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Physicochemical interaction mechanism between nanoparticles and tetrasaccharides (stachyose) during freeze-drying

机译:纳米颗粒与四糖(StOHSOSE)在冷冻干燥期间的物理化学相互作用机理

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Nanoparticle suspensions are thermodynamically unstable and subject to aggregation. Freeze-drying on addition of saccharides is a useful method for preventing aggregation. In the present study, tetrasaccharides (stachyose) was employed as an additive. In addition, we hypothesize the interactive mechanism between stachyose and the nanoparticles during freeze-drying for the first time. The mean particle size of the rehydrated freeze-dried stachyose-containing nanoparticles (104.7 nm) was similar to the initial particle size before freeze-drying (76.8 nm), indicating that the particle size had been maintained. The mean particle size of the rehydrated normal-dried stachyose-containing nanoparticles was 222.2 nm. The powder X-ray diffraction of the freeze-dried stachyose-containing nanoparticles revealed a halo pattern. The powder X-ray diffraction of the normally dried stachyose-containing nanoparticles produced mainly a halo pattern and a partial peak. These results suggest an interaction between the nanoparticles and stachyose, and that this relationship depends on whether the mixture is freeze-dried or dried normally. In the case of normal drying, although most molecules cannot move rapidly thereby settling irregularly, some stachyose molecules can arrange regularly leading to some degree of crystallization and potentially some aggregation. In contrast, during freeze-drying, the moisture sublimed, while the stachyose molecules and nanoparticles were immobilized in the ice. After sublimation, stachyose remained in the space occupied by water and played the role of a buffer material, thus preventing aggregation.
机译:纳米粒子悬浮液是热力学上不稳定的并且受到聚集。添加糖化的冷冻干燥是防止聚集的有用方法。在本研究中,使用四糖(STOOSHYOSE)作为添加剂。此外,我们首次将STOOSOSE和纳米颗粒之间的交互式机制假设为第一次冷冻干燥期间。含补液冷冻干燥的StoShyose的纳米颗粒(104.7nm)的平均粒度类似于冷冻干燥(76.8nm)之前的初始粒度相似,表明粒径已经保持。含补水合物的含正常干燥的STOOSHOLE的纳米颗粒的平均粒径为222.2nm。含有冷冻干燥的STOOSHOSE的纳米颗粒的粉末X射线衍射显示出卤素图案。含通常干燥的StoShyose的纳米颗粒的粉末X射线衍射主要产生卤素图案和部分峰。这些结果表明纳米颗粒和STOOLSOSE之间的相互作用,并且这种关系取决于将混合物是否冷冻干燥或通常干燥。在正常干燥的情况下,尽管大多数分子不能快速移动,但是,一些STOOSOSE分子可以定期设置一定程度的结晶和可能的一些聚集。相反,在冷冻干燥期间,升华的水分,同时将STOOSOSE分子和纳米颗粒固定在冰中。升华后,Stachyose仍然在水占用的空间中,并发挥缓冲材料的作用,从而防止聚集。

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