Page 213 - 《精细化工》2022年第11期
P. 213
第 11 期 张 琦,等: 壳聚糖季铵盐交联酰胺共聚物的制备及应用 ·2363·
3 结论 Chemicals (精细化工), 2016, 33(6): 693-698.
[6] ZHANG H (张华), SHEN Y D (沈一丁), YANG K (杨凯), et al.
Synthesis and application of self-crosslinking cationic acrylamide
(1)将壳聚糖季铵盐引入到酰胺聚合物中,使 copolymer[J]. Chemical Industry and Engineering Progress (化工进
得共聚物 CC-GPPC 既拥有聚酰胺本身的特性,更兼 展), 2020, 39(11): 4581-4588.
[7] CHEN Z, ZHANG H, SONG Z, et al. Combination of glyoxal and
容了壳聚糖的强阳离子性和成膜性等,与商用纸张 chitosan as the crosslinking system to improve paper wet strength[J].
增湿强剂 PAE 树脂相比,CC-GPPC 完全无氯且性 Bioresources, 2013, 8(4): 6087-6096.
[8] SUN R J (孙芮君), LI X R (李小瑞), CHEN X Y (陈旭永), et al.
能优越,固含量提高 30.6%,纸张干、湿抗张指数 Preparation and mechanism study of cross-linked polyethyleneimine
分别增加了 5.83%、10.58%,是一种环保型纸张增 paper wetting agent[J]. Modern Chemical Industry (现代化工),
2020, 40(12): 189-193.
湿强剂。 [9] LIU Q (刘强), HAN Q (韩卿), CHEN Z (陈卓), et al. Research
progress on modification of papermaking fillers and new
(2)通过结构与性能表征,制备的 CC-GPPC reinforcers[J]. Paper Science and Technology (造纸科学与技术),
共聚物重均分子量为 74520,产品具有良好的贮存 2021, 40(1): 1-8.
[10] CHEN Z C (陈子成). Study on strength property improvement of
稳定性,可在成纸过程中通过静电吸附及自身交联, paper sheet with chitosan and its derivatives[D]. Harbin: Northeast
与纤维上的羟基形成氢键,增强纸张物性。当 CC- Forestry University (东北林业大学), 2014.
[11] YANG Z Y (杨志勇). Synthesis of chitosan-modified polyacrylamide
GPPC 添加量为绝干纤维质量的 0.6%时,纸张干抗张 paper strengthening agent[J]. Heilongjiang Pulp & Paper (黑龙江造
指数为 52.99 N·m/g,湿抗张指数为 16.82 N·m/g,与 纸), 2017, 45(3): 1-5.
[12] LIANG S B (梁帅博), YAO C L (姚春丽), FU Q J (符庆金), et al.
原纸相比,分别提高了 29.75%、80.67%,纸张增湿 Research progress of natural polysaccharides and their derivatives as
强性能明显提高。 paper dry strength agents[J]. Transactions of China Pulp and Paper
(中国造纸学报), 2020, 35(1): 72-80.
[13] YAN W B (严维博), WANG J (王建), WANG Z J (王志杰), et al.
参考文献: Study on the preparation of carboxyl modified PAE resin and its
[1] LIU Y B (刘勇兵), LI X R (李小瑞), SHEN Y D (沈一丁), et al. properties [J]. China Pulp & Paper (中国造纸), 2014, 33(2): 16-20.
Preparation and properties of self-crosslinking cationic acrylamide [14] WU Z H (吴宗华), CHEN S P (陈少平), TIANZHONG H X (田中
paper strengthening agent[J]. Transactions of China Pulp and Paper 浩雄). Study on the determination of charge density of polyelectrolyte
(中国造纸学报), 2021, 40(9): 29-35. by flow potential/colloid titration[J]. Journal of Analytical Science
[2] LIANG S B, NING X, FU Q J, et al. The use of a PAE/bentonite (分析科学学报), 2001, 17(3): 207-210.
binary system to improve the wet strength of paper[J]. Bioresources, [15] FATEHI P. Influence of cationic-PVA characteristics on fiber and
2020, 15(4): 8449-8458. paper properties[D]. Fredericton: University of New Brunswick, 2010.
