| Literature DB >> 28788483 |
Babak Samiey1, Chil-Hung Cheng2, Jiangning Wu3.
Abstract
Over the past decades, organic-inorganic hybrid polymers have been applied in different fields, including the adsorption of pollutants from wastewater and solid-state separations. In this review, firstly, these compounds are classified. These compounds are prepared by sol-gel method, self-assembly process (mesopores), assembling of nanobuilding blocks (e.g., layered or core-shell compounds) and as interpenetrating networks and hierarchically structures. Lastly, the adsorption characteristics of heavy metals of these materials, including different kinds of functional groups, selectivity of them for heavy metals, effect of pH and synthesis conditions on adsorption capacity, are studied.Entities:
Keywords: adsorption; heavy metal ion; interpenetrating networks; nanobuilding blocks; organic-inorganic hybrid polymer; self-assembly process; sol-gel method; wastewater treatment
Year: 2014 PMID: 28788483 PMCID: PMC5453072 DOI: 10.3390/ma7020673
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Scheme 1.Schematic superhydrophobic surfaces prepared through the sol-gel derived organic-inorganic hybrid emulsion. Reprinted with permission from [41]. Copyright 2011 Elsevier.
Scheme 2.Description of technologies and products of the sol-gel process [68].
Scheme 3.Organically functionalized trialkoxysilanes, R′Si(OR)3, used as (a) modifier; (b) builder and (c) functionalizer of silica-based network through the sol-gel process. Reproduced with permission from [72]. Copyright 2006 WILEY-VCH Verlag GmbH.
Figure 1.Representation of mesoporous M41S compounds including (a) MCM–41; (b) MCM–48 and (c) MCM–50. Reproduced with permission from [82]. Copyright 1999 WILEY-VCH Verlag GmbH.
Figure 2.Synthesis of mesoporous compounds in the presence of template through (A) liquid-crystal template or (B) cooperative liquid-crystal mechanisms. Reprinted with permission from [91]. Copyright 2002 American Chemical Society.
Figure 3.Different kinds of interactions between inorganic species and surfactant head groups through electrostatic interactions in (a) and (c) basic, (b) acidic and (d) neutral media or via hydrogen bonds between (e) unchared species or (f) ion pairs. Reproduced with permission from [93]. Copyright 2006 WILEY-VCH Verlag GmbH.
Figure 4.Different methods for the synthesis of organic-inorganic hybrid mesoporous silica: 1. Grafting, 2. Co-condensation or in situ grafting and 3. Periodic mesoporous silica. Reproduced wity permissiom from [93]. Copyright 2006 WILEY-VCH Verlag GmbH.
Figure 5.Schematic representation of different kinds of composites produced from interaction of layer compound with polymers: (a) phase separated; (b) intercalated and (c) exfoliated structures. Reprinted with permission from [116]. Copyright 2000 Elsevier.
Figure 6.TEM of polystyrene-coated Fe2O3 particles. The polymer coatings are seen as a shell around the Fe2O3 cores. Reprinted with permission from [122]. Copyright 2003 American Chemical Society.
Figure 7.Hierarchical structure of lobster cuticle. Reproduced with permission from [127]. Copyright 2010 WILEY-VCH Verlag GmbH.
Figure 8.Schematic representation of IPNs (a) without chemical bonds between moieties and (b) dual hybrid network. Reprinted with permission from [99]. Copyright 2003 Elsevier.
Chemicals used for synthesizing adsorbents by sol-gel method, adsorbed heavy metals, maximum adsorption capacity, pH and temperature for adsorption of heavy metals from waters.
