Functionalization of waste biomass-derived biochar for sequestration of toxic inorganic pollutants from aqueous media

Hee Gon Kim 2022년
논문상세정보
' Functionalization of waste biomass-derived biochar for sequestration of toxic inorganic pollutants from aqueous media' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • Adsorption
  • Carbon adsorbent
  • Climate change
  • Industrial development
  • Water pollution
  • bio-char
  • heavy metal
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
1,200 0

0.0%

' Functionalization of waste biomass-derived biochar for sequestration of toxic inorganic pollutants from aqueous media' 의 참고문헌

  • [9] Y. Guida, K. Pozo, G.O. de Carvalho, R. Capella, A.C. Targino, J.P.M. Torres, R.O. Meire, Occurrence of pyrethroids in the atmosphere of urban areas of Southeastern Brazil: Inhalation exposure and health risk assessment, Environ. Pollut. 290 (2021).
  • [98] S.Y. Lee, K.W. Jung, J.W. Choi, Y.J. Lee, In situ synthesis of hierarchical cobalt-aluminum layered double hydroxide on boehmite surface for efficient removal of arsenate from aqueous solutions: Effects of solution chemistry factors and sorption mechanism, Chem. Eng. J. 368 (2019) 914–923.
    [2019]
  • [93] L. Luo, S. Cheng, L. Yue, Z. You, J. Cai, N-doped biochar from chitosan gel-like solution: Effect of hydrothermal temperature and superior aqueous Cr (VI) removal performance, Colloids Surfaces A Physicochem. Eng. Asp. 641 (2022) 128426.
  • [91] F. Chen, S. Guo, Y. Wang, L. Ma, B. Li, Z. Song, L. Huang, W. Zhang, Concurrent adsorption and reduction of chromium(VI) to chromium(III) using nitrogen-doped porous carbon adsorbent derived from loofah sponge, Front. Environ. Sci. Eng. 16 (2022) 1–11.
  • [90] S. Jiang, L. Yan, R. Wang, G. Li, P. Rao.e pyrolysis for enhanced lead(II) removal, Chemosphere 286 (2022) 131666.
  • [8] L. Woelders, J.T.M. Lenaerts, K. Hagemans, K. Akkerman, T.B. Van Hoof, W.Z. Hoek, Recent climate warming drives ecological change in a remote high-Arctic lake, Sci. Rep. 8 (2018) 1–8.
    [2018]
  • [88] J. Liu, S. Ren, J. Cao, D.C.W. Tsang, J. Beiyuan, Y. Peng, F. Fang, J. She, M. Yin, N. Shen, J. Wang, Highly efficient removal of thallium in wastewater by MnFe2O4-biochar composite, J. Hazard. Mater. 401 (2021) 123311.
  • [80] Q. Wu, Y. Xian, Z. He, Q. Zhang, J. Wu, G. Yang, X. Zhang, H. Qi, J. Ma, Y. Xiao, L. Long, Adsorption characteristics of Pb(II) using biochar derived from spent mushroom substrate, Sci. Rep. 9 (2019) 1–11.
    [2019]
  • [75] Y. Cheng, B. Wang, J. Shen, P. Yan, J. Kang, W. Wang, L. Bi, X. Zhu, Y. Li, S. Wang, L. Shen, Z. Chen, Preparation of novel N-doped biochar and its high adsorption capacity for atrazine based on π–π electron donor-acceptor interaction, J. Hazard. Mater. 432 (2022) 128757.
  • [74] X. Meng, R. Hu, Nitrogen/phosphorus enriched biochar with enhanced porosity activated by guanidine phosphate for efficient passivation of Pb(II), Cu(II) and Cd(II), J. Mol. Liq. 323 (2021) 115071.
  • [73] A.M. Bakry, F.S. Awad, J.A. Bobb, M.S. El-Shall, Multifunctional Binding Sites on Nitrogen- Doped Carboxylated Porous Carbon for Highly Efficient Adsorption of Pb(II), Hg(II), and Cr(VI) Ions, ACS Omega. 5 (2020) 33090–33100.
