Facile synthesis and life cycle assessment of Iron oxide-Douglas fir biochar hybrid for anionic dye removal from water

被引:13
|
作者
Samaraweera, Hasara [1 ,2 ,8 ]
Alam, Shah Saud [3 ]
Nawalage, Samadhi [1 ]
Parashar, Dinkar [4 ]
Khan, Afzal Husain [5 ]
Chui, Iwei [6 ]
Perez, Felio [7 ]
Mlsna, Todd [1 ]
机构
[1] Mississippi State Univ, Dept Chem, Starkville, MS 39762 USA
[2] Univ Arkansas, Dept Chem & Biochem, Fayetteville, AR 72701 USA
[3] Univ Kansas, Dept Mech Engn, Lawrence, KS 66047 USA
[4] Indian Inst Technol Madras, Dept Civil Engn, Environm Engn Div, Chennai 600036, Tamil Nadu, India
[5] Jazan Univ, Coll Engn, Civil Engn Dept, Jazan, Saudi Arabia
[6] Mississippi State Univ, Inst Imaging & Analyt Technol, Starkville, MS 39762 USA
[7] Univ Memphis, Integrated Microscopy Ctr, Mat Sci Lab, Memphis, TN 38152 USA
[8] Univ Arkansas, Chem Bldg, Fayetteville, AR 72703 USA
基金
美国农业部; 美国国家科学基金会;
关键词
Bromophenol blue; Magnetic biochar; iron oxide; Adsorption; Life cycle assessment; ACTIVATED CARBON; GRAPHENE OXIDE; EFFICIENT ADSORBENT; AQUEOUS-SOLUTIONS; BROMOPHENOL BLUE; ADSORPTION; NANOPARTICLES; COMPOSITE; GREEN;
D O I
10.1016/j.jwpe.2023.104377
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Development of low-cost and safe IONPs-based biochar hybrids with efficient multiple pollutant removal abilities is critical. In the present study, we studied the potential of an Fe3O4-modified wood-based biochar (FDBC) composite to remove an aqueous anionic dye, bromophenol blue (BPB) via simple magnets. Smaller surface area (1.5 times) and a smaller pore volume (similar to 2 times) of FDBC over the original biochar (DBC) does not impede the BPB uptake by FDBC. The Langmuir monolayer BPB adsorption capacities of FDBC and DBC are 448.0 and 451.0 mg/g (removal percentages, 89.8 % vs. 90.3 %) (adsorbent dose 50 mg, 25 mL of 1000 mg/L BPB concentration, 2 h, pH 5.0). The larger surface area (248 m(2)/g) and abundant nano Fe3O4 (11.0 nm) sites account for FDBC's excellent BPB removal compared to recent IONPs-based adsorbents. At pH 5.0-8.0, the BPB is bound to the FDBC (points of zero charge = 8.2) via H-bonding and pi-pi stacking, as confirmed by pH, desorption, and thermodynamic studies. Compared to NaOH and H2O2, methanol desorbs more BPB from the spent adsorbent at pH 7.0. Moreover, this composite removes even the BPB residuals from real wastewater, becoming an ideal adsorbent for BPB removal. A limited life cycle assessment of FDBC's synthesis revealed a higher impact for global warming (2.38 kg CO(2)eq) per kg of the adsorbent, whereas the lower impacts for ozone depletion, particulate matter emissions, and air quality. The FDBC is more economical because of its green and facile synthesis, excellent dye removal capacity, easy and fast recovery. Efficient multiple dye uptake of FDBC produces large concentration of recovered dyes, which can be possibly reused in various economic applications.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Highly Porous Iron-Zirconium-Zinc Ternary Metal Oxide Scaffold: Facile Synthesis and Efficient Removal of Malachite Green from Water
    Mohanta, Jhilirani
    Kumari, Roshni
    Dey, Banashree
    Dey, Soumen
    JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2021, 66 (01): : 297 - 307
  • [42] Synthesis and Characterization of Porous Magnetite Nanosphere Iron Oxide as a Novel Adsorbent of Anionic Dyes Removal from Aqueous Solution
    El-Desouky, Mohamed G.
    Hassan, Nader
    Shahat, Ahmed
    El-Didamony, Akram
    El-Bindary, Ashraf A.
    BIOINTERFACE RESEARCH IN APPLIED CHEMISTRY, 2021, 11 (05): : 13377 - 13401
  • [43] ArsenXnp:: A hybrid sorbent utilizing nanoparticles of hydrous iron oxide for arsenic removal from drinking water
    Sylvester, P
    Westerhoff, PK
    Badruzzaman, M
    Boyd, O
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2005, 230 : U1609 - U1610
  • [44] Green synthesis of iron oxide nanobiocomposite for the adsorptive removal of heavy metals from the drinking water
    Samejo, Suraya
    Baig, Jameel Ahmed
    Uddin, Siraj
    Kazi, Tasneem Gul
    Afridi, Hassan Imran
    Hol, Aysen
    Ali, Firdous Imran
    Hussain, Sajjad
    Akhtar, Khalil
    Perveen, Saima
    Bhutto, Ashfaque Ali
    MATERIALS CHEMISTRY AND PHYSICS, 2023, 303
  • [45] Facile Synthesis of Cauliflower Leaves Biochar at Low Temperature in the Air Atmosphere for Cu(II) and Pb(II) Removal from Water
    Ge, Qilong
    Tian, Qi
    Moeen, Muhammad
    Wang, Sufang
    MATERIALS, 2020, 13 (14)
  • [46] Facile Synthesis and Life Cycle Assessment of Highly Active Magnetic Sorbent Composite Derived from Mixed Plastic and Biomass Waste for Water Remediation
    Osman, Ahmed I.
    Elgarahy, Ahmed M.
    Mehta, Neha
    Al-Muhtaseb, Ala'A H.
    Al-Fatesh, Ahmed S.
    Rooney, David W.
    ACS Sustainable Chemistry and Engineering, 2022, 10 (37): : 12433 - 12447
  • [47] Facile Synthesis and Life Cycle Assessment of Highly Active Magnetic Sorbent Composite Derived from Mixed Plastic and Biomass Waste for Water Remediation
    Osman, Ahmed I.
    Elgarahy, Ahmed M.
    Mehta, Neha
    Al-Muhtaseb, Ala'a H.
    Al-Fatesh, Ahmed S.
    Rooney, David W.
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2022, : 12433 - 12447
  • [48] Facile synthesis of chitosan/magnesium oxide/polyethylenimine novel composite for the efficient removal of Congo red dye from aqueous media
    Almehizia, Abdulrahman Abdulaziz
    Al-Omar, Mohamed Abdulrahman
    Alrayes, Faris Ibrahim
    Naglah, Ahmed Mohamed
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL ANALYTICAL CHEMISTRY, 2024, 104 (03) : 517 - 530
  • [49] Biosynthesis of iron oxide nanoparticles for the degradation of methylene blue dye, sulfisoxazole antibiotic and removal of bacteria from real water
    Mahlaule-Glory, Louisah M.
    Mapetla, Sabetha
    Makofane, Aubrey
    Mathipa, Morongwa M.
    Hintsho-Mbita, Nomso C.
    HELIYON, 2022, 8 (09)
  • [50] Facile construction of graphene oxide and iron organic frameworks decorated biopolymeric hybrid materials for fluoride uptake from water
    Jeyaseelan, Antonysamy
    Viswanathan, Natrayasamy
    Naushad, Mu.
    SEPARATION AND PURIFICATION TECHNOLOGY, 2024, 350