| Chemicals (interacting group) | Heavy metal [ | Isotherm | Reference |
|---|---|---|---|
| Pyromellitic acid dianhydride/phenylaminomethyl trimethoxysilane (–COOH) | Pb2+ (7.16 mmol/g, 5, room) | Langmuir | [ |
| Pyromellitic acid dianhydride/phenylaminomethyl trimethoxysilane (–COOH) | Cu2+ (0.28 mmol/g, 4, room) | Langmuir | [ |
| Pb2+ (1.56 mmol/g, 5, room) | Langmuir | ||
| 3-Thiocyanatopropyltriethoxysilane/TEOS (–SH) | Cd2+ (87.7 mg/g, 5, 25) | Langmuir | [ |
| 3-[2-(2-Aminoethylamino)ethylamino]propyl-trimethoxysilane (Cd2+– imprinted hybrid sorbent) (–NH2) | Cd2+ (77.2 mg/g, 6, 25) | Langmuir | [ |
| Cd2+-imprinted mercapto-functionalized silica gel (–SH) | Cd2+ (83.89 mg/g, 6, 27) | Experimental | [ |
| Non-imprinted mercapto-functionalized silica gel (–SH) | Cd2+ (35.91 mg/g, 6, 27) | Experimental | – |
| Fe3+-imprinted cyanato-functionalized silica gel (–C≡N) | Fe3+ (35.6 mg/g, 3, 20) | Experimental | [ |
| 3-Glycidyloxypropyltrimethoxysilane/potassium tert-butoxide/titanium isopropoxide (oxygen atoms of adsorbent) | Pb2+ (181.2 mg/g, 5.5, room) | Langmuir | [ |
| Cu2+ (44.64 mg/g, 5.5, room) | Langmuir | ||
| Cd2+ (35.84 mg/g, 5.5, room) | Langmuir | ||
| Zr(OCH2CH2CH3)4/3-mercapto-1-propanesulfonic acid (–SH) | Pb2+ (0.36 mmol/g, neutral, room) | Experimental | [ |
| Hg2+ (0.87 mmol/g, neutral, room) | Experimental | ||
| Ti(OCH2CH2CH3)4/3-mercapto-1-propanesulfonic acid (–SH) | Pb2+ (1.24 mmol/g, neutral, room) | Experimental | – |
| Hg2+ (1.41 mmol/g, neutral, room) | Experimental | ||
| 7-Amine-4-aza-heptyltrimethoxisilane/TEOS (amine group) | Pb2+ (36.64 mg/g, neutral, room) | Langmuir | [ |
| 10-Amine-4-aza-decyltrimethoxisilane/TEOS (amine group) | Pb2+ (30.27 mg/g, neutral, room) | Langmuir | – |
| 3-Chloropropyltrimethoxysilane/TEOS (nitrogen center of sorbent) | Ni2+ (0.47 mmol/g, 4.5, room) | Langmuir | [ |
| 3-Aminopropyl triethoxysilane/TEOS (–NH2) | Pb2+ (45.45 mg/g, 6, 25) | Langmuir | [ |
| Cu2+ (35.71 mg/g, 6, 25) | Langmuir | – | |
| 3-Chloropropyltrimethoxysilane/TEOS (nitrogen center of sorbent) | Mn2+ (0.35 mmol/g, 4.5, room) | Langmuir | – |
| Amino-terminated dendrimer-like PAMAM polymer/silica gel (amino content 1.91 mmol/g) (–NH– and –NH2) | Cu2+ (78.7 mg/g, ethanolic, 25) | Langmuir | [ |
| 2-Aminoethyl-3-aminopropyltrimethoxysilane/poly(dimethyl siloxane) (–NH/NH2) | Cu2+ (1.2 mmol/g, ethanolic, 25) | Langmuir | [ |
| Ni2+ (0.37 mmol/g, ethanolic, 25) | |||
| Fe3+ (1.3 mmol/g, ethanolic, 25) | |||
| Bis[3-(triethoxysilyl)propyl]disulfide/TEOS (–S–S–) | Cd2+ (26.8 mg/g, 6, 25) | Langmuir | [ |
| Pb2+ (56.7 mg/g, 6, 25) | Langmuir | ||
| Cu2+ (13.3 mg/g, 6, 25) | Langmuir | ||
| Salen(NEt2)2/silica gel (–OH and –N(C2H5)2) | Cu2+ (4.36 mg/g, 11, room) | Langmuir | [ |
| Mn2+ (2.34 mg/g, 11, room) | Langmuir | ||
| Pb2+ (10.06 mg/g, 11, rom) | Langmuir | ||
| Zn2+ (11.3 mg/g, 11, room) | Langmuir | ||
| 2-Acrylamido-2-methylpropanesulfonic acid/silica gel (–OH, –NH– and –SO3H) | Cu2+ ( 0.66 mmol/g, ethanolic, 25) | Langmuir | [ |
| Amino-terminated dendrimer-like polyamidoamine polymer/silica gel (–NH2) | Pd2+ (0.7 mmol/g, neutral, room) | Experimental | [ |
| Pt4+ (0.41 mmol/g, neutral, room) | Experimental | ||
| Au3+ (0.12 mmol/g, neutral, room) | Experimental | ||
| Polyethylene glycol/3-mercaptopropyl trimethoxysilane (–SH) | Cu2+ (0.4 mmol/g, 4, 40) | Langmuir | [ |
| Polyvinilalcohol/3-(2-aminoethylamino)propyl trimethoxysilane (–NH/NH2) | Pb2+ (67.6 mg/g, 5, 30) | Langmuir | [ |
