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Formation of a xerogel in reduced gravity using the acid catalysed silica sol-gel reaction

机译:使用酸性催化二氧化硅溶胶 - 凝胶反应形成重力减小的Xerogel

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An acid catalysed silica sol-gel reaction was used to create a xerogel in reduced gravity. Samples were formed in a special apparatus which utilised vacuum and heating to speed up the gelation process. Testing was conducted aboard NASA's KC-135 aircraft which flies a parabolic trajectory, producing a series of 25 second reduced gravity periods. The samples formed in reduced gravity were compared against a control sample formed in normal gravity. 29Si NMR and nitrogen adsorption/desorption techniques yielded information on the molecular and physical structure of the xerogels. The microstructure of the reduced gravity samples contained more Q4 groups and less Q3 and Q2 groups than the control sample. The pore size of the reduced gravity samples was also larger than the control sample. This indicated that in a reduced gravity environment, where convection is lessened due to the removal of buoyancy forces, the microstructure formed through cyclisation reactions rather than bimolecularisation reactions. The latter requires the movement of molecules for reactions to occur whereas cyclisation only requires a favourable configuration. Q4 groups are stabilised when contained in a ring structure and are unlikely to undergo repolymerisation. Thus reduced gravity favoured the formation of a xerogel through cyclisation, producing a structure with more highly coordinated Q groups. The xerogel formed in normal gravity contained both chain and ring structures as bimolecularisation reactions were able to effectively compete with cyclisation.
机译:使用酸性催化的二氧化硅溶胶 - 凝胶反应在减少重力中产生Xerogel。在一种特殊的装置中形成样品,该特殊装置用于利用真空和加热以加速凝胶化过程。测试是在NASA的KC-135飞机上进行了抛物线轨迹,产生了一系列25秒的重力周期。将在重力减小的样品与在正常重力中形成的对照样品进行比较。 29SI NMR和氮吸附/解吸技术得到了Xerogels的分子和物理结构的信息。减少重力样品的微观结构含有比对照样品更多的Q4组和Q3和Q2组。减小重力样品的孔径也大于对照样品。这表明在减少重力环境中,在由于去除浮力力而减小对流的情况下,通过循环反应而不是双量子化反应形成的微观结构。后者需要分子的运动以发生反应,而环化仅需要有利的配置。当含有环形结构时Q4基团稳定,并且不太可能经历重新聚合。因此,重力减少了通过环化形成Xerogel,产生具有更高度协调的Q组的结构。在正常重力中形成的Xerogel含有链和环结构,因为双量子化反应能够有效地与环化竞争。

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