Recent developments in materials used for the removal of metal ions from acid mine drainage

Springer Science and Business Media LLC - Tập 11 - Trang 1-11 - 2021
Tebogo M. Mokgehle1, Nikita T. Tavengwa1
1Department of Chemistry, School of Mathematical and Natural Sciences, University of Venda, Thohoyandou, South Africa

Tóm tắt

Acid mine drainage is the reaction of surface water with sub-surface water located on sulfur bearing rocks, resulting in sulfuric acid. These highly acidic conditions result in leaching of non-biodegradeable heavy metals from rock which then accumulate in flora, posing a significant environmental hazard. Hence, reliable, cost effective remediation techniques are continuously sought after by researchers. A range of materials were examined as adsorbents in the extraction of heavy metal ions from acid mine drainage (AMD). However, these materials generally have moderate to poor adsorption capacities. To address this problem, researchers have recently turned to nano-sized materials to enhance the surface area of the adsorbent when in contact with the heavy metal solution. Lately, there have been developments in studying the surface chemistry of nano-engineered materials during adsorption, which involved alterations in the physical and chemical make-up of nanomaterials. The resultant surface engineered nanomaterials have been proven to show rapid adsorption rates and remarkable adsorption capacities for removal of a wide range of heavy metal contaminants in AMD compared to the unmodified nanomaterials. A brief overview of zeolites as adsorbents and the developent of nanosorbents to modernly applied magnetic sorbents and ion imprinted polymers will be discussed. This work provides researchers with thorough insight into the adsorption mechanism and performance of nanosorbents, and finds common ground between the past, present and future of these versatile materials.

Tài liệu tham khảo

Aubé B, Zinck J, Eng M (2003) Lime treatment of acid mine drainage in Canada. In Brazil-Canada Seminar on Mine Rehabilitation. Brazil-Canada Seminar on Mine Rehabilitation, Florianópolis 1–12 Akinwekomi V, Maree JP, Wolkersdorfer C (2017) Using calcium carbonate/hydroxide and barium carbonate to remove sulphate from mine water. Mine Water Environ 36:264–272 Archary MS, Satpathy KK, Panigrahi S, Mohanty AK, Padhi RK, Biwas S, Prabhu RK, Vijayalakshmi S, Panigrahy RC (2017) Concentration of heavy metals in the food chain components of the nearshore coastal waters of Kalpakkam, southeast coast of India. Food Control 72:232–243 Ashok B, Bhagyashree J, Ameeta RK, Smita Z (2010) Banana peel extract mediated novel route for the synthesis of silver nanoparticles. J Colloid Interface Sci 368:58–63 Badruddoza AZM, Shawon ZBZ, Tay WJD, Hidajat K, Uddin MS (2013) Fe3O4/cyclodextrin polymer nanocomposites for selective heavy metals removal from industrial wastewater. Carbohydr Polym 91:322–332 Bai Y, Liang YN, Hi X (2017) An eco-friendly approach for heavy metal adsorbent regeneration using CO2 responsive molecular octopus. Chemosphere 185:1157–1163 Bakiya LK, Sudha PN (2012) Adsorption of Copper (II) ion onto chitosan/sisal/banana fiber hybrid composite. J Environ Sci Int 3:1–18 Balouch A, Talpur FN, Kumar A, Shah MT, Mahar AM, Amina, (2019) Synthesis of ultrasonic-assisted lead ion imprinted polymer as a selective sorbent