| Activated alumina/3-mercaptopropyl trimethoxysilane (–SH) | As(III) (9.28 mg/g, 7, room) | Experimental | [ |
| N-[3-(trimethoxysilyl)propyl]-ethylenediamine/TEOS (–NH2) | Pt2+ (139 mg/g, 3.05, 25) | Langmuir–Freundlich | [ |
| Cd2+ (79.9 mg/g, 5.7–6.2, 25) | Langmuir | [ | |
| N,N-(dipropylcarbamothioyl)thiophene-2-carboxamide/TEOS (–S–, C=O and amine groups) | Cd2+ (3.89 mg/g, 7, 30) | Langmuir | [ |
| SiNSSH/TEOS (via sulfur or nitrogen atoms of sorbent) | Hg2+ (8.52 mmol/, neutral, 25) | Langmuir | [ |
| Pb2+ (1.90 mmol/g, neutral, 25) | Langmuir | ||
| Cu2+ (1.66 mmol/g, neutral, 25) | Langmuir | ||
| Ni2+ (1.44 mmol/g, neutral, 25) | Langmuir | ||
| Co2+ (1.26 mmol/g, neutral, 25) | Langmuir | ||
| 3-Aminopropyltriethoxysilane/TEOS (–NH2) | Ni2+ (31.29 mg/g, 4.5, 25) | Langmuir | [ |
| Cd2+ (40.73 mg/g, 4.5, 25) | Langmuir | ||
| Pb2+ (96.79 mg/g, 4.5, 25) | Langmuir | ||
| 3-Chloropropyltrimethoxysilane/aniline/TEOS (–NH–) | Co2+ (0.32 mmol/g, 4.5, 25) | Experimental | [ |
| Zn2+ (0.34 mmol/g, 4.5, 25) | Experimental | ||
| Cd2+ (0.12 mmol/g, 4.5, 25) | Experimental |
Scheme 4.The preparation steps of zwitterionic hybrid polymers. Reprinted with permission from [142]. Copyright 2010 Elsevier.
Scheme 5.Silicon and titanium-contained adsorbent. Reprinted with permission from [148]. Copyright 2013 Taylor and Francis.
Figure 9.(a) Scheme of macroporous thiol-titania material with propyl-siloxane linkages and (b) its SEM image. Reproduced with permission from [149]. Copyright 2002 The Royal Society of Chemistry.
Adsorbed heavy metals, maximum adsorption capacity, pH and temperature for adsorption of heavy metals by mesoporous compounds.
| Adsorbent (interacting group) | Heavy metal ( | Isotherm | Reference |
|---|---|---|---|
| SBA-16 modified with n-propyl-salicylaldimine (–NH2) | Cu2+ (58 mg/g, 4, room) | Experimental | [ |
| Co2+ (16 mg/g, 4, room) | Experimental | ||
| SBA-16 modified with n-propyl-salicylaldimine and salicylaldehyde (–N=) | Cu2+ (15.2 mg/g, 4, room) | Experimental | – |
| Co2+ (4.5 mg/g, 4, room) | Experimental | ||
| SiO2 modified with n-propyl-salicylaldimine (–NH2) | Cu2+ (45.2 mg/g, 4, room) | Experimental | – |
| Co2+ (11.2 mg/g, 4, room) | Experimental | ||
| SiO2 modified with n-propyl-salicylaldimine and salicylaldehyde (–N=) | Cu2+ (10.2 mg/g, 4, room) | Experimental | – |
| Co2+ (3.6 mg/g, 4, room) | Experimental | ||
| 3-Aminopropyl-functionalized MCM-41 (ammonium group) | Arsenate (64.4 mg/g, 3–4,room) | Experimental | [ |
| Chromate (52.9 mg/g, 7–8,room) | Experimental | ||
| 3-Aminopropyl-functionalized SBA-1 (ammonium group) | Arsenate (94.2 mg/g, 3–4,room) | Experimental | – |
| Chromate (132.7 mg/g, 7–8,room) | Experimental | ||
| H2N–(CH2)2–NH–(CH2)3–functionalized SBA-15 (–NH2 and –NH–) | Cu2+ (0.83 mmol/g, neutral, 25) | Langmuir | [ |
| 3-Aminopropyl-functionalized SBA–15–N–C–H (–NH2) | Cu2+ (0.39 mmol/g, neutral, 25) | Langmuir | – |
| 3-Aminopropyl-functionalized SBA–15–N–E (–NH2) | Cu2+ (0.35 mmol/g, neutral, 25) | Langmuir | – |
| 3-Aminopropyl-functionalized SBA–15–N–C (–NH2) | Cu2+ (0.24 mmol/g, neutral, 25) | Langmuir | – |
| 3-(2-Aminoethylamino) propyltrimethoxysilane modified ordered mesoporous silica | As(V) (10.3 mg/g, 7, room) | Experimental | [ |
| N-propyl aniline-functionalized MCM-41 (–NH–) | Arsenate (0.85 mmol/g, 4.2, room) | Experimental | [ |
