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Altering crystal growth and annealing in ice-templated scaffolds

机译:在以冰为模板的支架中改变晶体生长和退火

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摘要

The potential applications of ice-templating porous materials are constantly expanding, especially as scaffolds for tissue engineering. Ice-templating, a process utilizing ice nucleation and growth within an aqueous solution, consists of a cooling stage (before ice nucleation) and a freezing stage (during ice formation). While heat release during cooling can change scaffold isotropy, the freezing stage, where ice crystals grow and anneal, determines the final size of scaffold features. To investigate the path of heat flow within collagen slurries during solidification, a series of ice-templating molds were designed with varying the contact area with the heat sink, in the form of the freeze drier shelf. Contact with the heat sink was found to be critical in determining the efficiency of the release of latent heat within the perspex molds. Isotropic collagen scaffolds were produced with pores which ranged from 90 mu m up to 180 mu m as the contact area decreased. In addition, low-temperature ice annealing was observed within the structures. After 20 h at -30 A degrees C, conditions which mimic storage prior to lyophilization, scaffold architecture was observed to coarsen significantly. In future, ice-templating molds should consider not only heat conduction during the cooling phase of solidification, but the effects of heat flow during ice growth and annealing.
机译:冰模板多孔材料的潜在应用正在不断扩大,特别是作为组织工程的支架。冰模板化是利用冰成核和在水溶液中生长的过程,由冷却阶段(在冰成核之前)和冷冻阶段(在冰形成过程中)组成。冷却过程中释放的热量可以改变支架的各向同性,而冰晶生长和退火的冻结阶段则决定了支架特征的最终尺寸。为了研究固化过程中胶原蛋白浆料中的热流路径,设计了一系列冰模板模具,这些模具以不同的接触面积(以冷冻干燥架的形式)与散热器接触。发现与散热器的接触对于确定有机玻璃模具内潜热释放的效率至关重要。随着接触面积的减小,各向同性的胶原蛋白支架产生的孔隙范围从90μm到180μm不等。另外,在结构内观察到低温冰退火。在-30 A的温度下(模拟冻干之前的储存条件)20小时后,观察到支架结构明显变粗。将来,制冰模具不仅应考虑凝固冷却阶段的热传导,还应考虑制冰和退火过程中热流的影响。

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