| Literature DB >> 27879786 |
Farnoush Faridbod1, Mohammad Reza Ganjali2, Rassoul Dinarvand3, Parviz Norouzi1, Siavash Riahi4.
Abstract
Ionophore incorporated PVC membrane sensors are well-established analyticaltools routinely used for the selective and direct measurement of a wide variety of differentions in complex biological and environmental samples. Potentiometric sensors have someoutstanding advantages including simple design and operation, wide linear dynamic range,relatively fast response and rational selectivity. The vital component of such plasticizedPVC members is the ionophore involved, defining the selectivity of the electrodes' complexformation. Molecular recognition causes the formation of many different supramolecules.Different types of supramolecules, like calixarenes, cyclodextrins and podands, have beenused as a sensing material in the construction of ion selective sensors. Schiff's bases andcrown ethers, which feature prominently in supramolecular chemistry, can be used assensing materials in the construction of potentiometric ion selective electrodes. Up to now,more than 200 potentiometric membrane sensors for cations and anions based on Schiff's bases and crown ethers have been reported. In this review cation binding and anioncomplexes will be described. Liquid membrane sensors based on Schiff's bases and crownethers will then be discussed.Entities:
Keywords: Crown Ether; Ion Selective Electrode; Potentiometric membrane; Schiff's Base; Sensor; Supramolecule
Year: 2008 PMID: 27879786 PMCID: PMC3663017 DOI: 10.3390/s8031645
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.An example of an UV-Vis. spectrum for complexation study. A: ligand spectrum; B: the complex spectrum; C: metal ion spectrum.
Figure 5.Structure of a podand.
Figure 6.A symmetric tripod ligand.
Figure 7.Structure of a porphyrin.
Figure 8.Structure of a calix[4]arene.
Scheme 1.Schiff's base formation from aldehyde or ketone.
A number of reported potentiometric membrane sensors based on Schiff's bases and their complexes.
| Al+3-1 | bis(5-phenyl azo salicylaldehyde)-2,3-naphthalene diimine (5PHAZOSALNPHN) | 19.3 | 5.0× 10-6-1.0 × 10-2 | Li+,NH4+,Ag+ | |
| Sn2+-1 | 6-(4-nitrophenyl)-2,4-diphenyl-3,5-diazabicyclo-[3.1.0]-hex-2-ene (NDDBH) | 28.8 ± 1.1 | 1.0 ×10-5-1.0 × 10-1 | Tl+, Mn2+, Ba2+,Cs+ | |
| Pb2+-1 | bis(acetylacetone)- | 30.0 ± 0.2 | 1×10-5-1× 10-1 | - | |
| Pb2+-2 | 29.4 | 5.0 × 10-6-0.10 | Zn2+, Fe3+, K+, NH4+ | ||
| Pb2+-3 | 30.3 ± 0.6 | 2.0×10-5-0.10 | Na+, K+, NH4+ | ||
| Pb2+-4 | Schiff base as a neutral carrier | 29.4± 0.5 | 1.0× 10-5-1.0 × 10-1 | Na+, K+, Cu2+ | |
| Pb2+-5 | 29.79 | 1.0× 10-5-1.0 × 10-1 | - | ||
