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首页> 外文期刊>Biomacromolecules >Polyaspartic Acid Concentration Controls the Rate of Calcium Phosphate Nanorod Formation in High Concentration Systems
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Polyaspartic Acid Concentration Controls the Rate of Calcium Phosphate Nanorod Formation in High Concentration Systems

机译:聚天冬氨酸浓度控制高浓度体系中磷酸钙纳米棒形成的速率

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摘要

Polyelectrolytes are known to greatly affect calcium phosphate (CaP) mineralization. The reaction kinetics as well as the CaP phase, morphology and aggregation state depend on the relative concentrations of the polyelectrolyte and the inorganic ions in a complex, nonlinear manner. This study examines the structural evolution and kinetics of polyaspartic acid (pAsp) directed CaP mineralization at high concentrations of polyelectrolytes, calcium, and total phosphate (19-30 mg/mL pAsp, 50-100 mM Ca2+, Ca/P = 2). Using a novel combination of characterization techniques including cryogenic transmission electron microscopy (cryo-TEM), spectrophotometry, X-ray total scattering pair distribution function analysis, and attenuated total reflectance Fourier transform infrared spectroscopy (ATR-FTIR), it was determined that the CaP mineralization occurred over four transition steps. The steps include the formation of aggregates of pAsp stabilized CaP spherical nanoparticles (sNP), crystallization of sNP, oriented attachment of the sNP into nanorods, and further crystallization of the nanorods. The intermediate aggregate sizes and the reaction kinetics were found to be highly polymer concentration dependent while the sizes of the particles were not concentration dependent. This study demonstrates the complex role of pAsp in controlling the mechanism as well as the kinetics of CaP mineralization.
机译:已知聚电解质大大影响磷酸钙(帽)矿化。反应动力学以及帽相,形态和聚集状态取决于聚电解质和无机离子以复合物的相对浓度。本研究探讨了聚天冬氨酸(PASP)定向帽矿化的结构演变和动力学,在高浓度的聚电解质,钙和总磷酸盐(19-30mg / ml PASP,50-100mM CCO2 +,CA / P = 2)中。使用新颖的表征技术组合,包括低温透射电子显微镜(Cryo-TEM),分光光度法,X射线总散射对分布函数分析,并减弱总反射率傅里叶变换红外光谱(ATR-FTIR),确定盖子矿化发生在四个过渡步骤中。该步骤包括形成覆盖稳定帽球形纳米颗粒(SNP)的聚集体,SNP的结晶,将SNP的连接到纳米棒中,进一步结晶纳米棒。发现中间骨料尺寸和反应动力学依赖于高分子浓度,同时颗粒的尺寸不依赖性。本研究证明了皮满的复杂作用控制机制以及盖帽矿化的动力学。

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