  • [71] J. Pan, H. Deng, Z. Du, K. Tian, J. Zhang, Design of nitrogen-phosphorus-doped biochar and its lead adsorption performance, Environ. Sci. Pollut. Res. 29 (2022) 28984–28994.
  • [70] Y. Liu, Y. Chen, Y. Li, L. Chen, H. Jiang, H. Li, X. Luo, P. Tang, H. Yan, M. Zhao, Y. Yuan, S. Hou, Fabrication, application, and mechanism of metal and heteroatom co-doped biochar composites (MHBCs) for the removal of contaminants in water: A review, J. Hazard. Mater. 431 (2022) 128584.
  • [6] U. Surendran, P. Raja, M. Jayakumar, S.R. Subramoniam, Use of efficient water saving techniques for production of rice in India under climate change scenario: A critical review, J. Clean. Prod. 309 (2021) 127272.
  • [68] J.F. Chin, Z.W. Heng, H.C. Teoh, W.C. Chong, Y.L. Pang, Recent development of magnetic biochar crosslinked chitosan on heavy metal removal from wastewater – Modification, application and mechanism, Chemosphere 291 (2022).
  • [67] F. Yang, Q. Du, L. Sui, K. Cheng, One-step fabrication of artificial humic acid-functionalized colloid-like magnetic biochar for rapid heavy metal removal, Bioresour. Technol. 328 (2021) 124825.
  • [66] P. Maneechakr, S. Mongkollertlop, Investigation on adsorption behaviors of heavy metal ions (Cd2+, Cr3+, Hg2+and Pb2+) through low-cost/active manganese dioxide-modified magnetic biochar derived from palm kernel cake residue, J. Environ. Chem. Eng. 8 (2020) 104467.
    [2020]
  • [64] W. Liao, X. Zhang, S. Ke, J. Shao, H. Yang, S. Zhang, Industrial Crops & Products Effect of different biomass species and pyrolysis temperatures on heavy metal adsorption , stability and economy of biochar, Ind. Crop. Prod. 186 (2022) 115238.
  • [63] E. Singh, A. Kumar, R. Mishra, S. You, L. Singh, S. Kumar, R. Kumar, Pyrolysis of waste biomass and plastics for production of biochar and its use for removal of heavy metals from aqueous solution, Bioresour. Technol. 320 (2021) 124278.
  • [62] S.K. Das, G.K. Ghosh, R. Avasthe, Conversion of crop, weed and tree biomass into biochar for heavy metal removal and wastewater treatment, Biomass Convers. Biorefinery. (2021).
  • [61] H. Zhang, F. Xu, J. Xue, S. Chen, J. Wang, Y. Yang, Enhanced removal of heavy metal ions from aqueous solution using manganese dioxide-loaded biochar: Behavior and mechanism, Sci. Rep. 10 (2020) 1–13.
    [2020]
  • [5] R. Shrestha, S. Ban, S. Devkota, S. Sharma, R. Joshi, A.P. Tiwari, H.Y. Kim, M.K. Joshi, Technological trends in heavy metals removal from industrial wastewater: A review, J. Environ. Chem. Eng. 9 (2021) 105688.
  • [58] H.S. Lee, H.S. Shin, Competitive adsorption of heavy metals onto modified biochars: Comparison of biochar properties and modification methods, J. Environ. Manage. 299 (2021) 113651.
  • [57] Y.H. Zhu, Q. Zhang, G.T. Sun, C.Z. Chen, M.Q. Zhu, X.H. Huang, The synthesis of tanninbased graphene aerogel by hydrothermal treatment for removal of heavy metal ions, Ind. Crops Prod. 176 (2022) 114304.
  • [56] G. Rajivgandhi, V. RTV, R. Nandhakumar, S. Murugan, N.S. Alharbi, S. Kadaikunnan, J.M. Khaled, K.F. Alanzi, W.J. Li, Adsorption of nickel ions from electroplating effluent by graphene oxide and reduced graphene oxide, Environ. Res. 199 (2021) 111322.