| Pb2+-6 | 29.4 | 1.0×10-6-1.0×10-1 | K+, Ag+ | ||
| Pb2+-7 | 30.0± 0.1 | 8.2 × 10-6-1.0 ×10-1 | Cd2+, Zn2+, Ag+ | ||
| Y3+-1 | A new Schiff's base with sulfur and nitrogen donor atoms (2-({( | 19.2 | 1.0×10-7-1.0×10-2 | Sc3+ | |
| La3+-1 | bis (2-mercaptoanil) diacetyl (BMDA) | 19.7 | 10-5-10-1 and 10-6-10-1 | Ce3+, Gd3+ | |
| La3+-2 | bis(thiophenal)phenylen-1,3-diamine (TPD) | 19.6 | 1.0 ×10-7-1.0 × 10-1 | Sm3+, Ce3+ | |
| Ce3+-1 | 20 | 1.41×10-7- 1.0×10-2 | La3+ | ||
| Gd3+-1 | 19.8 ± 0.3 | 1.0 × 10-1-1.0× 10-5 | Tb3+, Dy3+, Eu3+ | ||
| Gd+3-2 | bis(thiophenal) pyridine-2,6-diamine (BPD) | 19.4 ± 0.4 | 1.0×10-6 -1.0×10-1 | La3+, Mg2+, Hg2+ | |
| Tb+3-1 | 19.8 | 1.0×10-5-1.0 × 10-1 | La3+, Yb3+, Dy3+ | ||
| Dy+3-1 | 20.6±0.2 | 1.0×10-5-1.0 × 10-1 | Ce3+, La3+ | ||
| Dy+3-2 | a new asymmetrical Schiff's base [( | 20.1± 0.8 | 1.0×10-2-1.0×10-6 | Yb3+, Tm3+, Na+ | |
| Ho+3-1 | 19.7 | 10-5-10-2 | Lu3+, Dy3+, Gd3+ | ||
| Lu+3-1 | a new asymmetrically | 20.5 ± 0.4 | 1.0×10-2 -1.0×10-6 | Nd3+, Dy3+, Gd3+ | |
| UO22+-1 | 2,2′- [1,2-ethanediyl bis (nitriloethylidene)]bis(1-naphthalene) | 28.5± 0.8 | 10-1-10-7 | Mg2+, Cu2+ | |
| Cr3+-1 | a new tridentate | 20.2 | 3.0×10-6 -1.0 ×10-1 | Na+, La3+, Pb2+ | |
| Cr3+-2 | 2,3,8,9-tetraphenyl-1,4,7,10-tetraazacyclododeca-1,3,7,9-tetraene (TTCT) | 19.5 | 1.0×10-6 -1.0 ×10-1 | Ag+ | |
| Cr3+-3 | 2-hydroxybenzaldehyde-O,O′-(1,2-dioxetane-1,2-diyl) oxime | 19.6 and 19.2 | 1.5×10-6 − 8.0×10-3 M for PME and 4.0×10-7 − 3.0×10-3 M for CGCE | Ce3+, Cu2+ | |
| Cr3+-4 | 19.9± 0.3 | 1.0× 10-6- 1.0×10-1 | Fe3+, Eu3+, Mg2+ | ||
| Cr3+-5 | Schiff bases, | 19.8 | 8.9× 10-8 -1.0×10-1 | - | |
| Mn2+-1 | 30 | 5.0× 10-6-1.0 × 10-1 | Cd2+, Fe3+, Ni2+ | ||
| Fe3+-1 | 2-[(2-hydroxy-1-propenyl-buta-1,3-dienylimino)-methyl]-4- | 28.5± 0.5 | 3.5× 10-6-4.0 × 10-2 | Fe2+, Cr3+ | |
| Co2+-1 | 5-((4-nitrophenyl)azo)- | 29 | 9.0×10-7-1.0×10-2 | K+, Ag+ | |
| Ni2+-1 | thiophene-derivative Schiff base | 29.5± 1.0 | 5.0×10-6-1.0×10-1 | - | |
| Ni2+-2 | 30 | 1.0× 10-2-2.0× 10-7 | Tl+, Ag+ | ||
| Ni2+-3 | Schiff bases, | 30 and 29 | 6.3×10-6 to 5.0 × 10-1 and 3.2×10-6 to 5.0 × 10-1 | Ag+, Co2+, Hg2+ | |
| Ni2+-4 | 29.9 | 1.0 ×10-1 -5.0 ×10-6 | Na+, K+, Ba2+, Co2+, Ag+, Zn2+ | ||
| Cu2, Ni2+-1 | two Schiff base ligands: | 29 | 1.0×10-6-1.0×10-2 | Cd2+, Fe3+ | |
| Cu2, Ni2+-2 | Electrodes 1 and 2 are based on mixed complexes of Cu(II) and Ni(II) with | 29 | 1.0×10-5-1.0×10-2 | Co2+, Fe3+ | |
| Cu2, Ni2+-3 | 29 and 29 | 10-6-10-1 and 10-5-10-1 | - | ||
| Cu2+-1 | naphthol-derivative Schiff's base | 29± 1 | 5.0×10-6-5.0×10-2 | Na+, Hg2+, Ni2+ | |
| Cu2+-2 | bis-2-thiophenal propanediamine (TPDA) | 29.1 | 1.0×10-1- 6.0×10-8 | Ag+ | |
