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首页> 外文期刊>Biotechnology and bioprocess engineering >Aragonite crystallization in a Christmas-tree model microfluidic device with the addition of magnesium ions
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Aragonite crystallization in a Christmas-tree model microfluidic device with the addition of magnesium ions

机译:在圣诞树模型微流体装置中添加镁离子使文石结晶

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Aragonite is an important dimorph of calcium carbonate, industrially and biologically. However, aragonite is so thermodynamically unstable that it is difficult to understand its formation mechanism. A continuous microfluidic system was employed, in which crystallization was induced only by diffusion in a micron-scale channel. Calcium carbonate (CaCO3) formed by liquid-liquid reaction and magnesium ions (Mg2+) were used as additives. To assess the influence of Mg2+ concentration, the Mg2+/Ca2+ molar ratio was set to 1, 3, and 5. Laminar streams flowed in the detection channel with different concentration gradients. The initial crystallization time (t(I.C)) increased exponentially and the density of crystals decreased as the Mg2+ ion concentration increased. Following transformation of all particles into snowman or sphere shapes, they became spinose sphere-shaped crystals, which was the final form in this study.
机译:文石是工业上和生物学上碳酸钙的重要双晶。然而,文石在热力学上是如此不稳定,以致于难以理解其形成机理。使用连续的微流体系统,其中仅通过在微米级通道中的扩散来诱导结晶。通过液-液反应形成的碳酸钙(CaCO3)和镁离子(Mg2 +)用作添加剂。为了评估Mg2 +浓度的影响,将Mg2 + / Ca2 +摩尔比设置为1、3和5。层流以不同的浓度梯度流入检测通道。随着Mg2 +离子浓度的增加,初始结晶时间(t(I.C))呈指数增长,并且晶体密度下降。将所有粒子转换为雪人或球形形状后,它们变成了刺状球形晶体,这是本研究的最终形式。

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