Magnetic porous biochar with nanostructure surface derived from penicillin fermentation dregs pyrolysis with K2FeO4 activation: Characterization and application in penicillin adsorption

被引:45
作者
Wang, Qiuju [1 ]
Zhang, Zhao [2 ]
Xu, Guoren [1 ,2 ]
Li, Guibai [1 ]
机构
[1] Harbin Inst Technol, Sch Environm, POB 2602, Harbin 150090, Peoples R China
[2] Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China
关键词
Magnetic biochar; Penicillin fermentation dregs; K2FeO4; activation; Characterization; Penicillin adsorption; REMOVAL; NANOPARTICLES; CARBON; SULFAMETHOXAZOLE; TETRACYCLINE; ADSORBENT; ISOTHERM; SLUDGE;
D O I
10.1016/j.biortech.2021.124818
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Magnetic porous biochars (MCHCl, MCHAc) with nanostructure on surfaces were prepared from penicillin fermentation dregs by pyrolysis with K2FeO4 activation and used in penicillin adsorption. MCHCl and MCHAc had high BET surface areas of 672 and 735 m(2)/g, respectively; mainly be attributed to the activation of K2FeO4 as well as acid pickling. Saturation magnetizations of MCHCl and MCHAc were 75.29 and 42.45 emu/g, respectively; the magnetism was mainly derived from the Fe3O4 and Fe3C in magnetic biochars. MCHCl had nano sticks of 80 nm and MCHAc had petal-like slice of - 30 nm on surfaces. The maximum adsorption capacities of penicillin on MCHCl and MCHAc were 196 and 322 mg/g at 308 K, respectively. The adsorptions of penicillin on MCHCl and MCHAc were consistent with pseudo primary kinetics and the Langmuir adsorption isotherm model, and thermodynamic analysis indicated that the adsorption mechanism included physical and chemical adsorption.
引用
收藏
页数:9
相关论文
共 46 条
  • [1] Guidelines for the use and interpretation of adsorption isotherm models: A review
    Al-Ghouti, Mohammad A.
    Da'ana, Dana A.
    [J]. JOURNAL OF HAZARDOUS MATERIALS, 2020, 393
  • [2] Horizontal antimicrobial resistance transfer drives epidemics of multiple Shigella species
    Baker, Kate S.
    Dallman, Timothy J.
    Field, Nigel
    Childs, Tristan
    Mitchell, Holly
    Day, Martin
    Weill, Francois-Xavier
    Lefevre, Sophie
    Tourdjman, Mathieu
    Hughes, Gwenda
    Jenkins, Claire
    Thomson, Nicholas
    [J]. NATURE COMMUNICATIONS, 2018, 9
  • [3] Experimental investigation, binary modelling and artificial neural network prediction of surfactant adsorption for enhanced oil recovery application
    Belhaj, Ahmed F.
    Elraies, Khaled A.
    Alnarabiji, Mohamad S.
    Kareem, Firas A. Abdul
    Shuhli, Juhairi A.
    Mahmood, Syed M.
    Belhaj, Hadi
    [J]. CHEMICAL ENGINEERING JOURNAL, 2021, 406
  • [4] Attributable deaths and disability-adjusted life-years caused by infections with antibiotic-resistant bacteria in the EU and the European Economic Area in 2015: a population-level modelling analysis
    Cassini, Alessandro
    Hogberg, Liselotte Diaz
    Plachouras, Diamantis
    Quattrocchi, Annalisa
    Hoxha, Ana
    Simonsen, Gunnar Skov
    Colomb-Cotinat, Melanie
    Kretzschmar, Mirjam E.
    Devleesschauwer, Brecht
    Cecchini, Michele
    Ouakrim, Driss Ait
    Oliveira, Tiago Cravo
    Struelens, Marc J.
    Suetens, Carl
    Monnet, Dominique L.
    Strauss, Reinhild
    Mertens, Karl
    Struyf, Thomas
    Catry, Boudewijn
    Latour, Katrien
    Ivanov, Ivan Nikolaev
    Dobreva, Elina Georgieva
    Tambic Andrasevic, Arjana
    Soprek, Silvija
    Budimir, Ana
    Paphitou, Niki
    Zemlickova, Helena
    Olsen, Stefan Schytte
    Sonksen, Ute Wolff
    Martin, Pille
    Ivanova, Marina
    Lyytikainen, Outi
    Jalava, Jari
    Coignard, Bruno
    Eckmanns, Tim
    Abu Sin, Muna
    Haller, Sebastian
    Daikos, George L.
    Gikas, Achilleas
    Tsiodras, Sotirios
    Kontopidou, Flora
    Toth, Akos
    Hajdu, Agnes
    Guolaugsson, Olafur
    Kristinsson, Karl G.
    Murchan, Stephen
    Burns, Karen
    Dsstat, Patrizio Pezzotti
    Gagliotti, Carlo
    Dumpis, Uga
    [J]. LANCET INFECTIOUS DISEASES, 2019, 19 (01) : 56 - 66
  • [5] CDC, 2019, Antibiotic Resistance Threats in the United States, 2013
  • [6] Modeling of Experimental Adsorption Isotherm Data
    Chen, Xunjun
    [J]. INFORMATION, 2015, 6 (01) : 14 - 22
  • [7] Magnetic biochar catalysts from anaerobic digested sludge: Production, application and environment impact
    Chen, Yi-di
    Bai, Shunwen
    Li, Ruixiang
    Su, Guanyong
    Duan, Xiaoguang
    Wang, Shaobin
    Ren, Nan-qi
    Ho, Shih-Hsin
    [J]. ENVIRONMENT INTERNATIONAL, 2019, 126 : 302 - 308
  • [8] Preparation and reactivation of magnetic biochar by molten salt method: Relevant performance for chlorine-containing pesticides abatement
    Dai, Shi-jin
    Zhao, You-cai
    Niu, Dong-jie
    Li, Qiang
    Chen, Yu
    [J]. JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2019, 69 (01) : 58 - 70
  • [9] Insights into the modeling of adsorption isotherm systems
    Foo, K. Y.
    Hameed, B. H.
    [J]. CHEMICAL ENGINEERING JOURNAL, 2010, 156 (01) : 2 - 10
  • [10] Adsorption of methylene blue on kaolinite
    Ghosh, D
    Bhattacharyya, KG
    [J]. APPLIED CLAY SCIENCE, 2002, 20 (06) : 295 - 300