| Cu2+-3 | new thiophene-derivative Schiffs base | 29.3± 0.7 | 6.0×10-8- 1.0×10-1 | Zn2+, Hg2+ | |
| Cu2+-4 | diphenylisocyanate bis(acetylacetone) ethylenedinnine (DIBAE) | 29.8 | 1.0×10-1 -1.0 ×10-6 | - | |
| Cu2+-5 | 2,2′- [4,4′diphenyl-methanebis-(nitrilomethylidyne)]-bisphenol | 29 | 8.0× 10-6-1.0× 10-1 | Hg2+ | |
| Cu2+-6 | 2,2-[1,2-ethandiyl-bis(nitrilomethylidine)-bis] | 29.2± 0.3, 29.7 ± 0.3 and 28.2 ± 0.3 | 1.0×10-5-1.0 ×10-1 | Ni2+, Co2+, Pb2+ | |
| Cu2+-7 | 29.6 | 10-6 - 10-2 | Cu2+ | ||
| Cu2+-8 | Bis(2-hydroxyacetophenone)-butane-2,3-dihydrazone (BHAB) | 29.6 | 5.0×10-8-1.0×10-2 | - | |
| Cu2+-9 | Copper (II) complex of 2,4-dimethyl-1,5,9,12-tetraazacyclopentadeca-1,4-diene | 29.9 | 1.1×10-6 -1.0×10-1 | Co2+, Mn2+, Ni2+ | |
| Cu2+-10 | 2-(1′-(4′-(1″-hydroxy-2′-naphthyl)-methyleneamino)butyI imino-methyl)-1-naphthol (BHNB) as a novel Schiff base | 29 | 10-6-10-1 | Tl+ | |
| Cu2+-11 | Schiff Base complexes, derived from 2,3-diaminopyridine and omicron-vanilin | 29.6 | 5.0×10-6 to 1.0×10-1 | Hg2+, Ag+ | |
| Cu2+-12 (micro) | a symmetrical hexadentate Schiffs base 2-{1-( | 25.9 ± 0.3 | 1.0×10-11-1.0×10-5 | Ni2+, Pb2+, Cd2+ | |
| Cu2+-13 | copper(II) salicylaniline Schiffs base | 30 | 10-6-10-2 | Li+,Na+,Cs+,k+ | |
| Cu2+-14 | naphthol-derivative Schiff's base | 29.5 | 5.0×10-6-5.0×10-2 | Hg2+,Ni2+,Na+ | |
| Zn2+-1 | 30.0 | 1.0× 10-6 -1.0×10-1 | Cu2+, Al3+, Cd2+ | ||
| Ag+-1 | Schiff base- | 59.7 | 1.0×10-5-.0×10-1 | Hg2+ | |
| Ag+-2 | a dioxime-type Schiff base, | 59 | 10-6..3 -10-1.1 | Hg2+ | |
| Ag+-3 | Schiff base | 59 | 1.0×10-5-.0×10-1 | Hg2+ | |
| Ag+-4 | calix[ | 53.8 ± 1.6 | 1.0×10-6-1.0×10-2 | Hg2+ | |
| Ag+-5 | calix[ | 58.9 | 1.0×10-5-1.0× 10-1 | K+, NH4+, Na+ | |
| Ag+-6 | [bis 5-(4-nitrophenyl azo)salisylaldimine] 1,8-diamino, 3,6-dioxooctane (BNSAO) | 56.2 and 58.4 | 1.9 × 10−6 − 2.7 × 10−2 and 9.0 × 10−7 − 3.1 × 10−2 | K+, NH4+ | |
| Ag+-7 | 5,11,17,23-tetra-tert-butyl-25,27-dihydroxy-calix[ | 53.8 ± 1.6 | 1.0×10-6-1.0×10-2 | Hg2+ | |
| Ag+-8 | 7,8: 16,17-dibenzo- 6,9,15,18-tetraoxo- 1,5,10,14-tetrathiacyclooctadeca-7,16- diene [Bz(2)Oxo(4)(18) dieneS(4) | 58.4 | 1.26×10-6 -1.0×10-1 | Tl+, Hg2+, Pb2+ | |
| Cd2+-1 | 5-[((4-Methyl phenyl) azo)- | 28 and 22 | 1.5×10-1-7.5×10-7 and 2.0×10-1-4.0×10-7 | Pb2+, Ni2+ | |
| Cd2+-2 | 29.5 | 7.9 ×10-8-1.0 × 10-1 | Cu2+NH4+Cr3+ | ||
| Hg+2,Cu+2 -1 | Tetraethylthiuram disulfide was chosen as a chemical modifier | 79.4 and 43.1 | 10-7-10-3and 10−7.18- 10−3.67 | Mg2+, Al3+ | |
| Hg2+-1 | sulfur Schiff's base 1-(2-hydroxy-1,2-diphenylethylidene)thiosemicarbazide (HDPET) | 29 | 1.0×10-6 -2.0×10-2 | Ag+ | |
