Yan Bei, Liu Jinxia
Department of Civil Engineering, McGill University, 817 Sherbrooke Street West, Montreal, Quebec H3A 0C3, Canada.
Water Res X. 2023 Mar 11;19:100175. doi: 10.1016/j.wroa.2023.100175. eCollection 2023 May 1.
Motivated by the need for enhancing sorbent affinity for per- and polyfluoroalkyl substances (PFAS), we demonstrate the possibility of rationally designing clay-based material (FluoroClay) with a pre-selected intercalant and predicting sorbent performance using all-atom molecular dynamics simulation coupled with density functional theory-based computation. Perfluorohexyldodecane quaternary ammonium (F6H12A) as the selected intercalant revealed significant enhancement in adsorption affinity for hard-to-remove compounds, including perfluorobutane sulfonate (PFBS) and polyfluoroalkylethers (GenX and ADONA). The adsorption is thermodynamically entropy-driven and dominated by the hydrophobic effect. The incorporation of fluorine atoms into clay intercalants gave rise to a hydrophobic and fluorophilic "cavity" structure for targeted PFAS. The self-assembly of intercalant-PFAS under the negative electric field of clay sheets created a unique configuration that significantly enlarged the contact surface area between PFAS and F6H12A and was quantitatively driven by their intermolecular interactions, e.g., CF chain-CH chain, CF chain-CF chain, and charge-CH chain interactions. Collectively, our work demonstrated a new approach to select fluorinated functionality for designing a new adsorbent and estimating its performance via molecular simulation. It also provided an in-depth understanding of the underlying fundamental physics and chemistry in the adsorption of PFAS, suggesting a new strategy for PFAS removal, particularly for short-chain PFAS and new chemical alternatives.
出于增强吸附剂对全氟和多氟烷基物质(PFAS)亲和力的需求,我们证明了通过预先选择的插层剂合理设计粘土基材料(氟粘土)并使用全原子分子动力学模拟结合基于密度泛函理论的计算来预测吸附剂性能的可能性。作为所选插层剂的全氟己基十二烷季铵盐(F6H12A)对包括全氟丁烷磺酸盐(PFBS)和多氟烷基醚(GenX和ADONA)在内的难去除化合物的吸附亲和力有显著增强。吸附是由热力学熵驱动的,且以疏水作用为主导。将氟原子引入粘土插层剂中产生了针对目标PFAS的疏水和亲氟“空腔”结构。插层剂 - PFAS在粘土片层的负电场下的自组装形成了一种独特的构型,显著扩大了PFAS与F6H12A之间的接触表面积,并由它们的分子间相互作用(例如CF链 - CH链、CF链 - CF链和电荷 - CH链相互作用)定量驱动。总体而言,我们的工作展示了一种通过分子模拟选择氟化官能团来设计新型吸附剂并评估其性能的新方法。它还深入理解了PFAS吸附背后的基本物理和化学原理,为PFAS去除,特别是短链PFAS和新化学替代品的去除提供了一种新策略。