  • [55] H.A. Abubshait, A.A. Farag, M.A. El-Raouf, N.A. Negm, E.A. Mohamed, Graphene oxide modified thiosemicarbazide nanocomposite as an effective eliminator for heavy metal ions, J. Mol. Liq. 327 (2021) 114790.
  • [54] Y. Zhang, L. Wu, H. Deng, N. Qiao, D. Zhang, H. Lin, Y. Chen, Modified graphene oxide composite aerogels for enhanced adsorption behavior to heavy metal ions, J. Environ. Chem. Eng. 9 (2021) 106008.
  • [53] L.M. Huong, D.B. Thinh, T.H. Tu, N.M. Dat, T.T. Hong, P.T.N. Cam, D.N. Trinh, H.M. Nam, M.T. Phong, N.H. Hieu, Ice segregation induced self-assembly of graphene oxide into graphene-based aerogel for enhanced adsorption of heavy metal ions and phenolic compounds in aqueous media, Surfaces and Interfaces. 26 (2021) 101309.
  • [52] H.I. Syeda, P.S. Yap, A review on three-dimensional cellulose-based aerogels for the removal of heavy metals from water, Sci. Total Environ. 807 (2022) 150606.
  • [51] J. Kaur, P. Sengupta, S. Mukhopadhyay, Critical Review of Bioadsorption on Modified Cellulose and Removal of Divalent Heavy Metals (Cd, Pb, and Cu), Ind. Eng. Chem. Res. 61 (2022) 1921–1954.
  • [50] S.C. Yang, Y. Liao, K.G. Karthikeyan, X.J. Pan, Mesoporous cellulose-chitosan composite hydrogel fabricated via the co-dissolution-regeneration process as biosorbent of heavy metals, Environ. Pollut. 286 (2021) 117324.
  • [49] L. Gong, H. Wu, X. Shan, Z. Li, Facile fabrication of phosphorylated alkali lignin microparticles for efficient adsorption of antibiotics and heavy metal ions in water, J. Environ. Chem. Eng. 9 (2021) 106574.
  • [48] B.G. Fouda-Mbanga, E. Prabakaran, K. Pillay, Carbohydrate biopolymers, lignin based adsorbents for removal of heavy metals (Cd2+, Pb2+, Zn2+) from wastewater, regeneration and reuse for spent adsorbents including latent fingerprint detection: A review, Biotechnol. Reports. 30 (2021) e00609.
  • [47] P. Wei, H. Lou, X. Xu, W. Xu, H. Yang, W. Zhang, Y. Zhang, Preparation of PP non-woven fabric with good heavy metal adsorption performance via plasma modification and graft polymerization, Appl. Surf. Sci. 539 (2021) 148195.
  • [45] C. Zheng, Q. Wu, X. Hu, Y. Wang, Y. Chen, S. Zhang, H. Zheng, Adsorption behavior of heavy metal ions on a polymer-immobilized amphoteric biosorbent: Surface interaction assessment, J. Hazard. Mater. 403 (2021) 123801.
  • [42] C. Wang, C. Xiong, Y. He, C. Yang, X. Li, J. Zheng, S. Wang, Facile preparation of magnetic Zr-MOF for adsorption of Pb(II) and Cr(VI) from water: Adsorption characteristics and mechanisms, Chem. Eng. J. 415 (2021) 128923.
  • [41] E.S. Behbahani, K. Dashtian, M. Ghaedi, Fe3O4-FeMoS4: Promise magnetite LDH-based adsorbent for simultaneous removal of Pb (II), Cd (II), and Cu (II) heavy metal ions, J. Hazard. Mater. 410 (2021) 124560.
  • [40] F. Ahmadijokani, S. Tajahmadi, A. Bahi, H. Molavi, M. Rezakazemi, F. Ko, T.M. Aminabhavi, M. Arjmand, Ethylenediamine-functionalized Zr-based MOF for efficient removal of heavy metal ions from water, Chemosphere 264 (2021) 128466.
