Bacterial cellulose as a template for the formation of polymer/nanoparticle nanocomposite

被引:3
|
作者
Cai Z. [1 ]
Hou C. [1 ]
Yang G. [1 ]
Kim J. [2 ]
机构
[1] Key Laboratory of Advanced Textile Composites, Ministry of Education, Tianjin Polytechnic University, Tianjin 300160, No 63 ChenLin Street, HeDong District
[2] Department of Mechanical Engineering, Creative Research Center for Electro-Active Paper Actuator, Inha University, Nam-Ku, Incheon 402-751
关键词
bacterial cellulose; nanocomposite; silver nanoparticle; ultrasound;
D O I
10.1115/1.4004361
中图分类号
学科分类号
摘要
In this paper, we investigate a novel method using bacterial cellulose (BC) as template by in situ method to prepare BC/silver nanocomposites. We first introduce sonication procedure during immersion and reduction reaction process to make sure that the silver nanoparticles can be formed and distributed homogeneously throughout the whole bacterial cellulose network. The BC/silver nanocomposites were confirmed by scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDX), X-ray diffraction (XRD), and thermogravimetric analysis (TGA). To examine the effect of varying solution concentrations on silver nanoparticles formation, the concentration of AgNO 3 solution was increased from 0.01 M to 0.05 M and Ag +-ions were reduced by the same concentration of NaBH 4. The effects of time and frequency of sonication on BC/silver nanocomposite preparation were also investigated by varying sonication time from 10 min to 60 min and sonication frequency from 20 kHz to 60 kHz. Compared with an ordinary process, ultrasound seems to be an effective way for ions to penetrate into BC and thus the weight percent of silver nanoparticles can be increased. Combined with TGA result, the weight percent of silver nanoparticles can be improved from 8.9 to 31.7 with simple sonication procedure performed by the same preparation condition. However, the average size of silver nanoparticles is around 15 nm, which is bigger than ordinary process. This may be due to the aggregation of small nanoparticles, especially at high AgNO 3 concentration. © 2011 American Society of Mechanical Engineers.
引用
收藏
相关论文
共 50 条
  • [21] Green synthesis methods and characterization of bacterial cellulose/silver nanoparticle composites
    Mutiara, Tintin
    Fahrurrozi, Mohammad
    Sulistyo, Hary
    Hidayat, Muslikhin
    GREEN PROCESSING AND SYNTHESIS, 2023, 12 (01)
  • [22] A multipurpose natural and renewable polymer in medical applications: Bacterial cellulose
    de Oliveira Barud, Helida Gomes
    da Silva, Robson Rosa
    Barud, Hernane da Silva
    Tercjak, Agnieszka
    Gutierrez, Junkal
    Lustri, Wilton Rogerio
    de Oliveira Junior, Osmir Batista
    Ribeiro, Sidney J. L.
    CARBOHYDRATE POLYMERS, 2016, 153 : 406 - 420
  • [23] Si-O barrier technology for bacterial cellulose nanocomposite flexible displays
    Ummartyotin, S.
    Juntaro, J.
    Sain, M.
    Manuspiya, H.
    CARBOHYDRATE POLYMERS, 2011, 86 (01) : 337 - 342
  • [24] An ecofriendly nanocomposite of bacterial cellulose and hydroxyapatite efficiently removes lead from water
    Nunez, Dariela
    Caceres, Rodrigo
    Ide, Walther
    Varaprasad, Kokkarachedu
    Oyarzun, Patricio
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2020, 165 (165) : 2711 - 2720
  • [25] Sustainable nanocomposite films based on bacterial cellulose and pullulan
    Eliane Trovatti
    Susana C. M. Fernandes
    Laurent Rubatat
    Carmen S. R. Freire
    Armando J. D. Silvestre
    Carlos Pascoal Neto
    Cellulose, 2012, 19 : 729 - 737
  • [26] Novel preparation of multiwalled carbon nanotubes/bacterial cellulose nanocomposite for phthalocyanine immobilization
    Chen, Shiliang
    Huang, Yijun
    Huang, Jiachi
    FUNCTIONAL MATERIALS LETTERS, 2017, 10 (04)
  • [27] Hemocompatibility study of a bacterial cellulose/polyvinyl alcohol nanocomposite
    Leitao, Alexandre F.
    Gupta, Swati
    Silva, Joao Pedro
    Reviakine, Ilya
    Gama, Miguel
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2013, 111 : 493 - 502
  • [28] Aligned unidirectional PLA/bacterial cellulose nanocomposite fibre reinforced PDLLA composites
    Blaker, Jonny J.
    Lee, Koon-Yang
    Walters, Matthew
    Drouet, Marc
    Bismarck, Alexander
    REACTIVE & FUNCTIONAL POLYMERS, 2014, 85 : 185 - 192
  • [29] Sustainable nanocomposite films based on bacterial cellulose and pullulan
    Trovatti, Eliane
    Fernandes, Susana C. M.
    Rubatat, Laurent
    Freire, Carmen S. R.
    Silvestre, Armando J. D.
    Neto, Carlos Pascoal
    CELLULOSE, 2012, 19 (03) : 729 - 737
  • [30] Self-Assembly of Mechanoplasmonic Bacterial Cellulose-Metal Nanoparticle Composites
    Eskilson, Olof
    Lindstrom, Stefan B.
    Sepulveda, Borja
    Shahjamali, Mohammad M.
    Guell-Grau, Pau
    Sivler, Petter
    Skog, Marten
    Aronsson, Christopher
    Bjork, Emma M.
    Nyberg, Niklas
    Khalaf, Hazem
    Bengtsson, Torbjorn
    James, Jeemol
    Ericson, Marica B.
    Martinsson, Erik
    Selegard, Robert
    Aili, Daniel
    ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (40)