Mukhopadhyay Titas Kumar, Datta Ayan
School of Chemical Sciences, Indian Association for the Cultivation of Science, 2A and 2B Raja S. C. Mullick Road, Jadavpur, Kolkata-700032, West Bengal, India.
Phys Chem Chem Phys. 2020 Oct 15;22(39):22157-22179. doi: 10.1039/d0cp03128c.
Liquid Phase Exfoliation (LPE) is one of the most successful synthetic roots for the preparation of two-dimensional (2D) materials from their bulk counterparts. In recent years, significant progress has been accomplished for the development and modification of LPE techniques. However, precise identification of the hierarchical steps of the molecular mechanism of LPE remains to some extent elusive. Additionally, the a priori choice of suitable solvents for successful exfoliation and dispersion of various layered materials poses a challenge for both academia and industry. Computational methods, particularly Molecular Dynamics (MD) simulations with classical force-fields have contributed a great deal towards the understanding of the underlying mechanism of LPE, providing remarkable insights into the molecular-level details of the solvent-material interactions at the nanoscale and predicting "good" and "bad" solvents for exfoliation as well as stabilization of the dispersed state. With an intention to build up a unified understanding, in this perspective article, we summarize the recent advancements of molecular simulation techniques employed to decipher the mechanism of LPE, pointing out the key features of molecular interactions and identifying several thermodynamic parameters governing the phenomena. In addition, we outline the necessary characteristics of solvent molecules, essential for their use as "good" solvents towards LPE. Also, we highlight the limitations of simulation methods for the modelling of LPE. We believe that this article will be beneficial for the selection of solvents for the synthesis of novel 2D materials via LPE and will also provide a comprehensive view to computational material scientists towards the development of novel simulation protocols for investigating and analysing such complex molecular events.
液相剥离法(LPE)是从块状材料制备二维(2D)材料最成功的合成方法之一。近年来,LPE技术的开发和改进取得了显著进展。然而,在一定程度上,精确识别LPE分子机制的分级步骤仍然难以捉摸。此外,为各种层状材料成功剥离和分散预先选择合适的溶剂,对学术界和工业界来说都是一个挑战。计算方法,特别是使用经典力场的分子动力学(MD)模拟,在很大程度上有助于理解LPE的潜在机制,为纳米尺度上溶剂-材料相互作用的分子水平细节提供了显著的见解,并预测了用于剥离以及稳定分散状态的“好”溶剂和“坏”溶剂。为了建立统一的理解,在这篇观点文章中,我们总结了用于破译LPE机制的分子模拟技术的最新进展,指出了分子相互作用的关键特征,并确定了控制这些现象的几个热力学参数。此外,我们概述了溶剂分子作为LPE“好”溶剂所必需的特性。我们还强调了LPE建模模拟方法的局限性。我们相信,本文将有助于通过LPE合成新型二维材料时选择溶剂,也将为计算材料科学家提供一个全面的视角,以开发用于研究和分析此类复杂分子事件的新型模拟方案。