  • [39] Q. Kong, X. Shi, W. Ma, F. Zhang, T. Yu, F. Zhao, D. Zhao, C. Wei, Strategies to improve the adsorption properties of graphene-based adsorbent towards heavy metal ions and their compound pollutants: A review, J. Hazard. Mater. 415 (2021) 125690.
  • [35] F. Zhu, Y.M. Zheng, B.G. Zhang, Y.R. Dai, A critical review on the electrospun nanofibrous membranes for the adsorption of heavy metals in water treatment, J. Hazard. Mater. 401 (2021) 123608.
  • [33] J. Yuan, W.S. Hung, H. Zhu, K. Guan, Y. Ji, Y. Mao, G. Liu, K.R. Lee, W. Jin, Fabrication of ZIF-300 membrane and its application for efficient removal of heavy metal ions from wastewater, J. Memb. Sci. 572 (2019) 20–27.
    [2019]
  • [30] H. Peng, J. Guo, Removal of chromium from wastewater by membrane filtration, chemical precipitation, ion exchange, adsorption electrocoagulation, electrochemical reduction, electrodialysis, electrodeionization, photocatalysis and nanotechnology: a review, Environ. Chem. Lett. 18 (2020) 2055–2068.
  • [29] Z. Xu, Q. Zhang, X. Li, X. Huang, A critical review on chemical analysis of heavy metal complexes in water/wastewater and the mechanism of treatment methods, Chem. Eng. J. 429 (2022) 131688.
  • [28] S.F. Ahmed, M. Mofijur, S. Nuzhat, A.T. Chowdhury, N. Rafa, M.A. Uddin, A. Inayat, T.M.I. Mahlia, H.C. Ong, W.Y. Chia, P.L. Show, Recent developments in physical, biological, chemical, and hybrid treatment techniques for removing emerging contaminants from wastewater, J. Hazard. Mater. 416 (2021) 125912.
  • [24] A.E. Burakov, E. V. Galunin, I. V. Burakova, A.E. Kucherova, S. Agarwal, A.G. Tkachev, V.K. Gupta, Adsorption of heavy metals on conventional and nanostructured materials for wastewater treatment purposes: A review, Ecotoxicol. Environ. Saf. 148 (2018) 702–712.
  • [23] Q. Aemig, A. Hélias, D. Patureau, Impact assessment of a large panel of organic and inorganic micropollutants released by wastewater treatment plants at the scale of France, Water Res. 188 (2021) 116524.
  • [22] T.G. Ambaye, M. Vaccari, E.D. van Hullebusch, A. Amrane, S. Rtimi, Mechanisms and adsorption capacities of biochar for the removal of organic and inorganic pollutants from industrial wastewater, Int. J. Environ. Sci. Technol. 18 (2021) 3273–3294.
  • [21] J. Zeng, P. Qi, Y. Wang, Y. Liu, K. Sui, Electrostatic assembly construction of polysaccharide functionalized hybrid membrane for enhanced antimony removal, J. Hazard. Mater. 410 (2021) 124633.
  • [18] X. Feng, R. Long, L. Wang, C. Liu, Z. Bai, X. Liu, A review on heavy metal ions adsorption from water by layered double hydroxide and its composites, Sep. Purif. Technol. 284 (2022) 120099.
  • [17] M. Mao, T. Yan, J. Shen, J. Zhang, D. Zhang, Capacitive removal of heavy metal ions from wastewater via an electro-Adsorption and electro-reaction coupling process, Environ. Sci. Technol. 55 (2021) 3333–3340.
  • [16] W.S. Chai, J.Y. Cheun, P.S. Kumar, M. Mubashir, Z. Majeed, F. Banat, S.H. Ho, P.L. Show, A review on conventional and novel materials towards heavy metal adsorption in wastewater treatment application, J. Clean. Prod. 296 (2021) 126589.
  • [15] S.S. Fiyadh, M.A. AlSaadi, W.Z. Jaafar, M.K. AlOmar, S.S. Fayaed, N.S. Mohd, L.S. Hin, A. El-Shafie, Review on heavy metal adsorption processes by carbon nanotubes, J. Clean. Prod. 230 (2019) 783–793.