| Hg2+-2 | bis[5-((4-nitrophenyl)azo salicylaldehyde)] (BNAS) | 30 | 5.0 ×10-2 -7.0× 10-7 | - | |
| Hg2+-3 | ethylenediamine bisthiophene-carboxaldehyde (EDBT) | 30.0 ± 0.4 | 10-7-10-2 | Ag+ | |
| Hg2+-4 | Ethyl-2-(benzoylamino)-3-(2-hydroxy-4-methoxyphenyl)-2-propenoate (EBHMP) | 48.5 ± 1.0 | 3.0 × 10-7-3.1× 10-2 | Cu2+,Cd2+, Pb2+ | |
| Hg2+-5 | bis(2-hydroxybenzophenone) butane-2,3-dihydrazone (HBBD) | 29.7 | 1.0 × 10-6-1.0× 10-1 | Fe3+,Cd2+, La3+ | |
| SCN--1 | tricoordinate Schiff base copper(II) complex | -57.6 | 2.6×10-6 -1.0×10-1 | - | |
| SCN--2 | two zinc(II) ions and two molecules of the bis- | -57.5 | 10-3.5 - 10-2 | N3-, NO2- | |
| SCN--3 | cadmium-Schiff's base complex | -57 | 1.0×10-5- 1.0×10-1 | ||
| SCN--4 | ( | -59.1 | 10-6-10-1 | MnO4-, I- | |
| SCN--5 | 2.2-[(1,3-dimethyl-1,3-propanediylidene)dinitrilo]bis-benzenethiolato cadmium(II) | -58.9 | 10-6-10-1 | MnO4-, ClO4-, Br- | |
| SCN--6 | butane-2,3-dione bis(salicylhydrazonato) zinc(II) | -56.5 | 10-6-10-1 | ClO4- | |
| SO42--1 | Schiff base complex of Zn(II) | -29.7 and -29.3 | 5.0×10-5-10-1 | SCN-, ClO4- | |
| SO42--2 | strontium Schiff's base complex (SS) | -29.2 | 10-2-10-6 | SO32-, CO32-, Cl- | |
| SO42--3 | zinc-Schiff base | -29.2 | 10-2-10-6 | - | |
| SO42--4 | -28.9 | 1.5 × 10-6-4.8× 10-2 | I-, HPO4- | ||
| F--1 | Gallium(III)-Schiff base | -61.1 | 1.0×10-5-1.0×10-1 | SCN- | |
| Cl--1 | ruthenium(III) Schiff's base | -54.5 | 1.0×10-1-3.0×10-6 | - | |
| Cl--2 | Schiff base complex of cobalt(II) | -59 | 2.5×10-5-0.5×10-1 | Br- | |
| I--1 | Schiff base complex of Fe(III) | -71.0 | 1.0×10-6 -5.0 × 10-1 | SCN-, F-, NO2- | |
| I--2 | [5,10,15,20-tetrakis(4- | -59.4 | 1.0 ×10-2-7.5 × 10-6 | Salicylate, SCN-, ClO4- | |
| I3--1 | bis (salicylaldehyde) ethylenediamine mercury(II) complex MS) | -59.0 | 5.0 × 10-8-10 × 10-2 | - | |
| I3--2 | -61.4 | 4.0 ×10-5 -0.7× 10-1 | I-, SCN-, ClO4- | ||
| I3--3 | a Charge-Transfer Complex of (1,3-diphenyldihydro-1H-Imidazole-4,5-dione dioxide with Iodide | -59.3 | 10-7-10-1 | - | |
| I3--4 | 2-(((2((( | -59 | 5.0 × 10-8-1.0× 10-2 | - | |
| I3--5 | Schiff base 2,2′ [4,4′-diphenyl-methane bis (nitromethylidyne)] bisphenol, L, with copper (II) and schiff base 2,2′ [4,4′-diphenyl-methane bis (nitromethylidyne)] bisphenol, L, with iron (III) | -60 | 6.0×10-6- 8.0×10-1 and 5.0×10-5 -1.0×10-1 | SCN-, Salicylate | |
| I3--6 | bis- | -61.4 | 4.0×10-5- 0.7×10-1 | I- | |
| Salycilate | Schiff base complexes of Co(III) | -57.2 | 1.6 ×10-6-1.0 × 10-1 | SCN- | |
| Salycilate | the complex | -59.1 | 1.0 × 10-6-1 | - | |
| Cysteine | -59 | 2.0 ×10-6-1.0 × 10-2 | - |
Figure 9.Structure of bis(5-phenyl azo salicylaldehyde) 2,3-naphthalene diimine (5PHAZOSALNPHN) (Al3+-1).
