State Key Laboratory of Urban Water Resource and Environment , Harbin 150090, China.
School of Municipal and Environmental Engineering, Harbin Institute of Technology , Harbin 150090, China.
Environ Sci Technol. 2017 Sep 5;51(17):9674-9682. doi: 10.1021/acs.est.7b01668. Epub 2017 Aug 21.
A comparative experimental and molecular dynamics (MD) simulation study was carried out to investigate the aggregation of graphene oxide (GO). Mechanisms behind the effects of solution chemistries (pH, metal ions, and tannic acid (TA)) and GO topology (carboxyl content, GO size, and GO thickness) were uncovered. For example, MD results showed that more hydrogen bonds formed between GO and water at higher pH, according well with the increased hydrophilicity of GO calculated based on contact angle measurements. Radial distribution functions analysis suggested Ca interacted more strongly with GO than Na, which explained the experimental observations that Ca was more effective in accelerating the aggregation process than Na. The adsorption-bridging and steric effects of TA were simulated, and TA was found to be unfolded upon wrapping on GOs, leading to an increased capacity for ion and solvent binding. The evaluations of contributions to GO hydrophilicity, electrostatic energy, and intensities of interactions with metal ions indicated the carboxyl group is the essential functional group in mediating the stability of GO. Overall, by combining MD simulations with experimental measurements, we provided molecular-level understandings toward the aggregation of GO, indicating MD, if used properly, can be applied as a useful tool to obtain insights into the aggregation of nanomaterials.
进行了一项比较实验和分子动力学(MD)模拟研究,以研究氧化石墨烯(GO)的聚集。揭示了溶液化学性质(pH、金属离子和单宁酸(TA))和 GO 拓扑结构(羧基含量、GO 尺寸和 GO 厚度)对其影响的背后机制。例如,MD 结果表明,在较高的 pH 值下,GO 与水之间形成了更多的氢键,这与根据接触角测量计算得出的 GO 亲水性增加情况相符。径向分布函数分析表明,Ca 与 GO 的相互作用比 Na 更强,这解释了实验观察到的 Ca 比 Na 更有效地加速聚集过程的现象。模拟了 TA 的吸附桥接和空间位阻效应,发现 TA 在包裹 GO 时展开,从而增加了离子和溶剂结合的能力。对 GO 亲水性、静电能和与金属离子相互作用强度的贡献评估表明,羧基是介导 GO 稳定性的必要官能团。总的来说,通过将 MD 模拟与实验测量相结合,我们对 GO 的聚集提供了分子水平的理解,表明如果正确使用 MD,可以作为一种有用的工具来深入了解纳米材料的聚集。