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Polymer-Functionalised Nanograins of Mg-Doped Amorphous Calcium Carbonate via a Flow-Chemistry Approach

机译:镁掺杂无定形碳酸钙的聚合物功能化纳米粒子的流化学方法

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摘要

Calcareous biominerals typically feature a hybrid nanogranular structure consisting of calcium carbonate nanograins coated with organic matrices. This nanogranular organisation has a beneficial effect on the functionality of these bioceramics. In this feasibility study, we successfully employed a flow-chemistry approach to precipitate Mg-doped amorphous calcium carbonate particles functionalized by negatively charged polyelectrolytes—either polyacrylates (PAA) or polystyrene sulfonate (PSS). We demonstrate that the rate of Mg incorporation and, thus, the ratio of the Mg dopant to calcium in the precipitated amorphous calcium carbonate (ACC), is flow rate dependent. In the case of the PAA-functionalized Mg-doped ACC, we further observed a weak flow rate dependence concerning the hydration state of the precipitate, which we attribute to incorporated PAA acting as a water sorbent; a behaviour which is not present in experiments with PSS and without a polymer. Thus, polymer-dependent phenomena can affect flow-chemistry approaches, that is, in syntheses of functionally graded materials by layer-deposition processes.
机译:钙质生物矿物质通常具有杂化的纳米颗粒结构,该结构由涂覆有有机基质的碳酸钙纳米颗粒组成。该纳米颗粒组织对这些生物陶瓷的功能性具有有益作用。在此可行性研究中,我们成功地采用了流化学方法来沉淀由带负电的聚电解质(聚丙烯酸酯(PAA)或聚苯乙烯磺酸盐(PSS))官能化的掺Mg的无定形碳酸钙颗粒。我们证明,Mg掺入的速率以及因此沉淀的无定形碳酸钙(ACC)中Mg掺杂剂与钙的比率均与流速有关。在PAA官能化的Mg掺杂ACC的情况下,我们进一步观察到与沉淀物水化状态有关的流速依赖性较弱,这归因于掺入的PAA作为吸水剂。在没有聚合物的情况下使用PSS进行实验时不存在的行为。因此,依赖聚合物的现象会影响流化学方法,即通过层沉积过程合成功能梯度材料。

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