Figure 10.Structures of two suitable ionophores used in construction of the Pb2+ selective membrane sensors.
Figure 11.Structures of some ionophores used in construction of the lanthanide selective membrane sensors.
Figure 12.Structures of two suitable ionophores used in construction of the Cr3+ selective membrane sensors.
Figure 13.Structures of some symmetric Schiff's base ionophores used in construction of the Cu2+ selective membrane sensors.
Figure 14.Structures of ionophores used in construction of the Ag+, Cd2+ and Hg2+ selective membrane sensors.
Figure 15.Structures of some suitable Schiff's base complexes used in construction of some anion selective membrane sensors.
A number of reported potentiometric membrane sensors based on salen.
| NO2--1 | Co(II)-Salen | -58.2 | 10-6-10-1 | - | |
| HPO42--1 | Vanadyl salen | -28.8 | 1.0×10-1-5.0×10-6 | - | |
| HPO42--2 | oxo-molybdenum methyl-salen | -28.6 | 1.0×10-1 - 4.0×10-7 | - | |
| HPO42--3 | oxo-molybdenum methyl-salen (MS) | -28.6 | 1.0×10-1-4.0×10-7 | - | |
| Br--1 | iron(III)-salen (IS) | -59.0 | 7.0×10-6-1.0×10-1 | SCN-, I-, Cl- | |
| I--1 | salen-Mn(II) | -59.0 | 1.0×10-5-3.4 ×10-1 | CN- | |
| I--2 | Cerium-salen | -57.5 | 5.0×10-2 -8.0×10-6 | SCN- | |
| I3--1 | Mercury-salen | -59.0±0.5 | 5.0×10−8−1.0×10−2 | - |
Figure 16.Structures of two salens used in construction of some anion selective membrane sensors.
A number of reported potentiometric membrane sensors based on salophen.
| Al+3-1 | NM-bis(salicylidene)-1,2-phenylenediamine (salophen) | 20.1 | 8.0 ×10-7 -3.0× 10-2 | Cu2+, Cr3+ | |
| NO2--1 | Co(II)-salophen | -59.8 | 10-6-10-1 | - | |
| NO2--2 | Uranyl salophen | 56.2 | 10-3 -10-1 | - | |
| H2PO4--1 | Uranyl salophenes | -59 | 10-4-10-1 | - | |
| HPO42--2 | vanadyl salophen | -24.3 | 10-1-10-6 | - | |
| F--1 | uranyl salophen derivatives | -56 | 1.0×10-4-1.0×10-1 | - | |
| I--1 | cobalt-salophen | - 58.9 | 5.0 ×10-7-1.0×10-1 | - |
Figure 17.The basic structure of a hydrazone.
A number of reported potentiometric membrane sensors based on hydrazone derivatives.
| La3+-1 | 19.4 | 10-6 -10-2 | Yb3+ | ||
| La3+-2 | Bis(2-methylbenzaldehyde)-butane-2,3-dihydrazone (TDSB) | 19.8 | 1.0 × 10-5-1.0 × 10-1 | Cu2+, Ce3+, Pr3+ | |
| La3+-3 | 20.1 | 10−6-10−1 | Sm3+, Ce3+ | ||
| La3+-4 | 3-hydroxy- | 19.2 | 10−7-10−2 | Yb3+, Ce3+ | |
| La3+-5 | 8-amino- | 20.3 ± 0.3 | 1.0 × 10-7-1.0 × 10-1 | Pr3+ | |
| La3+-6 | 19.2 ± 0.6 | 1.0 × 10-6-1.0 × 10-1 | Sm3+, Nd3+ | ||
| Pr+3-1 | 21.1 | 10−2-10−6 | Sm3+, Er3+ | ||
| Nd+3-1 | 19.6 | 10-5-10-2 | La3+, Gd3+, Sm3+ | ||
