Biomimetic model of a sponge-spicular optical fiber - mechanical properties and structure

被引:98
|
作者
Sarikaya, M [1 ]
Fong, H
Sunderland, N
Flinn, BD
Mayer, G
Mescher, A
Gaino, E
机构
[1] Univ Washington, Seattle, WA 98195 USA
[2] Univ Perugia, Inst Zool, I-06100 Perugia, Italy
关键词
D O I
10.1557/JMR.2001.0198
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Nanomechanical properties, nanohardness and elastic modulus, of an Antarctic sponge Rosella racovitzea were determined by using a vertical indentation system attached to an atomic force microscope. The Rosella spicules, known to have optical waveguide properties, are 10-20 cm long with a circular cross section of diameter 200-600 mum. The spicules are composed of 2-10-mum-thick layers of siliceous material that has no detectable crystallinity. Measurements through the thickness of the spicules indicated uniform properties regardless of layering. Both the elastic modulus and nanohardness values of the spicules are about half of that of either fused silica or commercial glass optical fibers. The fracture strength and fracture energy of the spicules, determined by 3-point bend tests, are several times those of silica rods of similar diameter. These sponge spicules are highly flexible and tough possibly because of their layered structure and hydrated nature of the silica. The spicules offer bioinspired lessons for potential biomimetic design of optical fibers with long-term durability that could potentially be fabricated at room temperature in aqueous solutions.
引用
收藏
页码:1420 / 1428
页数:9
相关论文
共 50 条
  • [21] Structure and properties of sheared fiber suspensions with mechanical contacts
    School of Chemical Engineering, Cornell University, Ithaca, NY 14853, United States
    J Non Newtonian Fluid Mech, 3 (205-239):
  • [22] STUDY OF EXTRUSION, STRUCTURE, AND MECHANICAL PROPERTIES OF A BICONSTITUENT FIBER
    TSE, WW
    JOURNAL OF THE TEXTILE INSTITUTE, 1973, 64 (10) : 615 - 615
  • [23] Mechanical properties and the structure of porous titanium obtained by sintering compacted titanium sponge
    Trakhtenberg, I. Sh.
    Borisov, A. B.
    Novozhonov, V. I.
    Rubshtein, A. P.
    Vladimirov, A. B.
    Osipenko, A. V.
    Mukhachev, V. A.
    Makarova, E. B.
    PHYSICS OF METALS AND METALLOGRAPHY, 2008, 105 (01): : 92 - 97
  • [24] Mechanical properties and the structure of porous titanium obtained by sintering compacted titanium sponge
    Trakhtenberg, I.Sh.
    Borisov, A.B.
    Novozhonov, V.I.
    Rubshtein, A.P.
    Vladimirov, A.B.
    Osipenko, A.V.
    Mukhachev, V.A.
    Makarova, E.B.
    2008, Maik Nauka-Interperiodica Publishing (105):
  • [25] Mechanical properties and the structure of porous titanium obtained by sintering compacted titanium sponge
    I. Sh. Trakhtenberg
    A. B. Borisov
    V. I. Novozhonov
    A. P. Rubshtein
    A. B. Vladimirov
    A. V. Osipenko
    V. A. Mukhachev
    E. B. Makarova
    The Physics of Metals and Metallography, 2008, 105 : 92 - 97
  • [26] Strain Transfer Mechanisms and Mechanical Properties of Optical Fiber Cables
    Zhang, Shenghan
    Liu, Han
    Govindjee, Sanjay
    DeJong, Matthew J.
    SENSORS, 2022, 22 (24)
  • [27] OPTICAL FIBER TECHNIQUE FOR IN-REACTOR MECHANICAL PROPERTIES MEASUREMENT
    Schley, R. S.
    Hurley, D. H.
    Hua, Z. A.
    REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOLS 32A AND 32B, 2013, 1511 : 1701 - 1708
  • [28] A modified analysis for thermal-mechanical properties of staggered structure in biomimetic materials
    Jia, Yun-Fei
    Xuan, Fu-Zhen
    Tu, Shan-Tung
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2012, 16 : 109 - 120
  • [29] Comparative analysis of structure and mechanical properties of porous PEEK and UHMWPE biomimetic scaffolds
    Senatov, F. S.
    Chubrik, A. V.
    Maksimkin, A. V.
    Kolesnikov, E. A.
    Salimon, A. I.
    MATERIALS LETTERS, 2019, 239 : 63 - 66
  • [30] Shear mechanical properties of the core structure of biomimetic fully integrated honeycomb plates
    Tuo, Wanyong
    Chen, Jinxiang
    Xu, Mengye
    Zhang, Zhijie
    Guo, Zhensheng
    JOURNAL OF SANDWICH STRUCTURES & MATERIALS, 2020, 22 (04) : 1184 - 1198