  • [14] R.N. Queiroz, P. Prediger, M.G.A. Vieira, Adsorption of polycyclic aromatic hydrocarbons from wastewater using graphene-based nanomaterials synthesized by conventional chemistry and green synthesis: A critical review, J. Hazard. Mater. 422 (2022).
  • [12] H. Guven, O. Eriksson, Z. Wang, I. Ozturk, Life cycle assessment of upgrading options of a preliminary wastewater treatment plant including food waste addition, Water Res. 145 (2018) 518–530.
    [2018]
  • [11] U. Anand, X. Li, K. Sunita, S. Lokhandwala, P. Gautam, S. Suresh, H. Sarma, B. Vellingiri, A. Dey, E. Bontempi, G. Jiang, SARS-CoV-2 and other pathogens in municipal wastewater, landfill leachate, and solid waste: A review about virus surveillance, infectivity, and inactivation, Environ. Res. 203 (2022) 111839.
  • [10] Z. Zhou, X. Ni, Z. Wu, J. Tang, Physiological and transcriptomic analyses reveal the threat of herbicides glufosinate and glyphosate to the scleractinian coral Pocillopora damicornis, Ecotoxicol. Environ. Saf. 229 (2022) 113074.
  • [109] S. Mishra, J. Dwivedi, A. Kumar, N. Sankararamakrishnan, Removal of antimonite (Sb(III)) and antimonate (Sb(v)) using zerovalent iron decorated functionalized carbon nanotubes, RSC Adv. 6 (2016) 95865–95878.
    [2016]
  • [104] Y. Sun, I.K.M. Yu, D.C.W. Tsang, X. Cao, D. Lin, L. Wang, N.J.D. Graham, D.S. Alessi, M. Komárek, Y.S. Ok, Y. Feng, X.D. Li, Multifunctional iron-biochar composites for the removal of potentially toxic elements, inherent cations, and hetero-chloride from hydraulic fracturing wastewater, Environ. Int. 124 (2019) 521–532.
  • [102] T.C. Rubber, W. Dark, Chromium(III), 26 (1992) 79–85.
    [1992]
  • [100] K.Y. Foo, B.H. Hameed, Insights into the modeling of adsorption isotherm systems, Chem. Eng. J. 156 (2010) 2–10.
    [2010]
  • Utilization of biochar produced from invasive plant species to efficiently adsorb Cd ( II ) and Pb ( II )
  • The oxidation state and coordination environment of antimony in silicate glasses
  • Synthesis of high saturation magnetization superparamagnetic Fe3O4 hollow microspheres for swift chromium removal
  • Superior arsenate adsorption and comprehensive investigation of adsorption mechanism on novel Mn-doped La2O2CO3 composites
  • Structural analysis and heavy metal adsorption of N-doped biochar from hydrothermal carbonization of Camellia sinensis waste ,
  • Simultaneous removal of aniline , antimony and chromium by ZVI coupled with H2O2 : Implication for textile wastewater treatment
  • Sequential recovery of gold and copper from bioleached wastewater using ion exchange resins
  • Removal of pesticides from water and wastewater : Chemical , physical and biological treatment approaches
  • Recycling application of waste long-root Eichhornia crassipes in the heavy metal removal using oxidized biochar derived as adsorbents
  • Recent trends of heavy metal removal from water/wastewater by membrane technologies
  • Quantitative antimony speciation in shooting-range soils by EXAFS spectroscopy
  • Qualitative and quantitative characterization of adsorption mechanisms for Cd2+ by silicon-rich biochar
  • Pyrolyzed fabrication of N/P co-doped biochars from ( NH4 ) 3PO4-pretreated coffee shells and appraisement for remedying aqueous Cr ( VI ) contaminants
  • Preparation of sulphate aluminate cement amended bentonite and its use in heavy metal adsorption
  • Preparation of diamine modified mesoporous silica on multi-walled carbon nanotubes for the adsorption of heavy metals in aqueous solution
  • Preparation of bean dreg derived N-doped activated carbon with high adsorption for Cr ( VI )
  • Preparation and application of magnetic biochar in water treatment : A critical review
  • Polycyclic aromatic hydrocarbons extraction and removal from wastewater by carbon nanotubes : A review of the current technologies , challenges and prospects