| Nd+3-2 | 2-{[(6-aminopyridin-2-yl)imino]methyl}phenol | 19.6 | 10-5-10-2 | La3+, Sm3+ | |
| Sm3+-1 | 3-{[2-oxo-1(2 | 19.3 | 10-6-10-1 | - | |
| Eu3+-1 | bis(thiophenol)butane2,3-dihydrazone | 19.8 | 1.0 × 10-5-1.0 × 10-2 | La3+, Gd3+, Sm3+ | |
| Er+3-1 | Pyridine-2-carbaldehyde-2-(4-methyl-1,3-benzothiazol-2-yl)hydrazone | 21.8 | 10-5-10-2 | Sm3+, Tm3+,Gd3+ | |
| Er+3-2 | 21.0 | 10-7-10-2 | Ho3+ | ||
| Er+3-3 | 17.5 (microelectrode) | 1.0×10-3-3.0×10-10 | - | ||
| Tm+3-1 | thiophene-2-carbaldehyde-(7-methyl-1,3-benzothiazol-2-yl)hydrazone | 19.5 | 10-5–10-2 | Er3+ | |
| Yb+3-1 | 3-hydroxy- | 19.2 | 10−7-10−2 | Nd3+, Pb2+,Gd3+ | |
| Hg2+-1 | bis(2-hydroxybenzophenone) butane-2,3-dihydrazone (HBBD) | 29.7 | 1.0 × 10-6-1.0 × 10-1 | Fe3+,Cd2+, La3+ | |
| I3--1 | complex of iodine and bis(2-hydroxyacetophenone)-butane-2,3-dihydrazone.” | -58. 99 ± 0.3 | 1.0×10-2 - 5.0×10-7 | - | |
| I3--2 | bis(2,4-dimethoxybenzaldehyde)butane-2,3-dihydrazone with iodine | -60.6 | 10-7-10-2 | - | |
| I3--3 | bis(2-hydroxyacetophenone)butane-2,3-dihydrazone. | -58.99 | 1.0×10-2 - 5.0×10-7 | - |
Scheme 2.Synthesis method of the first crown ether.
Figure 18.Structures of some crwon ethers and cryptands.
Cavity size of some simple crown ethers and cryptands [209,210].
|
| |
|---|---|
| 15-crown-5 | 1.7-2.2 |
| 18-crown-6 | 2.6-3.2 |
| 21-crown-7 | 3.4-4.3 |
| Cryptand 111 | 1.0 |
| Cryptand 211 | 1.6 |
| Cryptand 221 | 2.2 |
| Cryptand 222 | 2.8 |
| Cryptand 322 | 3.6 |
| Cryptand 332 | 4.2 |
|
| |
| Cryptand 333 | 4.8 |
Figure 19.Structures of some aza crown ethers and cryptands.
Figure 20.Controlling the recognition ability of crown ethers through an external stimulus [3].
Figure 21.Loss of binding ability through redox reactions between thiol and disulfide groups [3].
A number of reported potentiometric membrane sensors based on crown ethers.
| Li+-1 | Decalino-14-Crown-4 | 58 | 1×10-6 − 1 | Na+ | |
| Li+-2 | Tnf-Based 16-Crown-4 Derivatives | 58.2 | 1×10-5 -1×10-1 | Na+,NH4+ | |
| Li+-3 | Lipophilic Crown-4 Derivatives | 58 | 10-4-10-1 | Na+, K+,NH4+ | |
| Li+-4 | 16-crown-4 derivatives | 59.7 | 7×10-4 - 1.5×10-3 | - | |
| Na+-1 | Bis[(12-crown-4)methyl] methyl(dodecyl)malonate [bis(12-crown-4)] and polyether-amide compounds (ETH 157, ETH 2120) | 54 | 1.0×10-4-1.0×10-1 | K+ | |
| Na+-2 | Bis(10-crown-3)-hexamethylenebis(3,6,10-trioxacycloundecane) | 54 | 1×10-5-1 | K+ | |
| Na+-3 | Crown-bridged calix[ | 54 | 1.0×10-4-1.0×10-1 | K+ | |
| Na+-4 | dibenzopyridino-18-crown-6 | 51.2 | 1.0×10-4-1.0×10-1 | Pb2+, NH4+, Cs+ | |
| Na+-5 | 1-methyl-1-vinyl-14-crown-5 | 55.0 | 3.16×10-6 -1.0×10-1 | K+ | |
