Light-Induced Temperature Transitions in Biodegradable Polymer and Nanorod Composites

被引:93
作者
Hribar, Kolin C. [1 ]
Metter, Robert B. [1 ]
Ifkovits, Jamie L. [1 ]
Troxler, Thomas [2 ,3 ]
Burdick, Jason A. [1 ]
机构
[1] Univ Penn, Dept Bioengn, Philadelphia, PA 19104 USA
[2] Univ Penn, Dept Chem Reg Laser, Philadelphia, PA 19104 USA
[3] Univ Penn, Biomed Technol Labs, Philadelphia, PA 19104 USA
关键词
biomaterials; nanorods; polymers; temperature studies; SHAPE-MEMORY POLYMERS; ESTER) NETWORK PROPERTIES; THERMOMECHANICAL PROPERTIES; BIOMEDICAL APPLICATIONS; PHOTOTHERMAL THERAPY; DRUG-DELIVERY; NANOPARTICLES; NANOCOMPOSITES; NANOSHELLS; BEHAVIOR;
D O I
10.1002/smll.200900395
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A versatile method that utilizes infrared light (IR) to heat composites of gold nanorods and biodegradable polymers was developed. Poly(β-amino esters) (PBAEs) were synthesized by the conjugate addition of primary amines to diacrylates by mixing the liquid precursors and reacting overnight with stirring. Macromer A6 was synthesized through the reaction of diethylene glycol diacrylate and isobutylamine in a 1.2:1 molar ratio. Nanorods were grown through a mixture of cetyltrimethylammonium bromide (dAB), HAuCl4 - 3H 2O, silver nitrate, L-ascorbic acid, and a seed solution containing dAB, sodium borohydride, and HAuCl4 - 3H2O. The nanorods were imaged on a TEM at an accelerating voltage of 200kv by placing a drop of the nanorod/dichloromethane solution on a holey carbon coated grid. he heating was reversible with intermittent light exposure, meaning that the sample could be repeatedly heated and cooled with 5 minute intervals of light exposure and non exposure.
引用
收藏
页码:1830 / 1834
页数:5
相关论文
共 37 条
  • [21] Gold nanorod bioconjugates
    Liao, HW
    Hafner, JH
    [J]. CHEMISTRY OF MATERIALS, 2005, 17 (18) : 4636 - 4641
  • [22] Immunotargeted nanoshells for integrated cancer imaging and therapy
    Loo, C
    Lowery, A
    Halas, NJ
    West, J
    Drezek, R
    [J]. NANO LETTERS, 2005, 5 (04) : 709 - 711
  • [23] Initiation of shape-memory effect by inductive heating of magnetic nanoparticles in thermoplastic polymers
    Mohr, R
    Kratz, K
    Weigel, T
    Lucka-Gabor, M
    Moneke, M
    Lendlein, A
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (10) : 3540 - 3545
  • [24] Photoinduced motions in azo-containing polymers
    Natansohn, A
    Rochon, P
    [J]. CHEMICAL REVIEWS, 2002, 102 (11) : 4139 - 4175
  • [25] Photo-thermal tumor ablation in mice using near infrared-absorbing nanoparticles
    O'Neal, DP
    Hirsch, LR
    Halas, NJ
    Payne, JD
    West, JL
    [J]. CANCER LETTERS, 2004, 209 (02) : 171 - 176
  • [26] Structure-property relationships in photopolymerizable polymer networks: Effect of composition on the crosslinked structure and resulting thermomechanical properties of a (meth)acrylate-based system
    Ortega, Alicia M.
    Kasprzak, Scott E.
    Yakacki, Christopher M.
    Diani, Julie
    Greenberg, Alan R.
    Gall, Ken
    [J]. JOURNAL OF APPLIED POLYMER SCIENCE, 2008, 110 (03) : 1559 - 1572
  • [27] Polymer-nanoparticle interfacial interactions in polymer nanocomposites: Confinement effects on glass transition temperature and suppression of physical aging
    Rittigstein, Perla
    Torkelson, John M.
    [J]. JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2006, 44 (20) : 2935 - 2943
  • [28] Effect of chemical structure and crosslinking density on the thermo-mechanical properties and toughness of (meth)acrylate shape memory polymer networks
    Safranski, David L.
    Gall, Ken
    [J]. POLYMER, 2008, 49 (20) : 4446 - 4455
  • [29] Seeded high yield synthesis of short Au nanorods in aqueous solution
    Sau, TK
    Murphy, CJ
    [J]. LANGMUIR, 2004, 20 (15) : 6414 - 6420
  • [30] Sershen SR, 2000, J BIOMED MATER RES, V51, P293, DOI 10.1002/1097-4636(20000905)51:3<293::AID-JBM1>3.0.CO