for the removal of Pb2+ in a real water sample. Microchem J 146:1160–1168 Barrera K, Briso A, Ide V, Martorana L, Montes G, Basualto C, Bormann T, Valenzuela F (2017) Treatment of acidic mine drainage in an adsorption process using calcium silicate modified with Fe(III). Hydrometallurgy 172:19–29 Buenaño X, Canoira L, Sánchez DM, Costafreda J (2017) Zeolitic tuffs for acid mine drainage (AMD) treatment in Ecuador: breakthrough curves for Mn2+, Cd2+, Cr3+, Zn2+, and Al3+. Environ Sci Pollut Res 24:6794–6806 Beygli RA, Mohaghegh N, Rahimi E (2019) Metal ion adsorption from wastewater by g-C3N4 modified with hydroxyapatite: a case study from Sarcheshmeh acid mine drainage. Res Chem 45:2255–2268 Biswas TK, Yusoff MM, Sarjadi MS, Arshad SE, Musta B, Rahman ML (2019) Synthesis of azobenzene-based ion-imprinted polymers for selective removal of cobalt and copper ions from a mixture of metal ions. Gen Chem 6:1–20 Bitas D, Samanidou V (2020) Chapter 23—Biomedical applications. Handbooks in separation science, liquid-phase extraction, pp 683–723 Bojdi MK, Mohammed B, Najafi M, Bagheri A, Omidi F, Salimi S (2015) Selective and sensitive determination of uranyl ions in complex matrices by ion imprinted polymers-based electrochemical sensor. Electroanalysis 27:2458–2467 Briso A, Quintana G, Ide V, Basualto C, Molina L, Montes G, Valenzuela F (2018) Integrated use of magnetic nanostructured calcium silicate hydrate and magnetic manganese dioxide adsorbents for remediation of an acidic mine water. J Water Process Eng 25:247–257 Castro L, Blázquez ML, González F, Muñoz JA, Ballester A (2018) Heavy metal adsorption using biogenic iron compounds. Hydrometallurgy 179:44–51 Castro RSD, Caetano L, Ferreira G, Padilha PM, Saeki MJ, Zara LF, Martines MAU, Castro GR (2011) Banana peel applied to the solid phase extraction of copper and lead from river water: preconcentration of metal ions with a fruit waste. Ind Eng Chem 50:3446–3451 Chowdhury SR, Yanful EK (2010) Arsenic and chromium removal by mixed magnetite–maghemite nanoparticles and the effect of phosphate on removal. J Environ 91:2238–2247 Christopher FC, Anbalagan S, Kumar PS, Pannerselvam SR, Vaidyanathan VK (2017) Surface adsorption of poisonous Pb (II) ions from water using chitosan functionalised magnetic nanoparticles. IET Nanobiotechnol 11:433–442 Cui Y, Zhao Y, Tian Y, Zhang W, Lü X, Jiang X (2012) The molecular mechanism of action of bactericidal gold nanoparticles on Escherichia coli. Biomaterials 33:2327–2333 Darroudi A, Chamaz M, Arbab Zavar M, Mofrad Z (2020) Application of ion imprinted polymer synthesized as new sorbent for preconcetration and separation of Thallium (I) and its determination by electrothermalatomic adsorption spectroscopy. IJJCE 39:59–66 Dempsey B, Jeon B (2001) Characteristics of sludge produced from passive treatment of mine drainage. Geochem Explor Environ Anal 1:89–94 Dimapilis EAS, Hsu CS, Mendoza RMO, Lu MC (2018) Zinc oxide nanoparticles for water disinfection. Sustain Environ Res 28:47–56 Dlamini CL, De Kock L, Kefeni KK, Mamba BB, Msagati TAM (2019) Polymeric ion exchanger supported ferric oxide nanoparticles as adsorbents for toxic metal ions from aqueous solutions and acid mine drainage. J Environ Health Sci Eng 9:1–12 Ercan G, Uzunoğlu D, Ergüt M, Özer A (2019) Biosynthesis and characterization of iron oxide nanoparticles from Enteromorpha