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首页> 外文期刊>Physical chemistry chemical physics: PCCP >A multi-scale molecular dynamics study of the assembly of micron-size supraparticles from 30 nm alkyl-coated nanoparticles
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A multi-scale molecular dynamics study of the assembly of micron-size supraparticles from 30 nm alkyl-coated nanoparticles

机译:从30 nm烷基包覆的纳米粒子组装微米级超粒子的多尺度分子动力学研究

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Atomistic and meso scale computer simulations of nanoparticle aggregation are combined to describe the self-assembly of supraparticles in bulk and on surfaces under vacuum conditions. At the nano scale, atomic resolution molecular dynamics simulations provide the structures of 30 nm-diameter nanopartides bound to each other and to coated hydrophobic surfaces, through the physical contacting of their alkyl coats. This "molecular velcro" has been recently exploited in experiments to direct the aggregation of coated nanopartides into stable assemblies on electronics platforms. Interaction potentials are extracted from the nano scale simulations and transferred to coarse grained Brownian dynamics simulations that describe multi-nanoparticle aggregation and surface deposition. The simulation results show that the large interaction area between 30 nm nanopartides provides a strong driving force for assembly of strongly-welded, porous supraparticles under vacuum conditions. Interaction forces are significantly larger than those found in earlier simulations of the aggregation of smaller nanopartides, indicating that supraparticle assembly using large 30 nm nanopartides may be kinetically controlled. The porosity programmed into kinetic assembly may potentially benefit emerging applications of nanoparticle assemblies in medicine, in particular the development of nanostructured drug-eluting stent coatings. Future work will involve potential of mean force calculations in a variety of solvents to estimate the porosity obtainable for specific applications.
机译:纳米粒子聚集的原子和中尺度计算机模拟相结合,描述了超粒子在真空条件下在本体中和表面上的自组装。在纳米尺度上,原子分辨率分子动力学模拟通过其烷基涂层的物理接触,提供了彼此结合并与涂覆的疏水表面结合的直径为30 nm的纳米粒子的结构。最近在实验中利用了这种“分子维可牢尼龙搭扣”,将涂层的纳米粒子聚集到电子平台上的稳定组件中。从纳米级模拟中提取了相互作用势,并将其转移到描述多纳米粒子聚集和表面沉积的粗粒度布朗动力学模拟中。仿真结果表明,在真空条件下,30 nm纳米粒子之间的大相互作用区域为组装强焊接的多孔超颗粒提供了强大的驱动力。相互作用力明显大于在较小的纳米粒子的聚集的早期模拟中发现的相互作用力,表明使用大的30 nm纳米粒子的超粒子组装可以受到动力学控制。编程为动力学组装的孔隙度可能潜在地有益于纳米颗粒组装在医学中的新兴应用,特别是纳米结构药物洗脱支架涂层的开发。未来的工作将涉及在各种溶剂中进行平均力计算的潜力,以估算针对特定应用可获得的孔隙率。

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