Characterization and Adsorption Capacity of Modified Biochar for Sulfamethylimidine and Methylene Blue in Water

被引:6
|
作者
Zheng, Yao [1 ,2 ]
Lv, Peiyuan [2 ]
Yang, Jie [2 ]
Xu, Gangchun [1 ,2 ]
机构
[1] Chinese Acad Fishery Sci CAFS, Key Lab Integrated Rice Fish Farming Ecol, Minist Agr & Rural Affairs, Freshwater Fisheries Res Ctr FFRC, Wuxi 214081, Jiangsu, Peoples R China
[2] Nanjing Agr Univ, Wuxi Fishery Coll, Wuxi 214081, Jiangsu, Peoples R China
来源
ACS OMEGA | 2023年 / 8卷 / 33期
关键词
ENHANCED PHOSPHATE REMOVAL; HIGHLY EFFICIENT; WASTE-WATER; ANTIBIOTICS; AMMONIUM; OXIDE; PERFORMANCE; COMPOSITES; MECHANISMS; PYROLYSIS;
D O I
10.1021/acsomega.3c01251
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this study, acomposite of pond mud and lanthanum- and nano-zerovalent iron-modified-biochar was investigated for its ability to adsorbmethylene blue (MB) and sulfamethazine (SMZ). La-modified attapulgiteand nano-zero valent iron (surface area enhanced by 43.7% via Brunauer-Emmett-Telleranalysis) were successfully loaded onto the straw-sediment biochar(BC) surface. With the increase in pyrolysis temperature, the biocompatibilityyield, the H, O, and N content, and the ratio of carbon elements decreased,while the pH value, surficial micropores, C element, and ash contentincreased. The biocarbon small molecules were gradually and tightlyordered, and the organic groups such as hydroxyl, carboxyl groups,and carbon oxygen double bonds were gradually lost or disappeared.The original Fe-BC had more phenolic hydroxyl groups forming an intermolecularhydrogen bond than others with a higher adsorption capacity possiblythrough the Schiff base reaction. The effect of various pH (2-9),temperature (15-35 & DEG;C), and initial concentration (1-25mg L-1) on adsorption was investigated. pH and temperaturewere the main factors governing the adsorption process. The maximumadsorption capacity was observed at pH 4. The adsorption performancesfor MB followed the order Fe-BC > La-BC > BC, and the maximumremovalrate was over 98.45% with pH = 7. The three types of BC dosages between0.2 (6.67 g L-1) and 0.4 g showed a removal rateof 99% for MB. The adsorption capacity of Fe-BC, La-BC, and BC forMB was 2.201, 1.905, and 2.401 mg L-1 with pH =4, while 4.79, 4.58, and 5.55 mg g(-1) were observedwith BC dosage at 0.025 g. For SMZ, the higher the temperature, thebetter the adsorption effect, and it reaches saturation at approximately25 & DEG;C. To further evaluate the nature of adsorption, Langmuir/Freundlich/Temkinmodels were tested and the adsorption capacities were evaluated onthe surface of the BC composite. The three modified materials werephysisorbed to SMZ, while MB was chemisorbed. For MB, the adsorptionperformance of BC is the best < 0.2 g (6.67 g L-1) at pH 7.0 at 35 & DEG;C. The Elovich model was more suitable forMB, while the Freundlich and Temkin models could better fit the adsorptionprocess of MB. The preparatory secondary dynamics equation and Langmuirequation were more compliant for SMZ, and the saturated adsorptioncapacities of straw-modified, La-BC, and Fe-BC reached 5.699, 6.088,and 5.678 mg L-1, respectively.
引用
收藏
页码:29966 / 29978
页数:13
相关论文
共 50 条
  • [31] Hydrogel-biochar composites for removal of methylene blue: Adsorption performance, characterization, and adsorption isotherm, kinetics, thermodynamics analysis
    Wang, Xiangpeng
    Zheng, Yunxiang
    Zong, Lina
    Zhang, Chunxiao
    JOURNAL OF APPLIED POLYMER SCIENCE, 2022, 139 (48)
  • [32] A comparative assessment of the methylene blue dye adsorption capacity of natural biochar versus chemically altered activated carbons
    Sutar, Shubham
    Jadhav, Jyoti
    BIORESOURCE TECHNOLOGY REPORTS, 2024, 25
  • [33] Easy Recovered Magnetic Bark Biochar for Methylene Blue Removal: Preparation Characterization and Adsorption Parameters Study
    Zeghioud, Hicham
    Mouhamadou, Sali
    CHEMISTRYSELECT, 2023, 8 (42):
  • [34] Magnetic Biochar Obtained by Chemical Coprecipitation and Pyrolysis of Corn Cob Residues: Characterization and Methylene Blue Adsorption
    Guel-Najar, Norma Araceli
    Rios-Hurtado, Jorge Carlos
    Muzquiz-Ramos, Elia Martha
    Davila-Pulido, Gloria I.
    Gonzalez-Ibarra, Adrian A.
    Pat-Espadas, Aurora M.
    MATERIALS, 2023, 16 (08)
  • [35] Kinetics of methylene blue dye adsorption from water using modified fly ash
    Zhang, Shuyue
    Zhu, Qi
    Hui, Yuanfeng
    INTERNATIONAL JOURNAL OF GLOBAL WARMING, 2023, 30 (04) : 413 - 429
  • [36] Maleic Anhydride-Modified Water Hyacinth for Adsorption of Methylene Blue and Methyl Violet
    Shen, Liya
    Xu, Jing
    Wang, Xinru
    Liu, Yuanli
    PROCESSES, 2024, 12 (10)
  • [37] Advanced methylene blue adsorption with a tailored biochar/graphene oxide/magnetite nanocomposite: characterization, optimization, and reusability
    Ashebir, Hailu
    Tibebu, Solomon
    Bedada, Dinaol
    Fito, Jemal
    Kassahun, Estifanos
    Worku, Abebe
    BIOMASS CONVERSION AND BIOREFINERY, 2024,
  • [38] Adsorption of methylene blue using modified adsorbents from drinking water treatment sludge
    Rashed, M. Nageeb
    El Taher, M. A. El-Daim
    Fadlalla, Somaya M. M.
    WATER SCIENCE AND TECHNOLOGY, 2016, 74 (08) : 1885 - 1898
  • [39] Adsorption of methylene blue and Cd(II) onto maleylated modified hydrochar from water
    Li, Bing
    Guo, Jianzhong
    Lv, Kangle
    Fan, Jiajie
    ENVIRONMENTAL POLLUTION, 2019, 254
  • [40] ADSORPTION OF METHYLENE BLUE BY DIFFERENT TYPES OF STRAW BIOCHAR WITH PERFORMANCE COMPARISON
    He, J. W.
    Guo, H. Y.
    APPLIED ECOLOGY AND ENVIRONMENTAL RESEARCH, 2019, 17 (02): : 3949 - 3958