| Hg2+ (0.92 mmol/g, 3.5, room) | Experimental | ||
| Pb2+ (0.78 mmol/g, 5.8, room) | Experimental | ||
| H2N–functionalized SBA-15 (–NH2) | Cu2+ (1.28 mg/g, neutral, room) | Experimental | [ |
| Pb2+ (1.31 mg/g, neutral, room) | Experimental | ||
| Cd2+ (1.35 mg/g, neutral, room) | Experimental | ||
| Imidazole-functionalized SBA-15 (N atoms of imidazole) | Pd2+ (0.091 mmol/g, 4, room) | Experimental | [ |
| Pt2+ (0.091 mmol/g, 4, room) | Experimental | ||
| SBA-15 modified with 3-aminopropyl-triethoxysilane and salicylaldehyde (–N= and –O− groups) | Cu2+ (46 mg/g, 4.8, room) | Experimental | [ |
| Ni2+ (22 mg/g, 4.8, room) | Experimental | ||
| Co2+ (19 mg/g, 4.8, room) | Experimental | ||
| Zn2+ (26 mg/g, 4.8, room) | Experimental | ||
| Amino-functionalized mesoporous silica (–NH2 and –OH) | Ni2+ (2.48 mmol/g, 8.5, 25) | Sips | [ |
| 2-Mercaptopyrimidine-functionalized SBA-15 (N and S atoms) | Cd2+ (0.99 mmol/g, 6, 25) | Experimental | [ |
| 3-Aminopropyl-functionalized MCM-41 (–NH2) | Au3+ (0.4 mmol/g, 2.5, room) | Experimental | [ |
| NH(propyl)-functionalized MCM-41 (–NH–) | Au3+ (0.33 mmol/g, 2.5, room) | Experimental | – |
| N(propyl)2-functionalized MCM-41 (N atom of amine group) | Au3+ (0.2 mmol/g, 2.5, room) | Experimental | – |
| Chemically modified MCM-41 (–NH– and –NH2) | Hg2+ (0.7 mmol/g, 5, 25) | Langmuir | [ |
| 3-Aminopropyl-functionalized MCM-41 (–NH2) | Ag+ (0.62 mmol/g, 5, 22) | Experimental | [ |
| Cu2+ (0.84 mmol/g, 5, 22) | Experimental | ||
| 3-Mercaptopropyl-functionalized MCM-41 (–SH) | Ag+ (0.97 mmol/g, 5, 22) | Experimental | – |
| Cu2+ (0.02 mmol/g, 5, 22) | Experimental | ||
| 3-Mercaptopropyl-functionalized SBA-16 (–SH) | Cu2+ (36.42 mg/g, 5.5, 25) | Langmuir | [ |
| 3-Aminopropyl-modified SBA-15 (–NH2) | Cu2+ (73.5 mg/g, 6.3, 25) | Langmuir | [ |
| SBB or | ReO4− (1.85 mmol/g, 6.4, room) | Experimental | [ |
| 3-Aminopropyl and 3-mercaptopropyl bi-functionalized mesoporous silica (–SH) | Hg2+ (1.51 mmol/g, neutral, room) | Experimental | [ |
| Meso-structured silica modified with 3-mercaptopropyltrimethoxy silane and 9-(chloromethyl)anthracene (–SH) | Pb2+ (13.96 mg/g, neutral, 25) | Experimental | [ |
| Cu2+ (12.56 mg/g, neutral, 25) | Experimental | ||
| Hg2+ (12.09 mg/g, neutral, 25) | Experimental | ||
| Zn2+ (3.69 mg/g, neutral, 25) | Experimental | ||
| 3-Mercaptopropyl-functionalized SBA-15 (–SH) | Hg2+ (2.88 mmol/g, 4.5, 20) | Langmuir | [ |
| Ordered mesoporous silica modified with 2,5-dimercapto-1,3,4-thiadiazole (–SH) | Hg2+ (1.7 g/g, neutral, room) | Experimental | [ |
| 1-Benzoyl-3-propylthiourea-functionalized MCM-41 (=N, =O, –NH– and –NH2 groups) | Hg2+ (1 g/g, neutral, room) | Experimental | [ |
| Disulfide-bridged periodical mesoporous organosilica (–S–S–) | Hg2+ (716 mg/g, 2, room) | Experimental | [ |
| 3-Mercaptopropyl-functionalized MCM-41 (–SH) | Hg2+ (0.59 mmol/g, neutral, room) | Experimental | [ |
| 3-Mercaptopropyl-functionalized HMS (–SH) | Hg2+ (1.5 mmol/g, neutral, room) | Experimental | – |
| Mesoporous thioether-functionalized polyvinylpyrrolidone (PVP)/SiO2 composite (–S–) | Hg2+ (4.26 mmol/g, 2, room) | Experimental | [ |
| Disulfide-functionalized SBA-1 (–SH) | Hg2+ (849 mg/g, 2, room) | Experimental | [ |
| 3-(((5-ethoxybenzenethiol)imino)methyl)-salicylic acid immobilized onto mesoporous silica (–N= and –SH groups) | Pd2+ (164.2 mg/g, 3, room) | Langmuir | [ |
