1 |
YU Fei, YANG Peiyu, YANG Zhengqu, et al. Double-network hydrogel adsorbents for environmental applications[J]. Chemical Engineering Journal, 2021, 426: 131900.
|
2 |
傅晓钘, 吴雪绮. 探究重金属废水处理技术和资源利用[J]. 皮革制作与环保科技, 2022, 3(22): 8-10.
|
|
FU Xiaoxing, WU Xueqi. Discussion on heavy metal wastewater treatment technology and resource utilization[J]. Leather Manufacture and Environmental Technology, 2022, 3(22): 8-10.
|
3 |
LIN Guo, ZENG Biao, LI Jing, et al. A systematic review of metal organic frameworks materials for heavy metal removal: Synthesis, applications and mechanism[J]. Chemical Engineering Journal, 2023, 460: 141710.
|
4 |
ALSAFRAN Mohammed, SALEEM Muhammad Hamzah, JABRI Hareb AL, et al. Principles and applicability of integrated remediation strategies for heavy metal removal/recovery from contaminated environments[J]. Journal of Plant Growth Regulation, 2023, 42(6): 3419-3440.
|
5 |
RAJENDRAN Saravanan, PRIYA A K, Senthil KUMAR P, et al. A critical and recent developments on adsorption technique for removal of heavy metals from wastewater-a review[J]. Chemosphere, 2022, 303: 135146.
|
6 |
GOKMEN F O, YAMAN E, TEMEL S. Eco-friendly polyacrylic acid based porous hydrogel for heavy metal ions adsorption: Characterization, adsorption behavior, thermodynamic and reusability studies[J]. Microchemical Journal, 2021, 168: 106357.
|
7 |
PERUMAL Suguna, ATCHUDAN Raji, EDISON Thomas, et al. A short review on recent advances of hydrogel-based adsorbents for heavy metal ions[J]. Metals, 2021, 11: 864.
|
8 |
WANG Zhike, LI Tingting, PENG Haokai, et al. Natural-clay-reinforced hydrogel adsorbent: Rapid adsorption of heavy-metal ions and dyes from textile wastewater[J]. Water Environment Research, 2022, 94(4): e10698.
|
9 |
YUE Haoyu, SHANG Zhijie, XU Pan, et al. Preparation of EDTA modified chitooligosaccharide/sodium alginate/Ca2+ physical double network hydrogel by using of high-salinity oilfield produced water for adsorption of Zn2+, Ni2+ and Mn2+ [J]. Separation and Purification Technology, 2022, 280: 119767.
|
10 |
ZHANG Peng, ZOU Kui, YUAN Li, et al. A biomass resource strategy for alginate-polyvinyl alcohol double network hydrogels and their adsorption to heavy metals[J]. Separation and Purification Technology, 2022, 301: 122050.
|
11 |
TAMER Yasemin, ÖZEREN Mehmet Derya, BERBER Hale. High adsorption performance of graphene oxide doped double network hydrogels for removal of azo dyes from water and their kinetics[J]. Journal of Polymers and the Environment, 2021, 29(12): 4000-4016.
|
12 |
李立清, 吴盼旺, 马杰. 双网络凝胶吸附剂的构建及其去除水中污染物的应用[J]. 化学进展, 2021, 33(6): 1010-1025.
|
|
LI Liqing, WU Panwang, MA Jie. Construction of double network gel adsorbent and application for pollutants removal from aqueous solution[J]. Progress in Chemistry, 2021, 33(6): 1010-1025.
|
13 |
WU Zhiying, ZHANG Ping, ZHANG Haihui, et al. Tough porous nanocomposite hydrogel for water treatment[J]. Journal of Hazardous Materials, 2022, 421: 126754.
|
14 |
黄沅清, 杨春平, 孙志超, 等. 氨三乙酸酐改性纤维素对Cd2+的吸附性能[J]. 环境科学学报, 2015, 35(6): 1792-1799.
|
|
HUANG Yuanqing, YANG Chunping, SUN Zhichao, et al. Adsorption of Cd2+ by NTA anhydride(NTAA)-modified cellulose materials[J]. Acta Scientiae Circumstantiae, 2015, 35(6): 1792-1799.
