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球质量对单组分有机体系——无水咖啡因的机械化学转化的影响

The effect of ball mass on the mechanochemical transformation of a single-component organic system: anhydrous caffeine.

作者信息

Michalchuk Adam A L, Tumanov Ivan A, Boldyreva Elena V

机构信息

1Novosibirsk State University, Novosibirsk, Russian Federation.

2EaStCHEM School of Chemistry, University of Edinburgh, Edinburgh, UK.

出版信息

J Mater Sci. 2018;53(19):13380-13389. doi: 10.1007/s10853-018-2324-2. Epub 2018 Apr 20.

Abstract

Mechanochemical methodologies, particularly ball milling, have become commonplace in many laboratories. In the present work, we examine the effects of milling ball mass on the polymorphic conversion of anhydrous caffeine. By investigating a single-phase system, the rate-limiting step of particle-particle contact formation is eliminated. It is found that larger milling balls lead to considerably faster conversion rates. Modelling of the transformation rate suggests that a single, time-independent rate constant is insufficient to describe the transformation. Instead, a convolution of at least two rate-determining processes is required to correctly describe the transformation. This suggests that the early stages of the transformation are governed only by the number of particle-ball collisions. As the reaction proceeds, these collisions less frequently involve reactant, and the rate becomes limited by mass transport, or mixing, even in originally single-phase systems, which become multi-phase as the product is formed. Larger milling balls are less hindered by poorly mixed material. This likely results from a combination of higher impact energies and higher surface areas associated with the larger milling balls. Such insight is important for the selective and targeted design of mechanochemical processes.

摘要

机械化学方法,尤其是球磨法,在许多实验室中已变得很常见。在本研究中,我们考察了磨球质量对无水咖啡因多晶型转变的影响。通过研究单相体系,消除了颗粒间接触形成的限速步骤。结果发现,较大的磨球能使转变速率显著加快。对转变速率的建模表明,单一的、与时间无关的速率常数不足以描述该转变。相反,需要至少两个速率决定过程的卷积才能正确描述该转变。这表明转变的早期阶段仅由颗粒与球的碰撞次数决定。随着反应的进行,这些碰撞中涉及反应物的频率降低,速率受传质或混合限制,即使在最初的单相体系中也是如此,随着产物的形成,该体系会变成多相体系。较大的磨球受混合不良材料的阻碍较小。这可能是由于较大磨球具有更高的冲击能量和更大的表面积共同作用的结果。这样的见解对于机械化学过程的选择性和靶向设计很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d0f2/6434987/5065012e5de2/10853_2018_2324_Fig1_HTML.jpg

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