到0.85 mL g〜(-1)时,孔分布宽(〜20-160μm),孔体积从2.41 mL g〜(-1)显着减小到0.85 mL g〜(-1)。 6体积%。孔体积差异主要源自纳米颗粒在气泡表面上的覆盖程度。对于φ为3 vol%的悬浮液,这一点尤其明显。由于覆盖不足,形成了具有高度多孔壁结构的相互连接的球形孔。该方法确实是容易的,并且可以容易地应用于复合泡沫的“一锅法”制备,例如用分散的银颗粒分布装饰的ZnO泡沫。

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