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Hydrogen bond networks in graphene oxide composite paper: Structure and mechanical properties

机译:氧化石墨烯复合纸中的氢键网络:结构和力学性能

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A multilayered composite structure formed by a random stacking of graphene oxide (GO) platelets is an attractive candidate for novel applications in nanoelectromechanical systems and paper-like composites. We employ molecular dynamics simulations with reactive force fields to elucidate the structural and mechanical properties of GO paper-like materials. We find that the large-scale properties of these composites are controlled by hydrogen bond networks that involve functional groups on individual GO platelets and water molecules within the interlayer cavities. Water content controls both the extent and collective strength of these interlayer hydrogen bond networks, thereby affecting the interlayer spacing and elastic moduli of the composite. Additionally, the chemical composition of the individual GO platelets also plays a critical role in establishing the mechanical properties of the composite - a higher density of functional groups leads to increased hydrogen bonding and a corresponding increase in stiffness. Our studies suggest the possibility of tuning the properties of GO composites by altering the density of functional groups on individual platelets, the water content, and possibly the functional groups participating in hydrogen bonding with interlayer water molecules.
机译:通过随机堆叠氧化石墨烯(GO)薄片形成的多层复合结构是纳米机电系统和纸状复合材料中新应用的诱人候选物。我们采用具有反作用力场的分子动力学模拟来阐明GO纸状材料的结构和机械性能。我们发现这些复合材料的大规模性能是由氢键网络控制的,氢键网络涉及单个GO血小板上的官能团和层间空腔内的水分子。含水量控制这些层间氢键网络的程度和集体强度,从而影响复合材料的层间间距和弹性模量。此外,单个GO血小板的化学成分在建立复合材料的机械性能方面也起着至关重要的作用-较高的官能团密度会导致氢键增加和刚度相应增加。我们的研究表明,可以通过改变单个血小板上官能团的密度,水分含量以及可能与参与层间水分子氢键结合的官能团来调节GO复合材料的性能。

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