了解稀释度对亲水和疏水基底上血滴蒸发沉积模式的影响。

ty10086 提交于 周三, 08/25/2021 - 16:42
文章英文标题
Understanding of the role of dilution on evaporative deposition patterns of blood droplets over hydrophilic and hydrophobic substrates.
正文
血液是一种复杂的胶体悬浮液,它携带着无数关于人类健康的信息。了解蒸发动力学及其随之而来的沉积模式在疾病检测中具有直接的相关性。我们报道了在亲水性(玻璃)和疏水性( PDMS,聚二甲基硅氧烷)衬底上全血滴和稀释血滴的蒸发动力学。我们的实验表明,在亲水性基底上蒸发的血滴在冠状区呈现径向和正径向裂纹,在中心区域呈现随机裂纹。利用Griffith能量准则,我们表明当蒸发液滴内部的毛细管压力和由此产生的压应力超过依赖于弹性模量、界面能、体系颗粒浓度的临界应力时,就会发生裂纹形成。冠状区宽度( w )、接触线处膜厚( h )和裂纹间距( p )随血液稀释度的增加而减小。在2.0 ~ 0.8 % HCT (红细胞压积)的稀释范围内,血滴蒸发完成后,由于压应力不足,从开裂状态向未开裂状态转变。对于疏水性基底,整个血滴会发生屈曲而不是开裂,这可以归因于明显的润湿和蒸发动力学。血滴在疏水表面的屈曲是由于红细胞( RBC )与相邻RBC之间形成的半月板之间形成弹性网络而产生的毛细管压力与临界屈曲压力之间的竞争。随着血液稀释度的增加,液滴由屈曲( HCT在21 ~ 42 %之间)向开裂( HCT在21 ~ 2.0 %之间)过渡,并最终向不开裂( HCT在2.0 ~ 0.8 %之间)过渡。我们的研究揭示了影响血滴蒸发的重要物理化学因素之一(即% HCT )的有趣特性以及由此产生的沉积模式在不同疏水性的基底上。
文章内容(英文)
Blood is a complex colloidal suspension which carries myriads of information about human health. Understanding the evaporation dynamics and its consequent deposition patterns have direct relevance in disease detection. We report evaporation dynamics of whole and diluted blood droplets over hydrophilic (glass) and hydrophobic (PDMS, polydimethylsiloxane) substrates. Our experiments show that blood drops evaporating on a hydrophilic substrate exhibit radial and orthoradial cracks in the coronal region and random cracks in the central region. Using Griffith's energy criterion, we show that crack formation takes place when the capillary pressure and the resulting compressive stress inside the evaporating droplet exceeds critical stress which depends on the elastic modulus, interfacial energy, and the particle concentration of the system. The width of the coronal region (w), the film thickness (h) at the contact line, and the crack pitch (p) decrease with increasing blood dilution. In the dilution range of 2.0-0.8% HCT (hematocrit), the transition from the cracking to the non-cracking regime is observed, which can be attributed to inadequate compressive stress available even after the evaporation of the blood droplet is completed. For the hydrophobic substrate, buckling instead of cracking is observed for the whole blood droplets, which can be attributed to the distinct wetting and evaporation kinetics. The buckling of the blood drop on a hydrophobic surface is attributed to the competition between capillary pressure originated due to the formation of an elastic network of RBCs (red blood cells) and the menisci formed between adjacent RBCs, and the critical buckling pressure. With increasing blood dilution, a transition from buckling (between 21 and 42% HCT) to cracking (between 21 and 2.0% HCT) of the droplets, and eventually to the non-cracking regime (between 2.0 and 0.8% HCT) is observed. Our study unravels the interesting attributes about one of the important physico-chemical factors (i.e. % HCT) that affect the evaporation of blood droplets and the resulting deposition patterns on substrates with different hydrophobicity.Y\u0003
来源出处
Journal|[J]Journal of Colloid and Interface ScienceVolume 579, 2020. PP 541-550
DOI
https://doi.org/10.1016/J.JCIS.2020.04.109

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