TY - GEN
T1 - Determination of interphase thickness and mechanical properties of effective nanofillers in polymer nanocomposites by molecular dynamic simulation
AU - Xu, Wen
AU - Zeng, Qinghua
AU - Yu, Aibing
AU - Paul, Donald R.
PY - 2010
Y1 - 2010
N2 - The properties of interphase in polymer composites are often different from those of bulk polymer matrix, which may include chemical, physical, microstructural, and mechanical properties. The nature of interphase is critical to the overall properties and performance of polymer materials, in particular in nanofiller reinforced composites. Experimental efforts have been made to determine the effective interphase thickness and its properties, for example, by nanoindentation and nanoscratch techniques. Yet, it is very difficult to quantify the interphase and its properties because of its nanoscale nature and the unclear boundary. In this regard, computer simulation, e.g., molecular dynamics, provides an effective tool to characterize such interphase and the properties. In this work, molecular dynamics simulations are applied to quantify the interphase thickness in clay-based polymer nanocomposites. Then, the mechanical properties of the so-called effective nanofiller (i.e., the physical size of nanofiller plus the thickness of interphase) will be determined by a series of simulations.
AB - The properties of interphase in polymer composites are often different from those of bulk polymer matrix, which may include chemical, physical, microstructural, and mechanical properties. The nature of interphase is critical to the overall properties and performance of polymer materials, in particular in nanofiller reinforced composites. Experimental efforts have been made to determine the effective interphase thickness and its properties, for example, by nanoindentation and nanoscratch techniques. Yet, it is very difficult to quantify the interphase and its properties because of its nanoscale nature and the unclear boundary. In this regard, computer simulation, e.g., molecular dynamics, provides an effective tool to characterize such interphase and the properties. In this work, molecular dynamics simulations are applied to quantify the interphase thickness in clay-based polymer nanocomposites. Then, the mechanical properties of the so-called effective nanofiller (i.e., the physical size of nanofiller plus the thickness of interphase) will be determined by a series of simulations.
KW - Effective nanoclay
KW - Interphase thickness
KW - Mechanical properties
KW - Molecular dynamics simulation
KW - Polymer nanocomposites
UR - https://www.scopus.com/pages/publications/77955491329
U2 - 10.4028/www.scientific.net/MSF.654-656.1654
DO - 10.4028/www.scientific.net/MSF.654-656.1654
M3 - 会议稿件
AN - SCOPUS:77955491329
SN - 0878492550
SN - 9780878492558
T3 - Materials Science Forum
SP - 1654
EP - 1657
BT - PRICM7
PB - Trans Tech Publications Ltd
T2 - 7th Pacific Rim International Conference on Advanced Materials and Processing, PRICM-7
Y2 - 2 August 2010 through 6 August 2010
ER -