:Decomposition of carboxymethyl cellulose based on nano-knife principle论文

:Decomposition of carboxymethyl cellulose based on nano-knife principle论文

本文主要研究内容

作者(2019)在《Decomposition of carboxymethyl cellulose based on nano-knife principle》一文中研究指出:The traditional degradation of organic pollutants is based on the sacrifice of chemical or biological reagents. In this study, a purely physical technique was developed to break the chemical bonds and consequently decompose macromolecules in aqueous solution. Assisted with a high-speed mechanical blade, refined quartz sand grains with particularly sharp nanoscale edges can act as ‘nano-knives’, which are able to cut the long chain of carboxymethyl cellulose(CMC, as a model molecule). High performance size exclusion chromatography measurements evidenced that the original CMC molecules(41,000 Da) were decomposed into a series of smaller molecules(460, 1000, 2200, 21,000, 27,000 and 31,000 Da). Consequently, the initial viscosity of the CMC solution(2 g/L) rapidly decreased by approximately 50% after 3 min treatment by the nano-knife materials along with the mechanical blade. Fourier transform infrared(FTIR) spectra indicated that the original functional groups were still present and new functional groups were not produced after shearing. The intensity of the main functional groupβ-1-4-glycosidic bond(wavenumber 1062 cm-1) was observed to markedly decrease after shearing. These results indicated that the long-chain CMC was cleaved into short-chain CMC. A degradation mechanism was proposed whereby the cutting force generated by the rapid motion of the nano-knives may be responsible for the breakage of β-1-4-glycosidic bonds in the macromolecular cellulose backbone. These results provide support for a potentially more affordable and environment-friendly strategy for physical-based decomposition of recalcitrant organic pollutants from aqueous solution without the need of chemical or biological reagents.

Abstract

The traditional degradation of organic pollutants is based on the sacrifice of chemical or biological reagents. In this study, a purely physical technique was developed to break the chemical bonds and consequently decompose macromolecules in aqueous solution. Assisted with a high-speed mechanical blade, refined quartz sand grains with particularly sharp nanoscale edges can act as ‘nano-knives’, which are able to cut the long chain of carboxymethyl cellulose(CMC, as a model molecule). High performance size exclusion chromatography measurements evidenced that the original CMC molecules(41,000 Da) were decomposed into a series of smaller molecules(460, 1000, 2200, 21,000, 27,000 and 31,000 Da). Consequently, the initial viscosity of the CMC solution(2 g/L) rapidly decreased by approximately 50% after 3 min treatment by the nano-knife materials along with the mechanical blade. Fourier transform infrared(FTIR) spectra indicated that the original functional groups were still present and new functional groups were not produced after shearing. The intensity of the main functional groupβ-1-4-glycosidic bond(wavenumber 1062 cm-1) was observed to markedly decrease after shearing. These results indicated that the long-chain CMC was cleaved into short-chain CMC. A degradation mechanism was proposed whereby the cutting force generated by the rapid motion of the nano-knives may be responsible for the breakage of β-1-4-glycosidic bonds in the macromolecular cellulose backbone. These results provide support for a potentially more affordable and environment-friendly strategy for physical-based decomposition of recalcitrant organic pollutants from aqueous solution without the need of chemical or biological reagents.

论文参考文献

  • [1].Synthesis and characterization of carboxymethyl cellulose/organic montmorillonite nanocomposites and its adsorption behavior for Congo Red dye[J]. Min-min WANG,Li WANG.  Water Science and Engineering.2013(03)
  • [2].Two New Three-dimensional Supramolecular Complexes with 5-Carboxyl-1-carboxymethyl-2-oxidopyridinium:Syntheses and Crystal Structures[J]. 王晓娟,姜美香,詹才宏,冯云龙,何银华.  结构化学.2011(01)
  • [3].Crystal Structure,Thermal Behavior and Luminescence of a New Dimeric Manganese(Ⅱ) Complex Constructed with 3-Carboxy-1-carboxymethyl-2-oxidopyridinium[J]. 王秀艳,王维,赵芳薇.  结构化学.2016(03)
  • [4].Absorption Capability Comparison of Two Kinds of Super Absorbent Resins from Carboxymethyl Cellulose[J]. 李杰,丁彩霞,栾昌,曲鹏飞,马骊芳.  Journal of Beijing Institute of Technology.2007(01)
  • [5].Preparation of urea-formaldehyde paraffin microcapsules modified by carboxymethyl cellulose as a potential phase change material[J]. Zhan-hua Huang,Xin Yu,Wei Li,Shou-xin Liu.  Journal of Forestry Research.2015(01)
  • [6].Chemical modification of L-asparaginase with N, O-carboxymethyl chitosan and its effects on plasma half-life and other properties[J]. 钱国强,周菊岩,马建标,何炳林,王道宾.  Science in China(Series B).1997(04)
  • [7].Evaluation of soil washing process with carboxymethyl-β-cyclodextrin and carboxymethyl chitosan for recovery of PAHs/heavy metals/fluorine from metallurgic plant site[J]. Mao Ye,Mingming Sun,Fredrick Orori Kengara,Jingting Wang,Ni Ni,Li Wang,Yang Song,Xinglun Yang,Huixin Li,Feng Hu,Xin Jiang.  Journal of Environmental Sciences.2014(08)
  • [8].Preparation and chromatographic evaluation of a chiral stationary phase based on carboxymethyl-β-cyclodextrin for high-performance liquid chromatography[J]. Min Zhou,Yuande Long,Yonggang Zhi,Xiaoying Xu.  Chinese Chemical Letters.2018(09)
  • [9].Synthesis and Characterisation of Water-Soluble Carboxymethyl-Cyclodextrin Polymer as Capillary Electrophoresis Chiral Selector[J]. Xue Yan SHI; Rui Fang FAN; Yue Qin ZHANG; Jun Ling GU; Ruo Nong FU( College of Chemical Engineering and Material Science Beijing Institute of Technology, Beijing 100081).  Chinese Chemical Letters.2000(01)
  • [10].THE REARRANGEMENT OF 1,7β-DIMETHYL-7α-HYDROXY-8aα-CARBOXYMETHYL-9β-CARBOMETHOXY-4bα, 5, 6, 7, 8, 8a-HEXAttYDROFLUORENE LACTONE INDUCED BY DIBAL-H[J]. Hun Ping HU Xin WANG and Xin Fu PAN State Key Laboratory. of Applied Organic Chemistry, Lanzhou University, Lanzhou 730000.  Chinese Chemical Letters.1991(10)
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