| 3-(3-(Methoxycarbonyl)benzylidene) hydrazinyl)benzoic acid immobilized onto mesoporous silica (C=O and –N=NH–) | Cu2+ (145.98 mg/g, 7, room) | Langmuir | [ |
| 3-(2-Aminoethylamino)propyl-functionalized mesoporous silica (–NH– and –NH2) | Cu2+ (0.107 mmol/g, 3, room) | Experimental | [ |
| 3-Aminopropyl-functionalized MCM-41 (–NH2) | Cd2+ (0.71 mmol/g, 5, 22) | Experimental | [ |
| Ni2+ (0.69 mmol/g, 5, 22) | Experimental | ||
| Diamino-functionalized MCM-41 | Co2+ (0.69 mmol/g, neutral, 25) | Experimental | [ |
| Ni2+ (0.52 mmol/g, neutral, 25) | Experimental | ||
| Diamino-functionalized MCM-48 | Co2+ (1 mmol/g, neutral, 25) | Experimental | – |
| Ni2+ (0.86 mmol/g, neutral, 25) | Experimental | ||
| Aminopropyl grafted SBA-15 modified with EDTA (–NH– and –COO−) | Pb2+ (273.2 mg/g, 5, 25) | Langmuir | [ |
| CONH2-functionalized SBA-15 (CONH2 group) | Cu2+ (1.4 mmol/g, 5, 298) | Langmuir | [ |
Figure 10.Adsorption isotherms of (a) arsenate and (b) chromate on mono-, di- and triamino-functionalized MCM–41 which are shown with N–MCM–41, NN–MCM–41 and NNN–MCM–41, respectively. Reprinted with permission from [169]. Copyright 2002 American Chemical Society.
Figure 11.FTIR spectrum of NH2–MCM–41 with different NH2 loadings. The insert figure displays the peak shift caused by the interaction between the amino and surface silanol groups. Reprinted with permission from [178]. Copyright 2006 American Chemical Society.
Figure 12.Difference between adsorption mechanism of Hg2+ and other metallic ions. Reprinted with permission from [184]. Copyright 2001 Elsevier.
Figure 13.(a) Functional groups of MCM–41BTU and (b) adsorption isotherm for adsorption of Hg2+ on MCM–41 BTU. The initial sharp part of adsorption isotherm is related to adsorption by 3-aminopropyl residuals. Reprinted with permission from [188]. Copyright 2003 Springer Science and Business Media.
Adsorbed heavy metals, maximum adsorption capacity, pH and temperature for adsorption of heavy metals by organic polymer/layered compound hybrids.
| Adsorbent (interacting group) | Heavy metal ( | Isotherm | Reference |
|---|---|---|---|
| Chitosan/cloisite 10 A (protonated –NH2) | Cr(VI) (357.14 mg/g, 3, 35) | Langmuir | [ |
| Chitosan/bentonite (ion exchange property of bentonite and –OH and –NH2 groups of chitosan) | Pb2+ (15 mg/g, 4, 25) | Langmuir | [ |
| Cu2+ (12.6 mg/g, 4, 25) | Langmuir | ||
| Ni2+ (6.1 mg/g, 4, 25) | Langmuir | ||
| Chitosan/perlite (protonated –NH2) | Cr(VI) (153.8 mg/g, 4, 25) | Experimental | [ |
| Chitosan/perlite (–NH2 and –OH) | Cu2+ (196.08 mg/g, 5, room) | Langmuir | [ |
| Ni2+ (114.95 mg/g, 5, room) | Langmuir | ||
| Chitosan/perlite (–NH2) | Cd2+ (178.6 mg/g, 6, 25) | Experimental | [ |
| Chitosan/perlite (–NH2 and –OH) | Cu2+ (1.59 mmol/g, 4.5, 25) | Langmuir | [ |
| Chitosan/clinoptilolite (–NH2) | Cu2+ (11.32 mmol/g, 5, 25) | Langmuir | [ |
| Co2+ (7.94 mmol/g, 5, 25) | Langmuir | ||
| Ni2+ (4.21 mmol/g, 5, 25) | Langmuir | ||
| Chitosan/alumina (protonated amino groups) | Cr(VI) (9.71 mg/g, 4, 40) | Langmuir | [ |
| Chitosan/alumina (protonated –NH2) | Cr(VI) (153.85 mg/g, 4, 25) | Langmuir | [ |
| Chitosan/montmorillonite (protonated –NH2) | Cr(VI) (40.65 mg/g, 4, 35) | Langmuir | [ |
| Chitosan/montmorillonite (protonated –NH2 group of chitosan) | Selenate (18.4 mg/g, 4, room) | Langmuir | [ |
| Chitosan/calcium alginate (–NH2 and –OH) | Ni2+ (222.2 mg/g, 5, room) | Langmuir | [ |
| Cellulose/hydroxyapatite (ion exchange property of hydroxyapatite) | Pb2+ (16.32 mg/g, neutral, 25) | Langmuir | [ |