spp. extract: determination of adsorbent properties for copper (II) ions. Int J Res Eng Technol 3:65–74 Etale A, Tutu H, Drake DC (2016) The effect of silica and maghemite nanoparticles on remediation of Cu(II), Mn(II)—and U(VI) contaminated water by Acutodesmus sp. J Appl Phycol 28:251–260 Etale A, Tavengwa N, Tutu H, Drake DC (2017) Synthesis, characterization, and application of functionalized silica–carbon hybrid nanoparticles for the treatment of acidic Cu (II)-contaminated water. Clean-Soil Air Water 45:1–17 Feng G, Ma J, Zhang X, Zhang Q, Xiao Y, Ma Q, Wang S (2019) Magnetic natural composite Fe3O4-chitosan@bentonite for removal of heavy metals from acid mine drainage. J Colloid Interface Sci 538:132–141 Galhardi J, Bonotto DM (2015) Geochemistry of natural radionuclides associated with acid mine drainage (AMD) in a coal mining area in southern Brazil. J Nucl Sci Technol 9:504–511 Gatabi J, Sarrafi Y, Lakouraj MM, Taghavi M (2020) Facile and efficient removal of Pb (II) from aqueous solution by chitosan-lead ion imprinted polymer network. Chemosphere 240:1–7 Ge F, Li MM, Ye H, Zhao BX (2012) Effective removal of heavy metal ions Cd2+, Zn2+, Pb2+, Cu2+ from aqueous solution by polymer-modified magnetic nanoparticles. J Hazard 366:211–212 Ghasemi E, Heydari A, Sillanpää M (2017) Superparamagnetic Fe3O4-EDTA nanoparticles as an efficient adsorbent for simultaneous removal of Ag(I), Hg(II), Mn(II), Zn(II), Pb(II) and Cd(II) from water and soil environmental samples. Microchem J 131:51–56 Gugushe AS, Mpupa A, Nomngongo PN (2019) Ultrasound-assisted magnetic solid phase extraction of lead and thallium in complex environmental samples using magnetic multi-walled carbon nanotubes/zeolite nanocomposites. Microchem J 149:1–8 Gupta B, Kumar N, Panda K, Kanan V, Joshi S, Visoly-Fisher I (2017) Role of oxygen functional groups in reduced graphene oxide for lubrication. Sci Rep 7:1–14 He R, Wang Z, Tan L, Zhong Y, Li W, Xing D, Wei C, Tang Y (2018) Design and fabrication of highly ordered ion imprinted SBA-15 and MCM-41 mesoporous organosilicas for efficient removal of Ni 2+ from different properties of wastewaters. Microporous Mesoporous Mater 257:212–221 Hennion MC (1999) Solid-phase extraction: method development, sorbents, and coupling with liquid chromatography. J Chromatogr A 856:3–54 Hong S, Cannon FS, Hou P, Byrne T, Nieto-Delgado C (2017) Adsorptive removal of sulfate from acid mine drainage by polypyrrole modified activated carbons: effects of polypyrrole deposition protocols and activated carbon source. Chemosphere 184:429–443 Hui KS, Chao CYH, Kot SC (2005) Removal of mixed heavy metal ions in wastewater by zeolite 4A and residual products from recycled coal fly ash. J Hazard Mater 127:89–101 Jafaripour NAR, Ghataora GS (2015) Utilisation of residue gas sludge (BOS sludge) for removal of heavy metals from acid mine drainage (AMD). Int J Miner Process 144:90–96 Jha B, Singh DN (2011) A review on synthesis, characterization and industrial application of flyash zeolites. J Mater Educ 33:65–132 Jha B, Singh DN (2016) Fly ash zeolites: Innovations, applications, and directions. Adv Struct Mater 78:1–211 Jia Q, Ma Y, Peng Y, Liu Y, Zhang W (2018) Selective recognition and separation of luteolin based on the molecular imprinted hollow SnO2 and boronate affinity. Chem Eng 342:293–303 Jia C, Zhao J, Lei L, Kang X, Lu