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纳米纤维素碱法制备及光谱性质 被引量:22

Preparation and Spectrum Properties of Cellulose Nanoparticles
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摘要 在纳米尺寸范围操控纤维素分子,由此创制出具有优异功能的新纳米材料是纤维素科学的前沿领域。纳米纤维素作为一种可再生生物材料已成为国内外研究热点,研究开发新型的简单、绿色、低能耗、快速、高效的纳米纤维素制备方法显得尤为重要。该研究采用简易可行的碱性水解法制备得到粒径较小且分散性较好的纳米纤维素。同时采用了电子显微镜、X射线粉末衍射仪和傅里叶红外光谱仪对所制备纳米纤维素进行了表征,研究了其结构与谱学性质。所制备样品为准球形纳米纤维素,颗粒尺寸约为20~40 nm,样品仍属于纤维素Ⅰ型,结晶度为79.71%,晶粒平均尺寸为3~6 nm。结果表明,碱水解法制备纳米纤维素方法具有简易可行、得率高的优点,研究可为纳米纤维素的高效制备提供一条新途径。 Manipulating cellulose molecules in nanosize range to create excellent nano materials is the frontier of cellulose science. Cellulose nanoparticles, a kind of renewable biomaterial, have become the research focus home and aboard. It is of great impor tance to develop a simple, green, low energy-consuming, rapid and efficient method to prepare cellulose nanoparticles. In the present paper, cellulose nanoparticles (CNP) which enjoy good dispersity and nanosize were prepared by alkaline hydrolysis in a simple and feasible way, with microcrystalline cellulose (MCC) as the raw material. Moreover, the size and morphology, crystal structure and spectrum properties of the cellulose nanoparticles were analyzed by means of transmission electron microscopy (TEM), scanning electron microscopy (SEM), Xray diffraction (XRD) and Fourier transform infrared spectrometry (FTIR). TEM images demonstrate that the prepared samples are in quasi-sphere shapes with good dispersity and with size about 20 40 nm. The SEM images of the samples show that the purified cellulose nanoparticles can be obtained after dialysis treatment to remove salt particles. The XRD results show that the microcrystalline cellulose and cellulose nanoparticles almost have the same diffraction peaks in cellulose I crystal form. Because of the damage of amorphous region of MCC by alkaline hydrolysis, the crystallinity of produced samples increases by up to 79.71 %. The grain size was calculated with Scherrer's formula, and the average size is about 3 6 nm. Furthermore, the FTIR spectra suggest that the characteristic peaks on the graphs of cellulose nanoparti cles have no significant change compared to natural cellulose, which indicates that the sample remains as the basic chemical groups of cellulose. The results show that preparing cellulose nanoparticles (CNP) by alkaline hydrolysis enjoys the ease to op crate and can produce high yield, and therefore the study offers a new approach to obtaining cellulose nanoparticles with nanosize and good dispersion.
出处 《光谱学与光谱分析》 SCIE EI CAS CSCD 北大核心 2010年第7期1876-1879,共4页 Spectroscopy and Spectral Analysis
基金 国家自然科学基金项目(30771682) 国家"十一五"科技支撑计划项目(2008BADA9B0501)资助
关键词 纳米纤维素 碱水解 制备 表征 Cellulose nanoparticles Alkaline hydrolysis Preparation Characterization
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参考文献23

  • 1Hubbe M A,Rojas O J,Lucia A,et al.Bioresources,2008,3(3):929.
  • 2Cheng Q,Wang S,Rials T G.Composites:Part A,2009,40(2):218.
  • 3George J,Sreekala M S,Thomas S.Polymer Engineering and Science,2001,41(9):1471.
  • 4Nogi M,Iwamoto S,Nakagaito A N,et al.Advanced Materials,2009,20:1.
  • 5Favier V,Canova G R,Cavaille J Y,et al.Polymers Advan.Technol.,1995,6(5):351.
  • 6Lee S Y,Mohan D J,Kang I A,et al.Fibers and Polymers,2009,10(1):77.
  • 7Ahola S,Salmi J,Johansson L S,et al.Biomacromolecules,2008,9(4):1273.
  • 8Panthapulakkal S,Zereshkian A,Sain M Bioresource Technology,2006,97(2):265.
  • 9Cranston E D,Gray DG.Biomacromolecules,2006,7(9):2522.
  • 10甄文娟,单志华.纳米纤维素在绿色复合材料中的应用研究[J].现代化工,2008,28(6):85-88. 被引量:20

二级参考文献50

  • 1袁莉,马晓燕,梁国正,王娟娟.分子复合材料的研究进展[J].高分子材料科学与工程,2004,20(5):41-45. 被引量:7
  • 2巫辉,雷家珩,严精忠,李建宗.界面对MMA-St透光复合材料光学性能的影响[J].高分子材料科学与工程,1995,11(4):97-101. 被引量:2
  • 3李志强,田少华,宋伟朋,韦志仁,窦军红,李娟.Cu^+浓度对ZnS:Cu电致发光材料热释光曲线的影响[J].光谱学与光谱分析,2005,25(10):1730-1732. 被引量:1
  • 4黄绘敏,李振宇,杨帆,王威,王策.静电纺丝法制备超细聚苯乙烯纳米纤维[J].高等学校化学学报,2007,28(6):1200-1202. 被引量:25
  • 5Luo S, Netravali A N. Interracial and mechanical properties of environment friendly “green” composite made from pineapple fibers and poly (droxybutyrate-eo-valerate) resin [ J ]. Mater Sci, 1999, 34:3709 - 3715.
  • 6Takagi H. Biedegradation behavior of starch-based “green” composites reinforced by Manila hemp fibers[ C]//Proceedings of 3rd international conference on eco-composites.Stockholm,2005:141 - 146.
  • 7Netravali A N, Chabba S. Composites get greener[ J ]. Materials Today, 2003,6:22-29.
  • 8Xiaodong C, Hua D, Chang M L. New nanocomposite materials reinforced with flax cellulose nanocrystals in waterborne polyurethane[ J ]. Biomacromolecules, 2007,8 : 899 - 904.
  • 9Hermarm A S, Nikel J, Riedel U. Construction materials Based upon biologically renewable resources-from components to finished parts [ J]. Polymer Degrad Stab, 1998,59 : 251 - 259.
  • 10Avella M, Martuscelli E, Pascucci B. A new class of biodegradable materials: Poly-3-hydroxy butyrate/steam exploded straw fiber composites [ J]. Application Polymer Science, 1993,49: 2091 - 2098.

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