Innovative iron-manganese modified microalgae biochar for efficient phosphate iron removal from water: Preparation and adsorption mechanisms

被引:3
|
作者
Fu, Caixia [1 ]
Zhou, Manhuan [1 ,3 ]
Song, Wei [4 ]
Yang, Gaixiu [1 ]
Feng, Pingzhong [1 ]
Chulalaksananukul, Warawut [5 ]
Zhu, Shunni [1 ]
Huang, Kai [2 ]
Wang, Zhongming [1 ]
机构
[1] Chinese Acad Sci, Guangzhou Inst Energy Convers, Guangzhou 510640, Peoples R China
[2] Guangxi Acad Sci, Inst Ecoenvironm Res, Guangxi Key Lab Biorefinery, Natl Key Lab Non Food Biomass Energy Technol, 98 Daling Rd, Nanning 530007, Peoples R China
[3] Univ Sci & Technol China, Sch Energy Sci & Engn, Hefei 230026, Peoples R China
[4] Guangdong Univ Technol, Sch Civil & Transportat Engn, Guangzhou 510006, Peoples R China
[5] Chulalongkorn Univ, Fac Sci, Dept Bot, Bangkok 10330, Thailand
基金
中国博士后科学基金;
关键词
Microalgae biochar; Phosphate; Adsorption; Water treatment; Sustainable materials; AQUEOUS-SOLUTION; POROUS BIOCHAR; WASTE-WATER; PHOSPHORUS; RECOVERY; OPTIMIZATION; EQUILIBRIUM; PERFORMANCE; COMPOSITES; PYROLYSIS;
D O I
10.1016/j.jwpe.2024.106051
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study developed a novel FeMn composite biochar (FMBC) with the pyrolysis raw resource of Chlorella, applying for phosphates removal from the aqueous. Under optimal conditions, the FMBC prepared from microalgae achieved a phosphate removal rate of approximately 91.6 % (adsorption capacity: 23.23 mg/g) within 120 min, demonstrating superior adsorption performance compared to the pristine biochar. Response Surface Methodology (RSM) was applied for FMBC preparation optimization. To improve the metal loading capacity of biochar, Ethylene Diamine Tetraacetic Acid (EDTA) was used as a chelating agent during the preparation process. The optimum preparation conditions for FMBC were Fe/biomass(w/w) ratio of 1.25, Mn/biomass(w/w) ratio of 1.10, pyrolysis time of 120 min, and pyrolysis temperature of 650 degrees C, which presented a large specific surface area (14.681 m(2)/g), pore volume (0.036 cm(3)/g) with the rich oxygen-containing functional groups. Phosphorus removal kinetic and isotherm process were better described by pseudo-second-order model and the Dubinin-Radushkevinch (D-R) isotherm. In addition, the optimal adsorption conditions for FMBC were as follows: biochar dosage of 0.1 g, initial pH of 7.0, adsorption temperature of 25 degrees C, and initial phosphate concentration of 50 mg/L. Physical adsorption, surface complexation, precipitation, electrostatic attractions, and ion exchange were responsible for phosphate adsorption process by FMBC. The main innovation of this study is the use of explosive growth algae to prepare metal-modified biochar for phosphorus removal from water bodies, to realize the goals of resource utilization of waste biomass and eutrophication control in water, which are significant for sustainable development.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Application of Iron and Sulfate-Modified Biochar in Phosphorus Removal from Water
    Sang Q.-Q.
    Wang F.-J.
    Zhao Y.-T.
    Zhou Q.
    Cai Y.-Q.
    Deng Y.
    Tian W.-Q.
    Chen Y.-Z.
    Ma J.
    Huanjing Kexue/Environmental Science, 2021, 42 (05): : 2313 - 2323
  • [32] Iron and manganese removal from drinking water
    Pascu, Daniela-Elena
    Neagu , Mihaela
    Traistaru, Gina Alina
    Nechifor, Aurelia Cristina
    Miron, Alexandra Raluca
    JOURNAL OF ELECTROCHEMICAL SCIENCE AND ENGINEERING, 2016, 6 (01): : 47 - 55
  • [33] Preparation of organic potassium salts modified microalgae biochar and its high-efficient removal of tetracycline hydrochloride from water: Activation mechanism and adsorption mechanism
    Xian, Bo
    Tang, Wei
    Xiang, Dongfang
    Rao, Chenyang
    Liu, Xiaying
    Fang, Fang
    Chu, Fuhao
    Fang, Tao
    JOURNAL OF WATER PROCESS ENGINEERING, 2024, 67
  • [34] Modified Zero Valent Iron (ZVI) Nanoparticles for removal of Manganese from water
    Agarwal, M.
    Patel, D.
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH, 2015, 9 (03) : 1055 - 1068
  • [35] Removal of manganese and iron ions from artesian water using modified clinoptilolite
    Polyakov, V.E.
    Polyakova, I.G.
    Tarasevich, Yu.I.
    Khimiya i Tekhnologiya Vody, 1997, 19 (05): : 494 - 505
  • [36] Thermodynamic Study of Phosphate Adsorption and Removal from Water Using Iron Oxyhydroxides
    Kalaitzidou, Kyriaki
    Zouboulis, Anastasios
    Mitrakas, Manassis
    WATER, 2022, 14 (07)
  • [37] Phosphate adsorption performance and mechanisms by nanoporous biochar-iron oxides from aqueous solutions
    Zhang, Zhaoran
    Yu, Haiqin
    Zhu, Rixin
    Zhan, Xue
    Yan, Liangguo
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2020, 27 (22) : 28132 - 28145
  • [38] In situ iron-manganese removal by the oxygenized water injection at the river bank filtration site
    Lee, Myeong-Jae
    Park, Joon-Hyung
    Kim, Gyoo-Bum
    JOURNAL OF THE GEOLOGICAL SOCIETY OF KOREA, 2012, 48 (06) : 503 - 519
  • [39] Characterization and mechanism of lanthanum-modified biochar for efficient phosphate removal from water
    Cheng F.
    Zhang Z.
    Hu W.
    Ran Y.
    Wang W.
    Li A.
    Lu Z.
    Zhao C.
    Pan J.
    Nongye Gongcheng Xuebao/Transactions of the Chinese Society of Agricultural Engineering, 2024, 40 (04): : 235 - 244
  • [40] Preparation of a modified adsorbent based on clinoptilolite and its application for the removal of iron and manganese ions from artesian water
    Tarasevich, YI
    NATURAL MICROPOROUS MATERIALS IN ENVIRONMENTAL TECHNOLOGY, 1999, 362 : 381 - 386