R, Chen C, Li S, Zhao Y, Yang Q, Chen Z (2019) Novel magnetically separable anhydride-functionalized Fe3O4@SiO2@PEI-NTDA nanoparticles as effective adsorbents: synthesis, stability and recyclable adsorption performance for heavy metal ions. RSC Adv 9:9533–9545 Khamirchi R, Hosseini-Bandegharaei A, Alahabadi A, Sivamani S, Rahmani-Sani A, Shahryari T, Anastopoulosf I, Mohammad M, Tran HN (2018) Adsorption property of Br-PADAP-impregnated multiwall carbon nanotubes towards uranium and its performance in the selective separation and determination of uranium in different environmental samples. Ecotoxicol Environ Saf 150:136–143 Karagüzel C, Ören Ö, Şahbaz M, Canıeren Ö, Demir U, Şahbaz O (2020) Prediction of acid mine drainage potential of dump sites by using static tests: an application on lignite mine. Arab J Geosci 13:1–14 Kumar A, Balouch A, Abdullah AA, Pathan AA (2019) Synthesis, adsorption and analytical applicability of Ni-imprinted polymer for selective adsorption of Ni2+ ions from the aqueous environment. Polym Test 77:1–11 Lakovleva E, Sillanpää M (2013) The use of low-cost adsorbents for wastewater purification in mining industries. Environ Sci Pollut Res 20:7878–7899 Le VT, Tran TKN, Tran DL, Le HS, Doan VD, Bui QD, Nguyen HT (2019) One-pot synthesis of a novel magnetic activated carbon/clay composite for removal of heavy metals from aqueous solution. J Disper Sci Technol 40:1–16 Li Y, Fang F, Wu M, Kuang Y, Wu H (2018a) Heavy metal contamination and health risk assessment in soil-rice system near Xinqiao mine in Tongling city, Anhui province, China. Hum Ecol Risk Assess Int J 24:743–753 Li Y, Li M, Zhang J, Xu X (2019) Adsorption properties of the double-imprinted electrospun crosslinked chitosan nanofibers. Chin Chem Lett 30:762–766 Li Z, Wang L, Meng J, Liu X, Xu J, Wang F, Brookes P (2018b) Zeolite-supported nanoscale zero-valent iron: new findings on simultaneous adsorption of Cd(II), Pb(II), and As(III) in aqueous solution and soil. J Hazard 344:1–11 Liu J, Wang H, Li X, Jia W, Zhao Y, Ren S (2017) Recyclable magnetic graphene oxide for rapid and efficient demulsification of crude oil-in-water emulsion. Fuel 189:79–87 Lu H, Qiao X, Wang W, Tan F, Sun F, Xiao Z, Chen J (2015) Effective removal of cadmium ions from aqueous solution using chitosan-stabilized nano zero-valent iron. Desalin Water Treat 56:256–265 Lu J, Qin Y, Zhang Q, Wu Y, Cui J, Li C, Wang L, Yan Y (2018) Multilayered ion-imprinted membranes with high selectivity towards Li+ based on the synergistic effect of 12-crown-4 and polyether sulfone. Appl Surf Sci 427:931–941 Ma J, Sun M, Zeng Y, Liu Z, Zhang M, Xiao Y, Zhang S (2019) Acetylacetone functionalized magnetic carbon microspheres for the highly-efficient adsorption of heavy metal ions from aqueous solutions. RSC Adv 9:3337–3344 Madzivire G, Maleka RM, Tekere M, Petrik LF (2019) Cradle to cradle solution to problematic waste materials from mine and coal power station: acid mine drainage, coal fly ash and carbon dioxide. J Water Process Eng 30:1–8 Mahdi HA, Sregey K, Abbas AK (2017) Catalytic cracking of vacuum gas oil by using the aerosol nanocatalysison new modification catalyst WO3/Si-Zr. J Pet Sci Res Stud 14:67–79 Maia LFO, Hott RC, Ladeira PCC, Batista BL, Andrade TG, Santos MS, Faria MCS, Oliviera LCA, Montiero DS, Pereira MC, Rodrigues JL (2019) Simple synthesis and