Subsurface AFM Study of Inhomogeneous Polymeric Materials

被引:0
作者
Morozov, I. A. [1 ]
机构
[1] Inst Continuous Media Mech UB RAS, Dept Micromech Mat Homogeneous Struct, Perm, Russia
关键词
mechanical properties; microscopy; surfaces and interfaces; HAMAKER CONSTANT; FORCE MICROSCOPY; ELASTIC-MODULUS; SURFACE-ENERGY; CONTACT; MODEL; NANOINDENTATION; POLYURETHANES;
D O I
10.1002/app.56611
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Fast indentation by atomic force microscopy allows the study of structural and physico-mechanical properties of polymer surfaces. However, the applied load and the choice of the contact point affect the measured surface properties of the inhomogeneous material. The method of tracing the evolution of the surface structure under the load is presented. The stages of loading (tip-surface contact, penetration into the outer surface layer revealing the internal structure) and unloading (viscoelastic recovery of the surface) are studied. Three polymers (epoxy, polyethylene, and filled rubber), whose internal heterogeneous structure is covered by a soft layer, have been analyzed. The importance of accurate determination of the contact point and the related limitations of static contact models at shallow indentation depths are shown. A dynamic model of nonequilibrium tip-surface interaction is used to determine the surface energy and elastic modulus of the upper surface layer. The elastic moduli obtained at shallow and deep indentation depths allowed the estimation of the thickness of the layer covering the subsurface structures of the epoxy and the polyethylene. Analysis of the evolution of the filled rubber surface under the load showed the filler distribution in the matrix.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Stress relaxation in polymeric microlattice materials
    Krodel, Sebastian
    Li, Lichen
    Constantinescu, Andrei
    Daraio, Chiara
    MATERIALS & DESIGN, 2017, 130 : 433 - 441
  • [32] Nanoparticles as Adhesives for Soft Polymeric Materials
    Cao, Zhen
    Dobrynin, Andrey V.
    MACROMOLECULES, 2016, 49 (09) : 3586 - 3592
  • [33] MOLECULAR SIMULATION TECHNIQUE ON POLYMERIC MATERIALS
    杨小震
    Chinese Journal of Polymer Science, 1994, (01) : 1 - 11
  • [34] WALNUT SHELLS AS A FILLER FOR POLYMERIC MATERIALS
    Dobrzynska-mizera, Monika
    Knitter, Monika
    Barczewski, Mateusz
    DREWNO, 2019, 62 (203): : 153 - 168
  • [35] Charge trapping and detrapping in polymeric materials
    Chen, George
    Xu, Zhiqiang
    JOURNAL OF APPLIED PHYSICS, 2009, 106 (12)
  • [36] Polymeric materials and films in dentistry: An overview
    Rokaya, Dinesh
    Srimaneepong, Viritpon
    Sapkota, Janak
    Qin, Jiaqian
    Siraleartmukul, Krisana
    Siriwongrungson, Vilailuck
    JOURNAL OF ADVANCED RESEARCH, 2018, 14 : 25 - 34
  • [37] Polymeric Materials for Hemostatic Wound Healing
    Ghimire, Suvash
    Sarkar, Pritha
    Rigby, Kasey
    Maan, Aditya
    Mukherjee, Santanu
    Crawford, Kaitlyn E.
    Mukhopadhyay, Kausik
    PHARMACEUTICS, 2021, 13 (12)
  • [38] Carbon-family materials for flame retardant polymeric materials
    Wang, Xin
    Kalali, Ehsan Naderi
    Wan, Jin-Tao
    Wang, De-Yi
    PROGRESS IN POLYMER SCIENCE, 2017, 69 : 22 - 46
  • [39] Nanoporous polymeric materials: A new class of materials with enhanced properties
    Notario, B.
    Pinto, J.
    Rodriguez-Perez, M. A.
    PROGRESS IN MATERIALS SCIENCE, 2016, 78-79 : 93 - 139
  • [40] Improving the atomic-resolution AFM imaging of monolayer MoS2 for worn tips: a molecular dynamics study
    Li, Minglin
    Zhuo, Weirong
    Pang, Haosheng
    Lai, Lianfeng
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2019, 58 (05)