Radially oriented cellulose triacetate chains on gold nanoparticles

被引:0
作者
Yukiko Enomoto-Rogers
Hiroshi Kamitakahara
Arata Yoshinaga
Toshiyuki Takano
机构
[1] Kyoto University,Division of Forest and Biomaterials Science, Graduate School of Agriculture
来源
Cellulose | 2010年 / 17卷
关键词
Cellulose triacetate; Reducing-end; Gold nanoparticles; Orientation; Self-assembly;
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中图分类号
学科分类号
摘要
Cellulose triacetate (CTA) derivatives having a disulfide group at the reducing-end (CTA2S, CTA13S, CTA41S), with number average degrees of polymerization (DPns) of 2, 13 and 41, respectively, were prepared. The CTA-self-assembled gold nanoparticles (CTA2Au, CTA13Au, and CTA41Au) were obtained through the reduction of gold salt (HAuCl4) with CTASs. The diameters (d) and the interparticle distances (L) of the gold cores were analyzed by transmission electron microscopy (TEM) observations. The d values of CTA2Au, CTA13Au, and CTA41Au, were 8.7, 7.9, and 13.4 nm respectively. The L values of CTA2Au, CTA13Au, and CTA41Au, were 2.8, 6.3, and 20.9 nm, respectively, and agreed well with the molecular length (l) of CTAS chains (ls of CTA2S, CTA13S, CTA41S = 2.0, 7.5, 21.5 nm, respectively). The hydrodynamic diameters (D) of CTAAu nanoparticles in chloroform solution, measured by dynamic light scattering (DLS), were larger than the d values and increased with the increase in the molecular length of the CTA chains. The CTAS chain was found to work as an excellent stabilizer of the gold nanoparticles in both solid state and solution. The molecular length of CTA chains controlled the size and the alignment of the gold nanoparticles. As a result, the radially oriented CTA chains on the gold nanoparticles were successfully prepared.
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页码:923 / 936
页数:13
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共 220 条
  • [11] Pyplo-Schnieders J(1994)Novel cellulose derivatives. 2. Synthesis and characteristics of mono-functional cellulose propionate segments Cellulose 1 77-86
  • [12] Redlich H(1957)The molecular and crystal structure of cellulose triacetate J Polym Sci 26 277-288
  • [13] Atalla RH(2001)Advances in cellulose ester performance and application Prog Polym Sci 26 1605-1688
  • [14] Ellia JD(2006)Synthesis of diblock copolymers with cellulose derivatives. 3. Cellulose derivatives carrying a single pyrene group at the reducing-end and fluorescent studies of their self-assembly systems in aqueous NaoH solutions Cellulose 13 437-448
  • [15] Schroeder LR(2009)Synthesis and thermal properties of poly(methyl methacrylate)-graft-(cellobiosylamine-C15) Cellulose 16 519-530
  • [16] Azzam T(2009)Cellulosic graft copolymer: Poly(methyl methacrylate) with cellulose side chains Biomacromolecules 10 2110-2117
  • [17] Eisenberg A(1980)Cellulose containing block co-polymers. 1. Synthesis of trimethylcellulose-(b-poly(oxytetramethylene))-star block co-polymers Polym Bull 3 407-413
  • [18] Bernet B(1963)Viscosity temperature relationships for dilute solutions of high polymers Polymer 4 35-46
  • [19] Xu JW(2004)Prospects for future applications of cellulose acetate Macromol Symp 208 371-394
  • [20] Vasella A(1979)Photon-correlation spectroscopy of particle distributions J Chem Phys 70 3965-3972