功能纤维素纳米纤维制备及其改性研究进展

杨晨曦1,2,3,4, 王健1,2,3,4, 郭振1,2,3,4, 曹婷婷1,2,3,4

化工新型材料 ›› 2022, Vol. 50 ›› Issue (9) : 37 -41.

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化工新型材料 ›› 2022, Vol. 50 ›› Issue (9) : 37-41. DOI: 10.19817/j.cnki.issn1006-3536.2022.09.008
综述与专论

功能纤维素纳米纤维制备及其改性研究进展

    杨晨曦1,2,3,4, 王健1,2,3,4, 郭振1,2,3,4, 曹婷婷1,2,3,4
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Progress on preparation and modification of functional CNF

  • Yang Chenxi1,2,3,4, Wang Jian1,2,3,4, Guo Zhen1,2,3,4, Cao Tingting1,2,3,4
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文章历史 +
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摘要

功能化纤维素由于其优异的性质及广泛的来源引起了越来越多的关注,近年来,有关纤维素的研究集中在纤维素纳米纤维素(CNF)上,由于生产CNF的高能耗和高成本的缺点,纤维素的化学预处理对于改善纳米原纤化和降低能耗至关重要。此外,由于CNF的亲水性和凝胶状行为等缺点,制备功能化CNF成为了目前纤维素研究的重点。主要对CNF改性的方法,并对所合成的功能化CNF的应用进行了综述,旨在总结纤维素制备CNF及功能化CNF合成的方法,并讨论未来功能化CNF的合成方向。

Abstract

Due to its excellent properties and wide sources,more and more attention has been paid to nanocellulose.In recent years,the research on cellulose has focused on cellulose nanofiber (CNF).Due to the high energy consumption and high cost of CNF production,the chemical pretreatment of cellulose is very important to improve nanofibrillation and reduce energy consumption.In addition,due to the hydrophilic and gelatinous behavior of CNF,the preparation of functionalized CNF has become the focus of cellulose research.The methods of CNF modification and the application of functionalized CNF were mainly reviewed.The purpose of was to summarize the methods of cellulose preparation and functional CNF synthesis,and discussed the future direction of functionalized CNF.

关键词

纤维素纳米纤维 / 改性 / 接枝 / 吸附

Key words

cellulose nanofiber / modification / grafting / adsorption

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功能纤维素纳米纤维制备及其改性研究进展[J]. 化工新型材料, 2022, 50(9): 37-41 DOI:10.19817/j.cnki.issn1006-3536.2022.09.008

