氢键
聚乙二醇
分子
化学
计算化学
化学物理
乙醚
氢
分子中的原子
材料科学
聚乙烯
密度泛函理论
自然键轨道
聚合物
分子轨道
分子动力学
静电学
化学稳定性
接受者
化学键
结构稳定性
氧原子
作者
Rehin Sulay,Sneha Anna Sunny,Abdullah Yahya Abdullah Alzahrani,Renjith Thomas
标识
DOI:10.1002/adts.202501371
摘要
Abstract A detailed theoretical investigation is presented to elucidate the non‐covalent interactions governing the structural stability of polyethylene glycol (PEG) and methoxy polyethylene glycol (MPEG) complexes with explicit water molecules. Calculations were performed using density functional theory (DFT) at the M06‐2X/cc‐pVDZ level. Optimized geometries reveal that polymer–water interactions are thermodynamically favorable, supporting the spontaneous formation of stable complexes. Molecular electrostatic potential (MEP) maps were generated to identify chemically reactive regions and preferred interaction sites. To explore the electronic origin of these interactions, natural bond orbital (NBO) analysis was employed, which confirmed charge transfer between water molecules and PEG/MPEG units. Non‐covalent interaction (NCI) analysis, complemented by the independent gradient model based on Hirshfeld partition (IGMH), highlighted weak hydrogen bonding primarily between ether oxygen atoms of PEG/MPEG and hydrogen atoms of water. Atoms in molecules (AIM) topological analysis further confirmed these findings by locating bond critical points consistent with hydrogen bonding. Due to the limitation of IGMH in treating only two fragments, analyses were conducted using single water molecules at each site to map local interactions. This comprehensive study provides molecular‐level insights into the weak but crucial hydrogen bonding interactions that enhance solubility, biocompatibility, and functionality of PEG–H 2 O and MPEG–H 2 O systems in pharmaceutical and material applications.
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