半纤维素基水凝胶制备及应用研究进展
Research progress in preparation and application of hemicellulose-based hydrogels
查看参考文献68篇
文摘
|
半纤维素基水凝胶是一种具有优异保水性、良好生物相容性和力学性能的三维网络状亲水聚合物,在软材料领域尤其是半纤维素基材料研究领域备受瞩目。本文综述了近年来半纤维素基水凝胶的研究进展,从化学交联和物理交联两个方面介绍了半纤维素基水凝胶的制备方法、形成机理和性能,比较了化学交联中光、酶、微波辐射和辉光放电电解等离子体等不同引发体系的差异,总结了半纤维素基水凝胶在药物控释、伤口敷料、高效吸附及3D打印等领域的最新应用和发展,并对半纤维素基水凝胶领域所面临的挑战进行了总结和展望,以期为新型半纤维素水凝胶的研究提供参考。 |
其他语种文摘
|
Hemicellulose-based hydrogels are three-dimensional networks formed by crosslinking hydrophilic polymers with tunable swelling behavior,acceptable biocompatibility and mechanical properties,and have received much attention in the field of soft materials especially in hemicellulosebased materials.Herein,recent advances and developments in hemicellulose-based hydrogels were reviewed.The preparation methods,mechanism of their gelation process,and the performance of the hemicellulose-based hydrogels were presented from both chemical and physical cross-linking approaches,while the differences in various initiation systems such as light,enzyme,microwave irradiation and glow discharge electrolysis plasma in chemical cross-linking were compared.The latest applications of hemicellulose-based hydrogels in drug-controlled release,wound dressing,water purification,3Dprinting dispersions,etc,were introduced,respectively.Finally,the challenges in the development of hemicellulose-based hydrogels were summarized briefly and future prospect was also given,which provides a reference for the synthesis of new hemicellulose-based hydrogels. |
来源
|
材料工程
,2020,48(2):1-10 【核心库】
|
DOI
|
10.11868/j.issn.1001-4381.2019.000500
|
关键词
|
半纤维素
;
水凝胶
;
制备
;
药物控释
;
伤口敷料
;
吸附
|
地址
|
1.
北京林业大学, 林木生物质化学北京市重点实验室, 北京, 100083
2.
大连工业大学生物质科学与工程中心, 辽宁省制浆造纸工程高校重点实验室, 辽宁, 大连, 116034
|
语种
|
中文 |
文献类型
|
综述型 |
ISSN
|
1001-4381 |
学科
|
化学 |
基金
|
国家自然科学基金项目
|
文献收藏号
|
CSCD:6675524
|
参考文献 共
68
共4页
|
1.
尹大伟. 水凝胶的最新研究进展.
化工新型材料,2012,40(2):21-23
|
CSCD被引
16
次
|
|
|
|
2.
Ahmed E M. Hydrogel:preparation,characterization,and applications: a review.
Journal of Advanced Research,2015,6(2):105-121
|
CSCD被引
146
次
|
|
|
|
3.
Qi X M. A non-covalent strategy for montmorillonite/xylose self-healing hydrogels.
RSC Advances,2015,5(51):41006-41012
|
CSCD被引
1
次
|
|
|
|
4.
Gabrielii I. Separation, characterization and hydrogel-formation of hemicellulose from aspen wood.
Carbohydrate Polymers,2000,43(4):367-374
|
CSCD被引
12
次
|
|
|
|
5.
Martinez-Gomez F. In vitro release of metformin hydrochloride from sodium alginate/polyvinyl alcohol hydrogels.
Carbohydrate Polymers,2017,155:182-191
|
CSCD被引
5
次
|
|
|
|
6.
Amin M C I M. Synthesis and characterization of thermo-and pH-responsive bacterial cellulose/acrylic acid hydrogels for drug delivery.
Carbohydrate Polymers,2012,88(2):465-473
|
CSCD被引
12
次
|
|
|
|
7.
Peng X W. Xylan-rich hemicelluloses- graft-acrylic acid ionic hydrogels with rapid responses to pH, salt,and organic solvents.
Journal of Agricultural and Food Chemistry,2011,59(15):8208-8215
|
CSCD被引
7
次
|
|
|
|
8.
Li X. Hydrogels based on hemicellulose and lignin from lignocellulose biorefinery:a mini-review.
Journal of Biobased Materials and Bioenergy,2010,4(4):289-297
|
CSCD被引
3
次
|
|
|
|
9.
Jayakumar R. Biomaterials based on chitin and chitosan in wound dressing applications.
Biotechnology Advances,2011,29(3):322-337
|
CSCD被引
68
次
|
|
|
|
10.
Li G X. Iron(II)cross-linked chitinbased gel bead:preparation,magnetic property and adsorption of methyl orange.
Carbohydrate Polymers,2010,82(3):706-713
|
CSCD被引
2
次
|
|
|
|
11.
Li T. Porous ionic membrane based flexible humidity sensor and its multifunctional applications.
Advanced Science,2017,4(5):1600404
|
CSCD被引
13
次
|
|
|
|
12.
Peng F. Fractional purification and bioconversion of hemicelluloses.
Biotechnology Advances,2012,30(4):879-903
|
CSCD被引
15
次
|
|
|
|
13.
Scheller H V. Hemicelluloses.
Annual Review of Plant Biology,2010,61:263-289
|
CSCD被引
80
次
|
|
|
|
14.
程合丽. 半纤维素基水凝胶制备方法研究进展.
造纸科学与技术,2015,34(6):40-45
|
CSCD被引
4
次
|
|
|
|
15.
Elgueta E. Functionalized galactoglucomannan- based hydrogels for the removal of metal cations from aqueous solutions.
Journal of Applied Polymer Science,2016,133(41):1-8
|
CSCD被引
2
次
|
|
|
|
16.
Qi X M. Enhanced mechanical performance of biocompatible hemicelluloses-based hydrogel via chain extension.
Scientific Reports,2016,6:1-10
|
CSCD被引
1
次
|
|
|
|
17.
Roos A A. Protein release from galactoglucomannan hydrogels:influence of substitutions and enzymatic hydrolysis by β-mannanase.
Biomacromolecules,2008,9(8):2104-2110
|
CSCD被引
2
次
|
|
|
|
18.
Parikka K. Laccase/TEMPO oxidation in the production of mechanically strong arabinoxylan and glucomannan aerogels.
Carbohydrate Polymers,2017,175:377-386
|
CSCD被引
3
次
|
|
|
|
19.
Maleki L. Thiolated hemicellulose as a versatile platform for one-pot click-type hydrogel synthesis.
Biomacromolecules,2015,16(2):667-674
|
CSCD被引
4
次
|
|
|
|
20.
Karaaslan M A. Nanoreinforced biocompatible hydrogels from wood hemicelluloses and cellulose whiskers.
Carbohydrate Polymers,2011,86(1):192-201
|
CSCD被引
7
次
|
|
|
|
|