Yao Guice, Zhao Jin, Haruna Maje Alhaji, Wen Dongsheng
School of Aeronautic Science and Engineering, Beihang University Beijing 100191 China.
School of General Engineering, Beihang University Beijing 100191 China
RSC Adv. 2021 Jul 28;11(42):26037-26048. doi: 10.1039/d1ra03935k. eCollection 2021.
Hydrolysed polyacrylamide (HPAM) is widely used in many industrial fields where its rheological properties play a leading role. Recent discovery of the reduction of HPAM's viscosity by adding carbon quantum dots (CQDs), however, is controversial to the established theories. By using all atom molecular dynamics simulation with an OPLS-AA force field, this study aims to provide detailed molecular insight into such an uncommon phenomenon. The dynamic structures of the HPAM chain in the presence or absence of CQDs were clearly captured from the molecular aspect. The results reveal that the adsorption of CQD reduces the gyration radius of the HPAM chain, and it is the corresponding hydration effect that leads to the reduction of the viscosity. The amide rather than the carboxylate group along the HPAM chain is dominant in terms of the interaction with the CQDs, and the driven atoms depend on the surface where the polymer is adsorbed.
水解聚丙烯酰胺(HPAM)广泛应用于许多工业领域,其流变特性在这些领域中起着主导作用。然而,最近发现添加碳量子点(CQD)会降低HPAM的粘度,这与已有的理论存在争议。本研究通过使用具有OPLS-AA力场的全原子分子动力学模拟,旨在从分子层面详细深入了解这种罕见现象。从分子角度清晰地捕捉到了存在或不存在CQD时HPAM链的动态结构。结果表明,CQD的吸附降低了HPAM链的回转半径,正是相应的水合作用导致了粘度的降低。就与CQD的相互作用而言,HPAM链上的酰胺基团而非羧基起主导作用,且被驱动的原子取决于聚合物吸附的表面。