Influence of poly(acrylic acid) on apatite formation studied by in situ X-ray diffraction using an X-ray scattering reaction cell with high-precision temperature control

被引:12
作者
Ibsen, Casper Jon Steenberg
Birkedal, Henrik [1 ]
机构
[1] Univ Aarhus, Dept Chem, Langelandsgade 140, DK-8000 Aarhus, Denmark
来源
JOURNAL OF APPLIED CRYSTALLOGRAPHY | 2012年 / 45卷
关键词
in situ X-ray diffraction; apatite; crystallization; temperature control; poly(acrylic acid); AMORPHOUS CALCIUM-PHOSPHATE; GROWTH-KINETICS; CRYSTALLIZATION; BONE; HYDROXYAPATITE; NANOPARTICLES; NUCLEATION;
D O I
10.1107/S0021889812036576
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Organic additives influence crystallization processes in a multitude of ways. In biomineralization, e.g. bone or shell, such additives play a crucial role in morphology, and in polymorph and size control. However, the specific interactions between the additives and the growing mineral are in general unknown. Here, a model of bone mineralization, namely the formation of apatite nanocrystals under the influence of poly(acrylic acid), is studied using in situ X-ray diffraction. Since the kinetics of these reactions are very temperature dependent, a new X-ray scattering reaction cell has been developed that allows very high temperature precision, with an r.m.s. variation during operation of similar to 0.05 K. The performance of the cell and its use in studying the apatite/poly(acrylic acid) system are discussed. The apatite formation process proceeds via the formation of an amorphous precursor which then crystallizes. It is found that poly(acrylic acid) retards crystallization and reduces the growth rate of the forming crystallites.
引用
收藏
页码:976 / 981
页数:6
相关论文
共 29 条
  • [1] Experimental setup for in situ X-ray SAXS/WAXS/PDF studies of the formation and growth of nanoparticles in near- and supercritical fluids
    Becker, Jacob
    Bremholm, Martin
    Tyrsted, Christoffer
    Pauw, Brian
    Jensen, Kirsten Marie O.
    Eltzholt, Jakob
    Christensen, Mogens
    Iversen, Bo B.
    [J]. JOURNAL OF APPLIED CRYSTALLOGRAPHY, 2010, 43 : 729 - 736
  • [2] Time-resolved in situ studies of apatite formation in aqueous solutions
    Borkiewicz, Olaf
    Rakovan, John
    Cahill, Christopher L.
    [J]. AMERICAN MINERALOGIST, 2010, 95 (8-9) : 1224 - 1236
  • [3] CONVERSION OF AMORPHOUS CALCIUM PHOSPHATE TO MICROCRYSTALLINE HYDROXYAPATITE - PH-DEPENDENT, SOLUTION-MEDIATED, SOLID-SOLID CONVERSION
    BOSKEY, AL
    POSNER, AS
    [J]. JOURNAL OF PHYSICAL CHEMISTRY, 1973, 77 (19) : 2313 - 2317
  • [4] The crystallography beamline I711 at MAX II
    Cerenius, Y
    Ståhl, K
    Svensson, LA
    Ursby, T
    Oskarsson, Å
    Albertsson, J
    Liljas, A
    [J]. JOURNAL OF SYNCHROTRON RADIATION, 2000, 7 (07) : 203 - 208
  • [5] Raman spectroscopic evidence for octacalcium phosphate and other transient mineral species deposited during intramembranous mineralization
    Crane, Nicole J.
    Popescu, Victoria
    Morris, Michael D.
    Steenhuis, Pieter
    Ignelzi, Michael A., Jr.
    [J]. BONE, 2006, 39 (03) : 434 - 442
  • [6] SAXS/WAXS study on the formation of precursors and crystallization of silicalite
    deMoor, PPEA
    Beelen, TPM
    vanSanten, RA
    [J]. MICROPOROUS MATERIALS, 1997, 9 (3-4): : 117 - 130
  • [7] Amorphous calcium (ortho)phosphates
    Dorozhkin, Sergey V.
    [J]. ACTA BIOMATERIALIA, 2010, 6 (12) : 4457 - 4475
  • [8] Biomimetic Model Systems for Investigating the Amorphous Precursor Pathway and Its Role in Biomineralization
    Gower, Laurie B.
    [J]. CHEMICAL REVIEWS, 2008, 108 (11) : 4551 - 4627
  • [9] Hammersley A.P., 1997, FIT2D: An Introduction and Overview
  • [10] Modification of bone-like apatite nanoparticle size and growth kinetics by alizarin red S
    Ibsen, Casper Jon Steenberg
    Birkedal, Henrik
    [J]. NANOSCALE, 2010, 2 (11) : 2478 - 2486