壳聚糖基复合物理水凝胶的制备及其重金属吸附性能

林宗坤, 杨玉如, 张爱萍*

化工新型材料 ›› 2022, Vol. 50 ›› Issue (7) : 204 -209.

PDF
化工新型材料 ›› 2022, Vol. 50 ›› Issue (7) : 204-209. DOI: 10.19817/j.cnki.issn1006-3536.2022.07.042
科学研究

壳聚糖基复合物理水凝胶的制备及其重金属吸附性能

    林宗坤, 杨玉如, 张爱萍*
作者信息 +

Preparation of chitosan-based composite physical hydrogel and its heavy metal adsorption property

  • Lin Zongkun, Yang Yuru, Zhang Aiping
Author information +
文章历史 +
PDF

摘要

为避免化学水凝胶吸附剂残留的有毒化学交联剂对环境造成二次污染的问题,同时克服膨润土作为水介质中的吸附剂吸附性能较弱且难以回收的特点,构建了壳聚糖/聚丙烯酸钠/膨润土(CTS/PAA/BT)复合物理水凝胶。利用X射线衍射、红外光谱和扫描电镜等手段对其进行表征;考察不同条件以及多元离子竞争对其吸附水中Pb2+、Cu2+、Cd2+的影响,并通过吸附动力学,等温线和热力学的探究,了解其吸附机理。结果表明:在pH=5时最利于水凝胶的吸附,对Pb2+、Cu2+、Cd2+最大吸附量分别为208.94mg/g、157.7mg/g、106.82mg/g,吸附过程是自发的、单层吸附,且以化学吸附为主;吸附容量受其他阳离子(Mg2+,K+)的影响较小,对去除水中重金属离子有着良好的应用前景。

Abstract

In order to avoid the secondary pollution of the residual toxic chemical crosslinking agent accompanied by the chemical hydrogel adsorbent,chitosan/sodium polyacrylate/bentonite (CTS/PAA/BT) composite physical hydrogel,which possessed better collectability and adsorption performance than raw bentonite,was constructed.XRD,FI-IR,SEM and other testing instruments were used to characterize the hydrogel.The hydrogel's adsorption of Pb2+,Cu2+ and Cd2+ in water under different condition as well as multi-ion competitive sorption were investigated,and understood the adsorption mechanism through the exploration of adsorption kinetics,isotherms and thermodynamics.The results shown that the maximum adsorption capacity of the hydrogel for Pb2+,Cu2+ and Cd2+ was 208.94mg/g,157.7mg/g and 106.82mg/g,respectively.under the condition of pH=5.The adsorptions occurred spontaneously,which were not only monolayer adsorptions but also chemical adsorptions dominantly.Neither Mg2+ nor K+ had significant effect on the heavy metal adsorption of the hydrogel,which exhibited promising application prospect for removal of heavy metal ions from water.

关键词

壳聚糖 / 聚丙烯酸钠 / 膨润土 / 物理水凝胶 / 重金属离子吸附

Key words

chitosan / sodium polyacrylate / bentonite / physical hydrogel / heavy metal ion adsorption

引用本文

引用格式 ▾
壳聚糖基复合物理水凝胶的制备及其重金属吸附性能[J]. 化工新型材料, 2022, 50(7): 204-209 DOI:10.19817/j.cnki.issn1006-3536.2022.07.042