characterization of l-Cystine functionalized δ-FeOOH for highly efficient Hg(II) removal from contamined water and mining waste. Chemosphere 215:422–431 Masoumi F, Sarabadani P, Khorrami AR (2019) Synthesis, characterization and application of a new nano-structured samarium (III) ion-imprinted polymer. Polym Bull 76:5499–5516 Masukume M, Onyango MS, Maree JP (2017) Performance characteristics of synthetic zeolite F9 in treating high iron and manganese acid mine drainage. EEMJ 16:2255–2265 Méndez-Romero UA, Pérez-García SA, Xu X, Wang E, Licea-Jiménez L (2019) Functionalized reduced graphene oxide with tunable band gap and good-solubility in organic solvents. Carbon 146:491–502 Mirza AU, Kareem A, Nami SAA, Bhat SA, Mohammad A, Nishat N (2019) Malus pumila and Juglen regia plant species mediated zinc oxide nanoparticles: synthesis, spectral characterization, antioxidant and antibacterial studies. Microb Pathog 129:233–241 Mobasherpour I, Salahi E, Pazouki M (2012) Comparative of the removal of Pb+2, Cd+2 and Ni+2 by nano crystallite hydroxyapatite from aqueous solutions: adsorption Isotherm Study. Arab J Chem 5:439–446 Moreira RF, Vandresen S, Luiz DB, José HJ, Puma GL (2017) Adsorption of arsenate, phosphate and humic acids onto acicular goethite nanoparticles recovered from acid mine drainage. JECE 5:652–659 Mokgehle TM, Gitari WM, Tavengwa NT (2019) Synthesis of di-carboxylic acid functionalized zeolites from coal fly ash for Cd (II) removal from acid mine drainage using column studies approach. J Environ Chem Eng 7:1–9 Mohan D, Chander S (2006) Removal and recovery of metal ions from acid mine drainage using lignite—a low cost sorbent. J Hazard Mater 137:1545–1553 Mou Q, Leung PHM (2017) Differential expression of virulence genes in Legionella pneumophila growing in Acanthamoeba and human monocytes. Virulence 9:185–196 Mulopo J, Motaung S (2014) Carbothermal reduction of barium sulfate-rich sludge from acid mine drainage treatment. Mine Water Environ 33:48–53 Nekhunguni PM, Tavengwa NT, Tutu H (2017a) Investigation of As (V) removal from acid mine drainage by iron (hydr) oxide modified zeolite. J Environ Manage 197:550–558 Nekhunguni PM, Tavengwa NT, Tutu H (2017b) Sorption of uranium (VI) onto hydrous ferric oxide-modified zeolite: assessment of the effect of pH, contact time, temperature, selected cations and anions on sorbent interactions. J Environ Manage 204:571–582 Nordstrom DK, Blowes DW, Ptacek CJ (2015) Hydrogeochemistry and microbiology of mine drainage: an update. J Appl Geochem 57:3–16 Nqombolo A, Mpupa A, Gugushe AS, Moutloali RM, Nomngongo PN (2019) Adsorptive removal of lead from acid mine drainage using cobalt-methylimidazolate framework as an adsorbent: kinetics, isotherm, and regeneration. Environ Sci Pollut Res 26:3330–3339 Othman A, Sulaiman A, Sulaiman SK (2017) The use of hydrated lime in acid mine drainage treatment. AIP Conf Proc 1847:1–7 Oyewo OA, Onyango MS, Wolkersdorfer C (2018) Lanthanides removal from mine water using banana peels nanosorbent. Int J Environ Sci Te 15:1265–1274 Pakdel PM, Peighambardous SJ (2018) A review on acrylic based hydrogels and their applications in wastewater treatment. J Environ Manage 217:123–143 Piletsky S, Piletskaya EV, Sergeyeva T, El’Skayai A, Panusyak T (1999) Molecularly imprinted self-assembled films with specificity to cholesterol. Sens Actuators B 