| Chitosan/bentonite (–NH2) | Cu2+ (9.85 mg/g, 4, 25) | Langmuir | [ |
| Epichlorohydrin-crosslinked chitosan/bentonite (–NH2) | Cu2+ (11.75 mg/g, 4, 25) | Langmuir | – |
| Ethylene glycol diglycidyl ether-crosslinked chitosan/bentonite (–NH2) | Cu2+ (10.52 mg/g, 4, 25) | Langmuir | – |
| Glutaraldehyde-crosslinked chitosan/bentonite (–NH2) | Cu2+ (4.17 mg/g, 4, 25) | Langmuir | – |
| Chitosan- | Pb2+ (809.5 mg/g, 5.5, 35) | Langmuir | [ |
| Chitosan- | Cu2+ (303.03 mg/g, 5.5, 30) | Langmuir | [ |
| Chitosan- | Hg2+ (785.2 mg/g, 5, 30) | Langmuir | [ |
| Poly(methacrylic acid) grafted chitosan/bentonite (–COOH) | U(VI) (117.2 mg/g, 5.5, 30) | Langmuir | [ |
| Poly-methacrylic acid grafted chitosan/bentonite (amino and hydroxyl groups of chitosan) | Hg2+ (125 mg/g, 6, room) | Langmuir | [ |
| Pb2+ (111 mg/g, 6, room) | Langmuir | ||
| Cd2+ (83 mg/g, 6, room) | Langmuir | ||
| Chitosan- | Pb2+ (3.08 mmol/g, neutral, 30) | Langmuir | [ |
| Cd2+ (2.94 mmol/g, neutral, 30) | Langmuir | ||
| Humic acid-immobilized-amine modified polyacrylamide/bentonite (–COOH) | Cu2+ (106.2 mg/g, 5, 30) | Langmuir | [ |
| Zn2+ (96.1 mg/g, 9, 30) | Langmuir | ||
| Co2+ (52.9 mg/g, 8, 30) | Langmuir | ||
| Polyethylenimine800/magnetite-montmorillonite (protonated –NH2) | Cr(VI) (8.77 mg/g, 3, 25) | Langmuir | [ |
| Polyacrylic acid crossliked by N,N′-methylenebisacrylamide/montmorillonite (–CONH– and –COOH) | Ni2+ (270.3 mg/g, neutral, 25) | Langmuir | [ |
| Pb2+ (1666.7 mg/g, neutral, 25) | Langmuir | ||
| Poly[N-(4-vinylbenzyl)-N-methyl-D-glucamine]/montmorillonite (protonated tertiary amine) | As(V) (72.26 mg/g, 6, 30) | Langmuir | [ |
| As(V) (72.99 mg/g, 6, 40) | Langmuir | ||
| As(V) (82.64 mg/g, 6, 50) | Langmuir | ||
| Polyacrylamide/bentonite (–NH2) | Cu2+ (32.81 mg/g, 6.2, 20) | Langmuir | [ |
| Polyacrylamide | Pb2+ (0.16 mmol/g, 4.5–5, room) | Langmuir | [ |
| Phytic acid-modified polyacrylamide | Pb2+ (0.18 mmol/g, 4.5–5, room) | Langmuir | – |
| Polyaniline/attapulgite (–NH– and –N=) | Hg2+ (909.1 mg/g, 6, 25) | Langmuir | [ |
| Polyacrylamide/attapulgite (–NH2) | Hg2+ (192.5 mg/g, 4.4, 30) | Langmuir | [ |
| Polyvinyl alcohol/attapulgite (–OH) | Pb2+ (169.5 mg/g, 5, 30) | Langmuir | [ |
| Acrylamide-2-acrylamido-sodium 2-methylpropane sulfonate copolymer/clay (–SO3−) | Cu2+ (1.07 mmol/g, 4.5, 25) | Experimental | [ |
| Cd2+ (1.28 mmol/g, 4.5, 25) | Experimental | ||
| Pb2+ (1.03 mmol/g, 4.5, 25) | Experimental | ||
| Poly(methoxyethyl)acrylamide/clay (–NH–) | Pb2+ (0.385 mmol/g, 5, 30) | Langmuir | [ |
| 3-Aminopropyltriethoxysilane/sepiolite (–NH2) | Fe2+ (0.44 mmol/g, 3, 25) | Langmuir | [ |
| Cu2+ (0.14 mmol/g, 4, 25) | Langmuir | ||
| Triethoxy-3-(2-imidazolin-1-yl)propylsilane/sepiolite (negatively charged sites of sepiolite and N atoms of imidazolin) | Mn2+ (0.085 mmol/g, 4, 25) | Langmuir | [ |
| Cu2+ (0.13 mmol/g, 4, 25) | Langmuir | ||
| Fe3+ (0.05 mmol/g, 2.5, 25) | Langmuir | ||
| Zn2+ (0.035 mmol/g, 4, 25) | Langmuir | ||
| Co2+ (0.28 mmol/g, 4, 25) | Langmuir | ||
| Cd2+ (0.09 mmol/g, 4, 25) | Langmuir | ||
| Iodine-modified chitosan/bentonite (I2 and I−) | Gas-phase Hg0 at 110 °C | Experimental | [ |
Figure 14.(a) Schematic structure of chitosan and clay hybrid and (b) mechanism of interaction of closite 10 A/chitosan nanocomposite (CCN) with Cr(VI). Reprinted with permission from [199]. Copyright 2011 Elsevier.