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Hokkanen S,Bhatnagar A,Sillanpaa M.A review on modification methods to cellulose-based adsorbents to improve adsorption capacity[J].Water Research,2016,91:156-173.
[2] Wang L,Ling C,Li B,et al.Highly efficient removal of Cu(Ⅱ) by novel dendritic polyamine-pyridine-grafted chitosan beads from complicated salty and acidic wastewaters[J].RSC Advances,2020,10(34):19943-19951.
[3] Li H,Li T,Zhu J,et al.search progress of membrane separation technology for industrial wastewater treatment[J].Applied Chemical Industry,2018,47(12):2739-2743.
[4] Yang X,Wan Y,Zheng Y,et al.Surface functional groups of carbon-based adsorbents and their roles in the removal of heavy metals from aqueous solutions:a critical review[J].Chemical Engineering Journal,2019,366:608-621.
[5] Zhao R,Li Y,Sun B,et al.Highly flexible magnesium silicate nanofibrous membranes for effective removal of methylene blue from aqueous solution[J].Chemical Engineering Journal,2019,359:1603-1616.
[6] Guo Y,Jia Z,Wang S,et al.Sandwich membranes based on PVDF-g-4VP and surface modified graphene oxide for Cu(Ⅱ) adsorption[J].Journal of Hazardous Materials,2019,377:17-23.
[7] Verma A,Thakur S,Mamba G,et al.Graphite modified sodium alginate hydrogel composite for efficient removal of malachite green dye[J].International Journal of Biological Macromolecules,2020,148:1130-1139.
[8] Baghbadorani N B,Behzad T,Etesami N,et al.Removal of Cu2+ ions by cellulose nanofibers-assisted starch-g-poly(acrylic acid) superadsorbent hydrogels[J].Composites Part B-Engineering,2019,176:107084.
[9] Zhang M,Song L,Jiang H,et al.Biomass based hydrogel as an adsorbent for the fast removal of heavy metal ions from aqueous solutions[J].Journal of Materials Chemistry A,2017,5(7):3434-3446.
[10] Chen X,Li P,Kang Y,et al.Preparation of temperature-sensitive Xanthan/NIPA hydrogel using citric acid as crosslinking agent for bisphenol A adsorption[J].Carbohydrate Polymers,2019,206:94-101.
[11] Zhao B,Jiang H,Lin Z,et al.Preparation of acrylamide/acrylic acid cellulose hydrogels for the adsorption of heavy metal ions[J].Carbohydrate Polymers,2019,224:115022.
[12] Li P,Zhao J,Chen Y,et al.Preparation and characterization of chitosan physical hydrogels with enhanced mechanical and antibacterial properties[J].Carbohydrate Polymers,2017,157:1383-1392.
[13] Wahlström N,Steinhagen S,Toth G,et al.Ulvan dialdehyde-gelatin hydrogels for removal of heavy metals and methylene blue from aqueous solution[J].Carbohydrate Polymers,2020,249:116841.
[14] Zhao J,Chen Y,Yao Y,et al.Preparation of the polyelectrolyte complex hydrogel of biopolymers via a semi-dissolution acidification sol-gel transition method and its application in solid-state supercapacitors[J].Journal of Power Sources,2018,378:603-609.
[15] Wang R,Gao S,Yang Z,et al.Engineered and laser-processed chitosan biopolymers for sustainable and biodegradable triboelectric power generation[J].Advanced Materials,2018,30:170626711.
[16] Fernandez J G,Ingber D E.Unexpected strength and toughness in chitosan-fibroin laminates inspired by insect cuticle[J].Advanced Materials,2012,24(420):480.
[17] Ostrowska-Czubenko J,Gierszewska-Druzynska M.Effect of ionic crosslinking on the water state in hydrogel chitosan membranes[J].Carbohydrate Polymers,2009,77(3):590-598.
[18] Bensalem S,Hamdi B,Del Confetto S,et al.Characterization of chitosan/montmorillonite bionanocomposites by inverse gas chromatography[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2017,516:336-344.
[19] Pawar R R,Lalhmunsiama,Ingole P G,et al.Use of activated bentonite-alginate composite beads for efficient removal of toxic Cu2+ and Pb2+ ions from aquatic environment[J].International Journal of Biological Macromolecules,2020,164:3145-3154.
[20] Thakur S,Govender P P,Mamo M A,et al.Recent progress in gelatin hydrogel nanocomposites for water purification and beyond[J].Vacuum,2017,146:396-408.
[21] Tang S,Yang J,Lin L,et al.Construction of physically crosslinked chitosan/sodium alginate/calcium ion double-network hydrogel and its application to heavy metal ions removal[J].Chemical Engineering Journal,2020,393:124728.
[22] Wahlström N,Steinhagen S,Toth G,et al.Ulvan dialdehyde-gelatin hydrogels for removal of heavy metals and methylene blue from aqueous solution[J].Carbohydrate Polymers,2020,249:116841.
[23] Baghbadorani N B,Behzad T,Etesami N,et al.Removal of Cu2+ ions by cellulose nanofibers-assisted starch-g-poly(acrylic acid) superadsorbent hydrogels[J].Composites Part B-Engineering,2019,176:107084.
[24] Orozco-Guareno E,Santiago-Gutierrez F,Luis Moran-Quiroz J,et al.Removal of Cu(Ⅱ) ions from aqueous streams using poly(acrylic acid-co-acrylamide) hydrogels[J].Journal of Colloid and Interface Science,2010,349(2):583-593.
[25] Ma J,Luo J,Liu Y,et al.Pb(Ⅱ),Cu(Ⅱ) and Cd(Ⅱ) removal using a humic substance-based double network hydrogel in individual and multicomponent systems[J].Journal of Materials Chemistry A,2018,6(41):20110-20120.
[26] Ferreira F J L,Silva L S,Da Silva M S,et al.Understanding kinetics and thermodynamics of the interactions between amitriptyline or eosin yellow and aminosilane-modified cellulose[J].Carbohydrate Polymers,2019,225:115246.
[27] 陈婧,谢水波,刘迎九,等.壳聚糖插层膨润土的制备及其对U(VI)的吸附[J].水处理技术,2016,42(6):76-80.

基金资助

国家自然科学基金(3177030025)

AI Summary AI Mindmap
PDF

628

访问

0

被引

导航
相关文章

AI思维导图

/