  • PAN/PVDF chelating membrane for simultaneous removal of heavy metal and organic pollutants from mimic industrial wastewater
  • Novel Fe-Mn binary oxide-biochar as an adsorbent for removing Cd ( II ) from aqueous solutions
  • New trends in removing heavy metals from industrial wastewater
    M.A . Barakat 4 ( [2011]
  • Nanoadsorbents based on conducting polymer nanocomposites with main focus on polyaniline and its derivatives for removal of heavy metal ions/dyes : A review
  • N-doping effectively enhances the adsorption capacity of biochar for heavy metal ions from aqueous solution
  • Mixed heavy metal removal from wastewater by using discarded mushroom-stick biochar : Adsorption properties and mechanisms
  • Investigating the adsorption behavior and the relative distribution of Cd2+ sorption mechanisms on biochars by different feedstock ,
  • Influence of climate change on Antarctic flora
  • Hydrothermal synthesis of hierarchically structured birnessitetype MnO2/biochar composites for the adsorptive removal of Cu ( II ) from aqueous media
  • Hierarchically-structured MnFe2O4 nanospheres for highly sensitive detection of NO2
  • Heavy metal removal from aqueous solutions using engineered magnetic biochars derived from waste marine macro-algal biomass ,
  • Green synthesis of a magnetic β-cyclodextrin polymer for rapid removal of organic micro-pollutants and heavy metals from dyeing wastewater
  • Graphene/δ-MnO2 composite as adsorbent for the removal of nickel ions from wastewater
  • Generalized Gradient Approximatio n Made Simple
  • Facile synthesis of multifunctional bone biochar composites decorated with Fe/Mn oxide micro-nanoparticles : Physicochemical properties , heavy metals sorption behavior and mechanism
  • Environment-enhancing process for algal wastewater treatment , heavy metal control and hydrothermal biofuel production : A critical review
  • Enhanced Transformation of Cr ( VI ) by Heterocyclic-N within Nitrogen-Doped Biochar : Impact of Surface Modulatory Persistent Free Radicals ( PFRs )
  • Effect of pyrolysis condition on the adsorption mechanism of lead , cadmium and copper on tobacco stem biochar
  • Effect of nitric acid pre-oxidation concentration on pore structure and nitrogen/oxygen active decoration sites of ethylenediamine -modified biochar for mercury ( II ) adsorption and the possible mechanism
    B. Li , K. Li 220 ( [2019]
  • Droplets impact on textured surfaces : Mesoscopic simulation of spreading dynamics
    Y. Wang , S. Chen , 327 (159 ? 167 [2015]
  • Different adsorption behaviors and mechanisms of a novel amino-functionalized hydrothermal biochar for hexavalent chromium and pentavalent antimony ,
  • Competitive sorption of As ( V ) and Cr ( VI ) on carbonaceous nanofibers
  • Comparison of the lead and copper adsorption capacities of plant source materials and their biochars ,
  • Characteristics and performance of Cd , Ni , and Pb bio-adsorption using Callinectes sapidus biomass : real wastewater treatment
  • An elastic semi IPN polymer hybrid for enhanced adsorption of heavy metals
  • Amino-Functionalized Porous Nanofibrous Membranes for Simultaneous Removal of Oil and Heavy-Metal Ions from Wastewater
  • Adsorptive potential of cationic Basic Yellow 2 ( BY2 ) dye onto natural untreated clay ( NUC ) from aqueous phase : Mass transfer analysis , kinetic and equilibrium profile
  • Adsorption of As ( V ) and Ni ( II ) by Fe-Biochar composite fabricated by co-pyrolysis of orange peel and red mud ,
  • A review of the applications of organo-functionalized magnetic graphene oxide nanocomposites for heavy metal adsorption
  • A new low-cost polymeric adsorbents with polyamine chelating groups for efficient removal of heavy metal ions from water solutions