| K+-1 | styrene/4(-vinylbenzo-24-crown-8) copolymer | 58 | 1.0×10-6 1.0×10-1 | - | |
| K+-2 | Bis(crown ether) ionophore containing two benzo-15-crown-5 moieties | 57 | 5.0×10-6 1.0×10-1 | NH4+, Na+, Cs+ | |
| Rb+-1 | crown ethers incorporating anthraquinone, benzoquinone, and 1,4-dimethoxybenzene | 54.7 | 1.0×10-5 -1.0×10-1 | Na+,K+,Mg2+,NH4+,Li+ | |
| Rb+-2 | dibenzo-21-crown-7 (DB21C7) | 57.8 | 1.0×10-5 -5.0 ×10-2 | - | |
| Cs+-1 | upper-rim calix[ | 48 | 1×10-6 -1×10-1 | Rb+ | |
| Cs+-2 | calix[ | 58.5 | 1×10-6 -1 × 10-1 | Na+,K+ | |
| Cs+-3 | 1,3-alternate thiacalix[ | 57.6 | 1.0×10-6 to 3.2×10-2 | K+ | |
| Be2+-1 | benzo-9-crown-3 | 28 | 2.5×10-6-4.0×10-3 | - | |
| Be2+-2 | 2,4-dinitrophenylhydrazineben zo-9-crown-3 | 29.5 | 1.0×10-1- 4.0× 10-7 | - | |
| Be2+-3 | naphto-9-crown-3 | 29.5 | 1.0×10-1- 8.0×10−6 | - | |
| Be2+-4 | 2,3,5,6,8,9-hexahydro-1,4,7,10-benzotetra oxacyclododecine-12-carbaldehyde-12-(2,4-dinitrophenyl)hy | 29.9 | 1.0×10-7-1.0 × 10-1 | Na+, Ca+2, Li+, | |
| Be2+-5 | 2,6-diphenyl-4-benzo-9-crown-3-pyridine | 29.6 | 1.0×10−7-1.0×10−1 | Mg+2,Ca+2,K+,Na+ | |
| Be2+-6 | 2,3,5,6,8,9-hexahydronaphto [2,3-b]- [ | 29.8 | 1.0×10−8-1.0×10−2 | - | |
| Be2+-7 | a derivative of benzo-9-crown-3 | 29.6 | 1.0×10−6-1.0×10−1 | - | |
| Be2+-8 | a derivative of benzo-9-crown-3 | 29.5 | 1.0×10−7-1.0×10−1 | - | |
| Mg2+-1 | benzo-15-crown-5 | 31.0 | 1.0×10-5 -1.0×10-1 | K+, Cd2+. Mg2+, | |
| Sr+2-1 | dibenzo-24-crown-8(I) and 4-tert-butylcalix[ | 30 | 1.4×10-5-1.0×10-1 | Na+ | |
| Sr+2-2 | benzo-substituted macrocyclic diamides | 30 | 3.2×10-5-1.0×10-1 | - | |
| In3+-1 | 15-crown-5 (15C5), dicyclohexano-18-crown-6 (DCH18C6) | 20.1 | 3.8×10-5 -5.0×10-2 | - | |
| Tl3+-1 | dibenzyldiaza-18-crown-6 | 56.9 | 1.0×10-5-1.0×10-1 | Cd2+, Hg2+, Ag+ | |
| Sn2+-1 | dibenzo-18-crown-6(DB18C6) | 27.5 | 1.0×10-6 -1.0×10-2 | - | |
| Pb2+-1 | monobenzo-15-crown-5 (MB15C5), MB15C5-phosphotungstic acid (PW) and MB15C5-phosphomolybdic acid (PMo) | 30 | 1×10-1 -1×10-5 | Ag2+, Hg2+ | |
| Pb2+-2 | dibenzodiaza-15-crown-4 | 29 | 5.0×10-6-1.0×10-2 | - | |
| Pb2+-3 | 4′-vinylbenzo-15-crown-5 | 59 | 4.0 ×10-3- 1.0 ×10-6 | K+ | |
| Pb2+-4 | dithiophenediazacrown ether derivatives. | 29.2 | 10 5.0- 10 2.7 | Hg2+ | |
| Pb2+-5 | 1,10-dibenzyl-1,10-diaza-18-crown-6 | 29.1and 28.9 | 5.0× 10-6-10-1 | Cd2+, Cu2+ | |
| Pb2+-6 | 18-membered thiacrown derivative | 29.0 | 1.0× 10-6-8.0× 10-3 | - | |
| Pb2+-7 | N,N′-dimethylcyanodiaza-18-crown-6 | 29 | 10-7-10-2 | - | |
| La3+-1 | monoaza-12-crown-4 | 20.5 ± 1.0 | 3.16 ×10-5-1.0×10-1 | Pb2+,Mg2+,Ca2+, Cu2+,Zn2+,Cd2+, Cr3+,Ce3+,Eu3+ | |