|
15 |
BASAK Shibaji, NANDI Nibedita, PAUL Subir, et al. A tripeptide-based self-shrinking hydrogel for waste-water treatment: Removal of toxic organic dyes and lead (Pb2+) ions[J]. Chemical Communications, 2017, 53(43): 5910-5913.
|
16 |
ZHUANG Yuan, YU Fei, MA Jie, et al. Enhanced adsorption removal of antibiotics from aqueous solutions by modified alginate/graphene double network porous hydrogel[J]. Journal of Colloid and Interface Science, 2017, 507: 250-259.
|
17 |
PANJA Sudipta, HANSON Samuel, WANG Chun. EDTA-inspired polydentate hydrogels with exceptionally high heavy metal adsorption capacity as reusable adsorbents for wastewater purification[J]. ACS Applied Materials & Interfaces, 2020, 12(22): 25276-25285.
|
18 |
俞洁, 张海涛, 陆泉芳, 等. 坡缕石/聚乙二醇/丙烯酸水凝胶的表征及其对阳离子染料的吸附性能[J]. 化工进展, 2015, 34(4): 1115-1121.
|
|
YU Jie, ZHANG Haitao, LU Quanfang, et al. Characterization of palygorskite/poly(ethylene glycol)/acrylic acid hydrogel and its application as an adsorbent for cationic dyes[J]. Chemical Industry and Engineering Progress, 2015, 34(4): 1115-1121.
|
19 |
XIE Jian jun, LI Na, HUANG Kai, et al. Adsorption properties for superabsorbent of inverse suspension polymerization poly(acrylate-co-acrylamide)[J]. Advanced Materials Research, 2011, 239/240/241/242: 851-854.
|
20 |
潘界舟, 宋寒冰, 王盛华, 等. 聚丙烯酸-羧甲基壳聚糖水凝胶对皮革废水中Cr(Ⅲ)吸附研究[J]. 皮革科学与工程, 2019, 29(3): 12-18, 24.
|
|
PAN Jiezhou, SONG Hanbing, WANG Shenghua, et al. Adsorption of Cr(Ⅲ) from tannery wastewater by the PAA-CMCS hydrogel[J]. Leather Science and Engineering, 2019, 29(3): 12-18, 24.
|
21 |
王向鹏, 郑云香, 宗丽娜, 等. EDTA改性P(AA-AMPS)/SA耐水解水凝胶的制备及其对Cu2+、Cr3+的吸附性能[J]. 精细化工, 2020, 37(4): 727-733, 740.
|
|
WANG Xiangpeng, ZHENG Yunxiang, ZONG Lina, et al. Preparation of EDTA modified P(AA-AMPS)/SA hydrogels with hydrolysis resistance and its adsorption properties of Cu2+ and Cr3+ [J]. Fine Chemicals, 2020, 37(4): 727-733, 740.
|
22 |
龚磊, 刘倩, 戴润英, 等. 柚皮粉复合高吸水树脂吸附溶液中Cu2+的行为及机理[J]. 精细化工, 2019, 36(8): 1660-1664.
|
|
GONG Lei, LIU Qian, DAI Runying, et al. Behaviors and mechanism of pomelo peel powder composite superabsorbent absorbing Cu2+ in solution[J]. Fine Chemicals, 2019, 36(8): 1660-1664.
|
23 |
SALTAN Fehmi, SALTAN Gözde Murat. Preparation of expanded-graphite reinforced poly(vinyl alcohol)/polyvinyl pyrrolidone/poly(acrylic acid-co-maleic acid) hydrogel films, investigation of swelling, metal adsorption, and thermal properties[J]. Polymer-Plastics Technology and Materials, 2023, 62(8): 960-973.
|
24 |
HUMELNICU Doina, DRAGAN Ecaterina Stela, IGNAT Maria, et al. A comparative study on Cu2+, Zn2+, Ni2+, Fe3+, and Cr3+ metal ions removal from industrial wastewaters by chitosan-based composite cryogels[J]. Molecules, 2020, 25(11): 2664.
|
25 |
WANG Xiaohong, WANG Yingying, HE Shufu, et al. Ultrasonic-assisted synthesis of superabsorbent hydrogels based on sodium lignosulfonate and their adsorption properties for Ni2+ [J]. Ultrasonics Sonochemistry, 2018, 40: 221-229.
|