60:216–220 Prasad BB, Jauhari D (2015) Double-ion imprinted polymer @magneticnanoparticles modified screen printed carbon electrode for simultaneousanalysis of cerium and gadolinium ions. Anal Chim Acta 875:83–91 Rahimi E, Mohaghegh N (2017) New hybrid nanocomposite of copper terephthalate MOF-graphene oxide: synthesis, characterization and application as adsorbents for toxic metal ion removal from Sungun acid mine drainage. Environ Sci Pollut Res Int 24:22353–22360 Ren Y, Zhang M, Zhao D (2008) Synthesis and properties of magnetic Cu (II) ion imprinted composite adsorbent for selective removal of copper. Desalination 228:135–149 Ren YM, Yang J, Ma WQ, Ma J, Feng J, Liu XL (2014) The selective binding character of a molecular imprinted particle for Bisphenol A from water. Water Res 50:90–100 Rios CA, Williams CD, Roberts CL (2008) Removal of heavy metals from acid mine drainage (AMD) using coal fly ash, natural clinker and synthetic zeolites. J Hazard Mater 156:23–35 Rodríguez C, Tapia C, Leiva-Aravena E, Leiva E (2020) Graphene oxide–ZnO nanocomposites for removal of aluminum and copper ions from acid mine drainage wastewater. Int J Environ Res Public Health 17:1–18 Ryu S, Naidu G, Johir MAH, Choi Y, Jeong S, Vigneswaran S (2019) Acid mine drainage treatment by integrated submerged membrane distillation–sorption system. Chemosphere 218:955–965 Sahu UK, Sahu S, Mahapatra SS, Patel RK (2017) Cigarette soot activated carbon modified with Fe3O4 nanoparticles as an effective adsorbent for As (III) and As (V): material preparation, characterization and adsorption mechanism study. J Mol Liq 243:395–405 Sadani M, Rasolevandi T, Azarpira H, Mahvi AH, Ghaderpoori M, Mohseni SM, Atamaleki A (2020) Arsenic selective adsorption using a nanomagnetic ion imprinted polymer: optimization, equilibrium, and regeneration studies. J Mol Liq 317:1–12 Şarkaya K, Bakhshpour M, Denizli A (2019) Ag+ ions imprinted cryogels for selective removal of silver ions from aqueous solutions. Sep Purif Technol 54:1–13 Shakerian F, Kim KH, Kwon E, Szulejko JE, Kumar P, Dadfarnia S, Shabani HAM (2016) Advanced polymeric materials: synthesis and analytical application of ion imprinted polymers as selective sorbents for solid phase extraction of metal ions. Trends Anal Chem 83:55–69 Shabalala AN, Basitere M (2020) Interactive relationship between cementitious materials and acid mine drainage: their effects on Chromium Cr (VI) removal. Minerals 10:1–17 Shakya M, Rene ER, Nancharaiah YV, Lens PNL (2018) Fungal-based nanotechnology for heavy metal removal. In: Gothandam K, Ranjan S, Dasgupta N, Ramalingam C, Lichtfouse E (eds) Nanotechnology, food security and water treatment. Environmental Chemistry for a Sustainable World, pp 229–253 Sukati BH, De Jager PC, Annandale JG, Tanner PD (2018) The hazardous status of high density sludge from acid mine drainage neutralization. Sustainability 10:1–18 Sun D, Zhu Y, Meng M, Qiao Y, Yan Y, Li C (2017) Fabrication of highly selective ion imprinted macroporous membranes with crown ether for targeted separation of lithium ion. Sep Purif Technol 175:19–26 Taghizadeh M, Hassanpour S (2017) Selective adsorption of Cr (VI) ions from aqueous solutions using a Cr(VI) imprinted polymer supported by magnetic multiwall carbon nanotubes. Polymer 132:1–11 Tian N, Wu J, Wang J, Dai W (2019) Development of a novel core−shell magnetic