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Particulate Coatings via Evaporation-Induced Self-Assemblyof Polydisperse Colloidal Lignin on Solid Interfaces

机译:通过蒸发诱导的自组装形成的颗粒涂层分散胶体木质素对固体界面的影响

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摘要

Polydisperse smooth and spherical biocolloidal particles were suspended in aqueous media and allowed to consolidate via evaporation-induced self-assembly. The stratification of the particles at the solid–air interface was markedly influenced, but not monotonically, by the drying rate. Cross-sectional imaging via electron microscopy indicated a structured coating morphology that was distinctive from that obtained by using particles with a mono- or bimodal distribution. Segregation patterns were found to derive from the interplay of particle diffusion, interparticle forces, and settling dynamics. Supporting our experimental findings, computer simulations showed an optimal drying rate for achieving maximum segregation. Overall, stratified coatings comprising nano- and microparticles derived from lignin are expected to open opportunities for multifunctional structures that can be designed and predicted on the basis of experimental Péclet numbers and computational order.
机译:将多分散的光滑球形生物胶体颗粒悬浮在水性介质中,并通过蒸发诱导的自组装进行固结。固气界面的颗粒分层受干燥速率的影响很大,但不是单调的。通过电子显微镜的横截面成像表明结构化的涂层形态不同于使用具有单峰或双峰分布的颗粒获得的结构形态。发现分离模式源自颗粒扩散,颗粒间作用力和沉降动力学的相互作用。支持我们的实验结果的计算机模拟显示了实现最大偏析的最佳干燥速率。总体而言,包含衍生自木质素的纳米和微粒的分层涂层有望为多功能结构打开机遇,这些多功能结构可以根据实验佩克利数和计算顺序进行设计和预测。

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