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参考文献

[1] 段博,涂虎,张俐娜.可持续高分子-纤维素新材料研究进展[J].高分子学报,2020,51(1):66-86.
[2] Jung J,Deng Z,Zhao Y.A review of cellulose nanomaterials incorporated fruit coatings with improved barrier property and stability:principles and applications[J].Journal of Food Process Engineering,2020,43:e13344.
[3] Turbak A,Snyder F,Sandberg K.Microfibrillated cellulose,a new cellulose product:properties,uses,and commercial potential[J].Journal of Applied Polymer Science,1983,37:815-827.
[4] Flávia P,Carta A,Amaral M,et al.Micro/nano-fibrillated cellulose (MFC/NFC) fibers as an additive to maximize eucalyptus fibers on tissue paper production[J].Cellulose,2021,15:1-19.
[5] Claro F,Matos M,Jordo C,et al.Enhanced microfibrillated cellulose-based film by controlling the hemicellulose content and MFC Rheology[J].Carbohydrate Polymers,2019,218(15):307-314.
[6] 高艳红,石瑜,田超,等.微纤化纤维素及其制备技术的研究进展[J].化工进展,2017,36(1):232-246.
[7] 郭婷,裴莹,郑学晶,等.预处理对高压均质法制备微纤化纤维素结构与性能的影响[J].功能材料,2016,47(1):1049-1052.
[8] 董丽攀,李政,王福迎,等.细菌纤维素@聚吡咯-单壁碳纳米管导电膜的制备与表征[J].复合材料学报,2019,36(3):723-729.
[9] 许凯瑞,宫庆华,周国伟.纳米纤维素的分类制备及其在电化学应用中的研究进展[J].高分子通报,2020(10):12-20.
[10] 张碟,蔡杰,徐威,等.纤维素纳米纤维水凝胶的构筑与吸附性能研究[J].林业工程学报,2019,4(2):92-98.
[11] Kim J,Lee D,Lee Y,et al.Nanoceliulose for energy storage systems:beyond the limits of synthetic materials[J].Advanced Materials,2019,31(20):1804826.1-1804826.16.
[12] Liang Y,Zhu H,Wang L,et al.Biocompatible smart cellulose nanofibres for sustained drug release via pH and temperature dual-responsive mechanism[J].Carbohydrate Polymers,2020,249(6):116876.
[13] 汪雪琴,卢麒麟,林凤采,等.纤维素酶解预处理辅助超声法制备竹浆纳米纤维素[J].农业工程学报,2018,34(9):276-284.
[14] Kwon G,Lee K,Kim D,et al.Cellulose nanocrystal-coated TEMPO-oxidized cellulose nanofiber films for high performance all-cellulose nanocomposites[J].Journal of Hazardous Materials,2020,398:123100.
[15] 李新平,张力,常慧,等.无机盐电解质对纳米纤维素流变性能的影响[J].中国造纸,2020,39(12):9-17.
[16] 高洁,佟潇,崔莹,等.高碘酸钠选择性氧化对亚麻短纤维性能的影响[J].印染助剂,2019,36(6):46-48,52.
[17] Ramezani H,Behzad T,Bagheri R.Synergistic effect of graphene oxide nanoplatelets and cellulose nanofibers on mechanical,thermal,and barrier properties of thermoplastic starch[J].Polymers for Advanced Technologies,2020,31(38):1-13.
[18] 黄彪,卢麒麟,唐丽荣.纳米纤维素的制备及应用研究进展[J].林业工程学报,2016,1(5):1-9.
[19] 赵博,胡尚连,龚道勇,等.固体酸催化纤维素水解转化葡萄糖的研究进展[J].化工进展,2017,36(2):555-567.
[20] Yasin M,Gad A,Ghanem A,et al.Green synthesis of cellulose nanofibers using immobilized cellulase[J].Carbohydrate Polymers,2018,205(1):255-260.
[21] 王钱钱,朱倩倩,孙建中,等.纳米纤维素的形貌及快速表征方法的比较[J].林产化学与工业,2014,34(6):49-55.
[22] Long L,Tian D,Hu J,et al.A xylanase-aided enzymatic pretreatment facilitates cellulose nanofibrillation[J].Bioresource Technology,2017,243:898-904.
[23] 曹猛,孙玉娟,刘洪杰,等.TEMPO氧化纤维素对Pb2+的吸附性能研究[J].化工新型材料,2020,48(12):200-203.
[24] Hou Q,Liu W,Liu Z,et al.Characteristics of wood cellulose fibers treated with periodate and bisulfite[J].Industrial & Engineering Chemistry Research,2007,46:7830-7837.
[25] 王璐瑶,韦峰,陈春涛,等.仿生矿化法制备双磷酸根改性的纤维素/羟基磷灰石复合支架[J].高分子材料科学与工程,2021,37(2):116-123.
[26] 扈佳琪,王丽.羧甲基化沙柳木粉的制备及其吸附性能研究[J].化工新型材料,2018,46(11):278-281.
[27] Pouyet F,Chirat C,Potthast A,et al.Formation of carbonyl groups on cellulose during ozone treatment of pulp:consequences for pulp bleaching[J].Carbohydrate Polymers,2014,109:85-91.
[28] 黄统琳,刘明华,刘剑锋,等.纤维素-丙烯腈-丙烯酰胺共聚物磺甲基化改性研究[J].高校化学工程学报,2011,25(5):803-808.
[29] 王宝玉,李荣,曾锦豪,等.纳米微纤丝制备中化学预处理的研究进展[J].造纸科学与技术,2020,39(4):30-33.
[30] Hatton F,Malmström E,Carlmark A.Tailor-made copolymers for the adsorption to cellulosic surfaces[J].European Polymer Journal,2015,65:325-339.
[31] Galván M,Peresin M,Mocchiutti P,et al.Effects of charge ratios of xylan-poly(allylamine hydrochloride) complexes on their adsorption onto different surfaces[J].Cellulose,2015,22:2955-2970.
[32] Lozhechnikova A,Dax D,Vartiainen J,et al.Modification of nanofibrillated cellulose using amphiphilic block-structured galactoglucomannans[J].Carbohydrate Polymers,2014,110:163-172.
[33] Ahmadi M,Behzad T,Bagheri R,et al.Effect of cellulose nanofibers and acetylated cellulose nanofibers on the properties of low-density polyethylene/thermoplastic starch blends[J].Polymer International,2018,67:993-1002.
[34] Cunha A,Mougel J,Cathala B,et al.Preparation of double pickering emulsions stabilized by chemically tailored nanocelluloses[J].Langmuir,2014,30(31):9327-9335.
[35] Castro I,Berlioz S,Fahs A,et al.Chemical functionalization of nano fibrillated cellulose by glycidyl silane coupling agents:a grafted silane network characterization study[J].International Journal of Biological Macromolecules,2020,165(15):1773-1782.
[36] Wu Z,Zhang T,Zhang H,et al.One-pot fabrication of hydrophilic-oleophobic cellulose nanofiber-silane composite aerogels for selectively absorbing water from oil-water mixtures[J].Cellulose,2021,28(3):1-11.
[37] Saini S,Quinot D,Lavoine N,et al.β-cyclodextrin-grafted TEMPO-oxidized cellulose nanofibers for sustained release of essential oil[J].Journal of Materials Science,2017,52(7):1-13.
[38] 王龙文,马济美,程鑫,等.基于酶触发的点击化学反应测定β-葡萄糖苷酶活性[J].有机化学,2018,38(10):2775-2786.
[39] Zuo J,Liu Z,Luo C,et al.Preparation and properties of high refractive index polythioetherimide film based on thiol-ene click chemistry[J].Progress in Organic Coatings,2021,151:106048-106057.
[40] Junka K,Filpponen I,Johansson L,et al.A method for the heterogeneous modification of nanofibrillar cellulose in aqueous media[J].Carbohydrate Polymers,2014,100:107-115.
[41] 韩景泉,丁琴琴,鲍雅倩,等.纤维素纳米纤丝增强导电水凝胶的合成与表征[J].林业工程学报,2017,2(1):84-89.
[42] Navarro J,Wennmalm S,Godfrey J,et al.Luminescent nanocellulose platform:from controlled graft block copolymerization to biomarker sensing[J].Biomacromolecules,2016,17(3):1101-1109.
[43] Sun D,Liu W,Tang A,et al.A new PEGDA/CNF aerogel-wet hydrogel scaffold fabricated by a two-step method[J].Soft Matter,2019,15:8092-8101.

基金资助

陕西省重点研发计划(2022NY-082);长安大学中央高校基本科研业务费专项资金资助(300102292504);陕西省土地工程建设集团内部科研项目(DJNY2021-22)

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