Scheme 6.Schematic representation of Fe3O4–PEIx–MMT formation. Reprinted with permission from [220]. Copyright 2012 Elsevier.
Figure 15.TEM images of (a) Fe3O4–PEI800–MMT and (b) Fe3O4–PEI2500–MMT hybrid materials. Reprinted with permission from [220]. Copyright 2012 Elsevier.
Scheme 7.Adsorption isotherms of Pb2+, Ni2+, Cd2+ and Cu2+. Reprinted with permission from [221]. Copyright 2009 Elsevier.
Figure 16.XRD patterns of Bentonite (BENT) and BENT–PAAm. Reprinted with permission from [223]. Copyright 2010 Elsevier.
Adsorbed heavy metals, maximum adsorption capacity, pH and temperature for adsorption of heavy metals by organic-inorganic core/shell and hierarchically structured nanocomposites.
| Adsorbent (interacting group) | Heavy metal ( | Isotherm | Reference |
|---|---|---|---|
| Core/shell nanocomposites
| |||
| SiO2/salicyclic acid functionalized polystyrene (O atom of –COOH and N atom of –N=N–) | Cu2+ (1.29 mmol/g, 5, room) | Langmuir | [ |
| Ag+ (1.85 mmol/g, 5, room) | Langmuir | ||
| Au3+ (1.61 mmol/g, 2.7, room) | Langmuir | ||
| SiO2/amino functionalized polystyrene (–NH2) | Cu2+ (0.17 mmol/g, neutral, room) | Experimental | [ |
| Ag+ (0.47 mmol/g, neutral, room) | Experimental | ||
| Au3+ (0.59 mmol/g, neutral, room) | Experimental | ||
| SiO2/imidazole-functionalized polystyrene (–N=N– and imidazole) | Au3+ (1.7 mmol/g, 2.7, room) | Langmuir | [ |
| SiO2/aniline formaldehyde condensate (–NH2) | Cu2+ (76.33 mg/g, 5.4–5.7, room) | Langmuir | [ |
| SiO2/polyacrylamide (–NH2) | Hg2+ (26.5 mg/g, acidic, 40) | Experimental | [ |
| SiO2/ | Pb2+ (0.19 mmol/g, 5, 27) | Langmuir | [ |
| SiO2/chitosan imprinted by sucrose (amino groups) | Cu2+ (3.2 mg/g, 6, 25) | Langmuir | [ |
| SiO2/chitosan imprinted by polyethylene glycol 4000 (amino groups) | Cu2+ (9.1 mg/g, 6, 25) | Langmuir | – |
| SiO2/chitosan imprinted by sucrose and polyethylene glycol 4000 (amino groups) | Cu2+ (10.5 mg/g, 6, 25) | Langmuir | – |
| SiO2/Cd2+-imprinted chitosan (amino groups) | Cd2+ (1.14 mmol/g, 6, room) | Experimental | [ |
| SiO2/chitosan (amino groups) | Cd2+ (0.58 mmol/g, 6, room) | – | – |
| SiO2/chitosan (–NH2 and –OH) | Cu2+ (0.2 mmol/g, 5.5, 25) | Experimental | [ |
| SiO2/chitosan (amino groups) | Ni2+ (182 mg/g, 7, 25) | Langmuir | [ |
| SiO2(CO2H)/chitosan (amino groups) | Ni2+ (210 mg/g, 7, 25) | Langmuir | – |
| Fe3O4/poly(3,4-ethylenedioxythiophene) (–O–) | Ag+ (27.96 mmol/g, neutral, room) | Experimental | [ |
| Hg2+ (16.02 mmol/g, neutral, room) | Experimental | ||
| Pb2+ (14.99 mmol/g, neutral, room) | Experimental | ||
| γ-Fe2O3/polyrhodanine (oxygen, nitrogen and sulfur atoms of polyrhodanine) | Hg2+ (179 mg/g, 4, 25) | Langmuir | [ |
| Fe3O4 nanoparticle/chitosan (amino groups) | Cu2+ (21.5 mg/g, 5, 27) | Langmuir | [ |
| Fe3O4 nanoparticle/chitosan (amino groups) | Au3+ (59.52 mg/g, 2, 25) | Langmuir | [ |