Fe3O4@CMC@ZIF-8-OH composite with outstanding Rubidium-ion capacity. J Chem Eng Data 64:5716–5724 Turan NG, Ozgonenel O (2013) The design and implementation of adsorptive removal of Cu (II) from leachate using adaptive neural fuzzy interface system. Sci World J 2013:1–9 Vilardi G, Ochando-Pulido JM, Verdone N, Stoller M, Di-Palma L (2018) On the removal of hexavalent chromium by olive stones coated by iron-based nanoparticles: equilibrium study and chromium recovery. J Clean Prod 190:200–210 Vilela D, Parmar J, Zeng Y, Zhao Y, Sánchez S (2016) Graphene-based microbots for toxic heavy metal removal and recovery from water. Nano Lett 16:2860–2866 Wang C, Zhao J, Wang S, Zhang L, Liu N, Zhang B (2019a) Selective capture models and mechanisms of Pb (II) from wastewater using tannic-functionalized nickel-iron oxide nanoparticles. Colloids Surf A Physicochem Eng Asp 570:265–273 Wang L, Li J, Wang J, Guo X, Wang X, Choo J, Chen L (2019b) Green multi-functional monomer based ion imprinted polymers for selective removal of copper ions from aqueous solution. J Colloid Interface Sci 541:376–386 Wongcharee S, Aravinthan V, Erdei L, Sanongraj W (2017) Use of macadamia nut shell residues as magnetic nanosorbents. Int Biodeterior Biodegradation 124:276–287 Xu H, Yuan H, Yu J, Lin S (2019) Study on the competitive adsorption and correlational mechanism for heavy metal ions using the carboxylated magnetic iron oxide nanoparticles (MNPs-COOH) as efficient adsorbents. Appl Surf Sci 473:960–966 Xu H, Shi ZX, Tong YX, Li GR (2018) Porous microrod arrays constructed by carbon-confined NiCo@ NiCoO2 core@ shell nanoparticles as efficient electrocatalysts for oxygen evolution. Adv Mater 30:1–8 Xu L, Huang YA, Zhu QJ, Ye C (2015) Chitosan in molecularly-imprinted polymers: current and future prospects. Int J Mol 16:18328–18347 Yan X, Meng J, Hu X, Feng R, Zhou M (2019) Synthesis of thiol-functionalized mesoporous silica nanoparticles for adsorption of Hg2+ from aqueous solution. J Sol-Gel Sci Techn 89:617–622 Yang L, Hu J, Wu W, Tang J, Ding K, Li J (2016) In situ NH2-functionalized graphene oxide/SiO2 composites to improve Cu(II) removal from ammoniacal solutions. Chem Eng 306:77–85 Yuan G, Tu H, Liu J, Zhao C, Liao J, Yang Y, Yang J, Liu N (2018) A novel ion-imprinted polymer induced by the glycylglycine modified metal-organic framework for the selective removal of Co(II) from aqueous solutions. Chem Eng 333:280–288 Yusof NF, Mehamod FS, Mohd Suah FB (2019) Fabrication and binding characterization of ion imprinted polymers for highly selective Co2+ ions in an aqueous medium. J Environ Chem Eng 7:1–9 Zheng X, Zhang Y, Bian T, Zhang Y, Li Z, Pan J (2020) Oxidized carbon materials cooperative construct ionic imprinted cellulose nanocrystals films for efficient adsorption of Dy(III). Chem Eng 381:1–10 Zhang M, Helleur R, Zhang Y (2015) Ion-imprinted chitosan gel beads for selective adsorption of Ag+ from aqeous solutions. Carbohydr Polym 130:206–212 Zhang X, Wang H, Sun X, Shang H, Di Y, Zhao Z (2019) Preparation and properties of thermo-sensitive surface Pb (II) ion-imprinted polymers. Colloids Surf A Physiol Eng Asp 577:138–146 Zhu G, Cheng G, Wang L, Yu W, Wang P, Fan J (2019) A new ionic liquid surface imprinted polymer for selective solid phase extraction and determination of sulfonamides in environmental samples. J Sep Sci 42:725–735