[3] ZHUANG S J (庄思杰), ZHANG J X (张静贤), LONG Z (龙柱), [16] CHEN L (陈林), HOU Y F (侯玉峰), ZHANG H J (张红杰), et al.
et al. Preparation of gallic acid/ethylenediamine co-deposited Improving bonding properties of high-yield pulp fibers by using
polyester fiber and its paper-forming properties[J]. Fine Chemicals functionalized fines[J]. Journal of Tianjin University of Science &
(精细化工), 2021, 33(4): 846-852. Technology (天津科技大学学报), 2018, 33(6): 35-40.
[4] SONG Y Q (宋英琪), SHEN Y D (沈一丁), LIU Y B (刘勇兵), et al. [17] WANG Y X (王艺旋), YANG Z W (杨志伟), SHAN T J (单天娇).
Preparation and performance evaluation of PAE-based paper wet Study progresses on application of chitosan and its derivatives on
strength agent with low organochlorine content[J/OL]. Chemical paper industry[J]. Papermaking Equipment and Materials (造纸装备
Industry and Engineering Progress (化工进展):1-11 [2022-06-25]. 及材料), 2016, (3): 25-29.
https://doi.org/10.16085/j.issn.1000-6613.2021-2640. [18] WU J D, CAI G Q, LIU J Q, et al. Eco-friendly surface modification
[5] FAN D (范丹), WANG H H (王海花), LI X R (李小瑞), et al. on polyester fabrics by esterase treatment[J]. Applied Surface Science,
Synthesis and properties of novel PAEP wet strength agent[J]. Fine 2014, 295(3): 150-157.
(上接第 2354 页) assisted peroxymonosulfate process based on BiOI/B 4C photocatalysts
with Z-scheme heterojunction[J]. Chemical Engineering Journal,
[8] ZHOU B, ZHAO Q, LIU Z, et al. High-temperature ferromagnetic
semiconductor with a field-tunable green fluorescent effect[J]. NPG 2021, 417(2): 129188.
Asia Materials, 2020, 12(1): 1-6. [14] LIU Y, GUO H G, ZHANG Y L, et al. Heterogeneous activation of
[9] YUAN X J, ZHENG W, FENG S, et al. Degradation of bisphenol A persulfate for rhodamine B degradation with 3D flower sphere-like
through Ti-BiOI/ZIF-8/peroxymonosulfate (PMS): Catalystpreparation, BiOI/Fe 3O 4 microspheres under visible light irradiation[J]. Separation
experimental design and catalytic mechanism[J]. Journal of Solid and Purification Technology, 2018, 192: 88-98.
State Chemistry, 2021: 122596. [15] ZHU B Y, CHENG H, MA J F, et al. Bi 2MoO 6 microspheres for the
[10] WANG X J (王晓君). The preparation and properties of modified degradation of orange Ⅱ by heterogeneous activation of persulfate
BiOI and BiOI/cellulose composite[D]. Changchun: Changchun under visible light[J]. Materials Letters, 2020, 261: 127099.
University of Science and Technology (长春理工大学), 2017. [16] WANG Y B, CAO D, ZHAO X. Heterogeneous degradation of
[11] BABAEI A A, GOLSHAN M, KAKAVANDI B. A heterogeneous refractory pollutants by peroxymonosulfate activated by CoO x-doped
photocatalytic sulfate radical-based oxidation process for efficient ordered mesoporous carbon[J]. Chemical Engineering Journal, 2017,
degradation of 4-chlorophenol using TiO 2 anchored on Fe oxides@ 328: 1112-1121.
carbon[J]. Process Safety and Environmental Protection, 2021, 149: [17] LI Z S, TANG X K, HUANG G H, et al. Bismuth MOFs based
35-47. hierarchical Co 3O 4-Bi 2O 3 composite: An efficient heterogeneous
[12] LIU Y L, GUO W L, GUO H S, et al. Cu(Ⅱ)-doped V 2O 5 mediated peroxymonosulfate activator for azo dyes degradation[J]. Separation
persulfate activation for heterogeneous catalytic degradation of and Purification Technology, 2020, 242: 116825.
benzotriazole in aqueous solution[J]. Separation and Purification [18] LI D Y (李达彦). Study on effect and degradation pathway of
Technology, 2020, 230: 115848. oxidizing azo dye AO 7 by H 2O 2-assisted ultrasound photocatalysis[D].
[13] LYU Y, LIU Y, WEI J, et al. Bisphenol S degradation by visible light Chongqing: Chongqing University (重庆大学), 2019.