Thyveetil Mary-Ann, Coveney Peter V, Greenwell H Christopher, Suter James L
Centre for Computational Science, Department of Chemistry, University College London, 20 Gordon Street, London WC1H 0AJ, United Kingdom.
J Am Chem Soc. 2008 Sep 17;130(37):12485-95. doi: 10.1021/ja8037068. Epub 2008 Aug 23.
Layered double hydroxides (LDHs) have been shown to form staged intermediate structures in experimental studies of intercalation. However, the mechanism by which staged structures are produced remains undetermined. Using molecular dynamics simulations, we show that LDHs are flexible enough to deform around bulky intercalants such as deoxyribonucleic acid (DNA). The flexibility of layered materials has previously been shown to affect the pathway by which staging occurs. We explore three possible intermediate structures which may form during intercalation of DNA into Mg2Al LDHs and study how the models differ energetically. When DNA strands are stacked directly on top of each other, the LDH system has a higher potential energy than when they are stacked in a staggered or interstratified structure. It is generally thought that staged intercalation occurs through a Daumas-Herold or a Rudorff model. We find, on average, greater diffusion coefficients for DNA strands in a Daumas-Herold configuration compared to a Rudorff model and a stage-1 structure. Our simulations provide evidence for the presence of peristaltic modes of motion within Daumas-Herold configurations. This is confirmed by spectral analysis of the thickness variation of the basal spacing. Peristaltic modes are more prominent in the Daumas-Herold structure compared to the Rudorff and stage-1 structures and support a mechanism by means of which bulky intercalated molecules such as DNA rapidly diffuse within an LDH interlayer.
层状双氢氧化物(LDHs)在插层实验研究中已被证明会形成分级中间结构。然而,分级结构产生的机制仍未确定。通过分子动力学模拟,我们表明LDHs具有足够的柔韧性,能够围绕诸如脱氧核糖核酸(DNA)等大分子插层剂发生形变。层状材料的柔韧性先前已被证明会影响分级发生的途径。我们探索了DNA插入Mg2Al LDHs过程中可能形成的三种中间结构,并研究了这些模型在能量上的差异。当DNA链彼此直接堆叠时,LDH系统的势能高于它们以交错或层间结构堆叠时的势能。一般认为分级插层是通过Daumas-Herold模型或Rudorff模型发生的。我们发现,与Rudorff模型和一级结构相比,处于Daumas-Herold构型的DNA链平均具有更大的扩散系数。我们的模拟为Daumas-Herold构型中存在蠕动运动模式提供了证据。这通过对基面间距厚度变化的光谱分析得到了证实。与Rudorff结构和一级结构相比,蠕动模式在Daumas-Herold结构中更为突出,并支持了一种机制,通过该机制,诸如DNA等大分子插层剂能够在LDH层间快速扩散。