氢键
静电学
偶极子
生物污染
化学物理
结垢
生物分子
静电
力矩(物理)
化学
分子动力学
部分电荷
电荷(物理)
表面电荷
分子
计算化学
纳米技术
化学工程
材料科学
物理化学
有机化学
物理
膜
电气工程
工程类
经典力学
量子力学
生物化学
作者
Pranab Sarker,Tieyi Lu,Di Liu,Guangyao Wu,Hanning Chen,Md Symon Jahan Sajib,Shaoyi Jiang,Zhan Chen,Tao Wei
出处
期刊:Chemical Science
[Royal Society of Chemistry]
日期:2023-01-01
卷期号:14 (27): 7500-7511
被引量:57
摘要
Zwitterionic materials have emerged as highly effective ultralow fouling materials for many applications, however the underlying mechanism of fouling resistance remains unclear. Using ab initio molecular dynamics simulations and surface-sensitive sum frequency generation vibrational spectroscopy, we studied the hydration behaviors of zwitterionic materials, including trimethylamine-N-oxide (TMAO) and carboxybetaines of different charge-separation distances, to understand their fouling-resistant mechanism and provide a design principle for improved performance. Our study reveals that the interplay among hydrogen bonding, net charge, and dipole moment is crucial to the fouling-resistant capabilities of zwitterionic materials. Shortening of the zwitterionic spacing strengthens hydrogen bonding with water against biomolecule attachment due to the increased electrostatic and induction interactions, charge transfer, and improved structural stability. Moreover, the shortened charge separation reduces the dipole moment of zwitterionic materials with an intrinsic near-neutral net charge, decreasing their electrostatic and dipole-dipole interactions with biofoulers, and increasing their resistance to fouling. Compared to carboxybetaine compounds, TMAO has the shortest zwitterionic spacing and exhibits the strongest hydrogen bonding, the smallest net charge, and the minimum dipole moment, making it an excellent nonfouling material.
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