| Fe3O4 nanoparticle/thiol-functionalized mesoporous microsphere (–SH) | Hg2+ (185.19 mg/g, 5, 20) | Langmuir | [ |
| Pb2+ (114.7 mg/g, 5, 20) | Langmuir | ||
| Chitosan/zerovalent iron nanoparticles (complexation between Fe and Arsenic) | As3+ (94 mg/g, 7, 25) | Langmuir | [ |
| Arsenate (119 mg/g, 7, 25) | Langmuir | ||
| Polystyrene/nano-Fe3O4 (Fe3O4) | Arsenate (139.3 mg/g, 6, 25) | Langmuir | [ |
| Nanosized hydrous MnO2/porous polystyrene cation exchanger resin (–SO3−, –Mn(OH) and –Mn(OH)2 groups) | Cd2+ (1.96 mmol/g, 4.7, 25) | Langmuir | [ |
| Zn2+ (1.67 mmol/g, 4.7, 25) | Langmuir | ||
| Fe3O4/SiO2/poly(1,2-diaminobenzene) (–NH2, –NH– and –N=) | As3+ (84.5 mg/g, 6, 25) | Langmuir | [ |
| Cr3+ (77 mg/g, 5.3, 25) | Langmuir | ||
| Cu2+ (65 mg/g, 6, 25) | Langmuir | ||
| SiO2/Fe3O4/ion-imprinted polymer (–NH –CH2 –CH2 –NH2) | Pb2+ (19.61 mg/g, 7.5, room) | Langmuir | [ |
| SiO2/Fe3O4/non-imprinted polymer (–NH –CH2 –CH2 –NH2) | Pb2+ (6.57 mg/g, 7.5, room) | Experimental | – |
| Polyaniline nanorods on graphene oxide nanosheets (amine group) | Cr(VI) (1149.4 mg/g, 3, 25) | Langmuir | [ |
| Silica/polystyrene (–SH) | Cu2+ (11.33 mg/g, 5, 15) | Langmuir | [ |
| CaCO3-pepsin (CaCO3 and adsorption occurs through formation of PbCO3 and CuCO3) | Pb2+ (1167 mg/g, neutral, room) | Experimental | [ |
| Cu2+ (611 mg/g, neutral, room) | Experimental | ||
| CaCO3-maltose (CaCO3 and adsorption occurs through formation of PbCO3, CuCO3, NiCO3 and CdCO3) | Pb2+ (3242.48 mg/g, 7, 25) | Langmuir | [ |
| Cd2+ (487.8 mg/g, 7, 25) | Langmuir | ||
| Cu2+ (628.93 mg/g, 7, 25) | Langmuir | ||
| Ni2+ (769.23 mg/g, 7, 25) | Langmuir | ||
Scheme 8.Structures of (a) SG–PS–NH2 and (b) SG–PS–azo–SA. Reprinted with permission from [233]. Copyright 2010 Springer Science and Business Media.
Figure 17.XRD patterns of (a) pure chitosan and (b) chitosan in non-supported hybrid material. Reprinted with permission from [239]. Copyright 2007 Elsevier.
Scheme 9.Synthesis steps of Fe3O4–PEDOT nanoparticles by seeded polymerization mediated with acidic etching. Reproduced with permission from [243]. Copyright 2007 The Royal Society of Chemistry.
Scheme 10.Schematic structures of (a) FSP (Reprinted with Permission from [251]. Copyright 2012 Elsevier) and (b) template in Fe3O4@SiO2@IIP (Reprinted with permission from [252]. Copyright 2011 Elsevier).
Figure 18.Mechanism of formation of polyaniline (PANI) nanorods on the surface of graphene oxide (GO) (PANI/GO) hierarchical nanocomposites. Reproduced with permission from [253]. Copyright 2013 The Royal Society of Chemistry.
Figure 19.Schematic illustration of preparing thiol-functionalized membranes using electrospun nanofibrous mats as the skeleton. Reproduced with permission from [254]. Copyright 2012 The Royal Society of Chemistry.
Figure 20.Mechanism of the formation of hierarchical structures of CaCO3–pepsin from amorpuus precursors. Reprinted with permission from [255]. Copyright 2012 Elsevier.