| Ce3+-1 | 1,3,5-trithiane | 19.2 | 4.7 × 10-4-2.5 ×10-8 | La3+ | |
| Cr3+-1 | Different ionophoric species, viz.: 18-crown-6 (18C6), dibenzo-18-crown-6 (DB18C6) and calix[ | 18.5and 20 | 1.0×10-5 - 1.0×10-1 | Pb2+ and Na+ | |
| Fe3+-1 | benzo-18-crown-6 crown ether | 15.7±1 | 1×10-6-1.0×10-1 | - | |
| Co2+-1 | benzo-substituted macrocyclic diamide | 29 | 2.0×10-6-1.2×10-2 | - | |
| Co2+-2 | dibenzopyridino-substituted macrocyclic diamide | 29 | 7.0×10-7-1.0×10-2 | - | |
| Ni2+-1 | dibenzodiaza-15-crown-4 | 28.6 | 7.1×10-7-1.2×10-2 | Ag+, Pd2+ | |
| Cu2+-1 | Aza-thioether crowns containing a 1,10-phenanthroline sub-unit | 30 | 1×10−5-2×10−1 | La+3 | |
| Cu2+-2 | 23-member macrocyclic diamide | 30 | 3.2×10−5-1.0×10−1 | - | |
| Ag+-1 | Lipophilic pyrrole-based tetraazacrown ether | 55 | 1.0×10-5-1.0×10-1 | Hg2+ | |
| Ag+-2 | diaza-18-crown-6, containing two oxime donor groups | 59.5 | 1.0×10-5 -1.0×10-2 | - | |
| Ag+-3 | hexathia-18-crown-6 | 59 | 6.0×10-6-3.2×10-3 | - | |
| Ag+-4 | Aza-thioether crowns containing a 1,10-phenanthroline sub-unit | 59.4 and 59.1 | 1.0×10-5-1.0×10-1 and 5.0×10-8-4.0×10-2 | Cu2+, Tl+ | |
| Ag+-5 | exocyclic sulfur and selenium ligands based on calix[ | 56.0 | 1.0×10-5-1.0×10-2 | Hg2+ | |
| Ag+-6 | 5,11,17,23-tetra-tert-butyl-25,27-dihydroxy-calix[ | 53.8 ± 1.6 | 1.0×10-6- 1.0×10-2 | Hg2+ | |
| Ag+-7 | 1,10-phenanthroline subunit | 56 | 1.0×10-5- 1.0×10-1 | Hg2+ | |
| Zn2+-1 | cryptand C2(B)22 | 24 | 5.0×10-5-5.0×10-2 | Na+ | |
| Zn2+-2 | dibenzo-24-crown-8 | 29.0±0.5 | 9.2×10-5-1.0×10-1 | - | |
| Zn2+-3 | benzo-substituted macrocyclic diamide | 29.0 | 9.0×10-5-1.0×10-1 | - | |
| Cd2+-1 | dicyclohexano-24-crown-8 | 30.0 ± 1.0 | 3.0×10-5 -1.0×10-1 | Fe3+, Cr3+, Ce3+ | |
| Cd2+-2 | dicyclohexano-18-crown-6 | 29.0 ±1.0 | 2.5×10-5-1.0×10-1 | - | |
| Cd2+-3 | tetrathia-12-crown-4 | 29.0 ±1.0 | 4×10-7-1.0×10-1 | - | |
| Cd2+-4 | monoaza-18-crown-6 | 29 | 1.0×10-5-1.0×10-1 | Cu2+,Na+, Ca2+ | |
| Hg2+-1 | p-tert-butyl calix[ | 27.3 | 5.0×10-5-1.0×10-1 | - | |
| Hg2+-2 | Pentathia-15-crown-5 | 32.1 | 2.51×10-7-1.0×10-1 | ||
| Hg2+-3 | dibenzodiazathia-18-crown-6-dione | 29 | 8.0×10-6-1.0×10-2 | Cd2+, Pb2+, K+ | |
| Hg2+-4 | hexathia-18-crown-6-tetraone | 29.0 ±0.3 | 4.0×10-6-1.0×10-3 | - | |
| I3--1 | Two different charge-transfer complexes and amino crown ether | -59 | 1.0×10-5 - 1.0×10-1 | - | |
| SCN--1 | Cu(II)-1,8-dimethyl-1,3,6,8,10,13-hexaazacyclotetradecane complex | -57.2 | 7.0×10-6 - 1.0×10-1 | ClO4- | |
| SCN--2 | Ni(II)-azamacrocycle complex | -57.8 | 1.0×10-7 - 1.0×10-1 | - | |
| SO42--1 | 2,5-diphenyl-1,2,4,5-tetraaza-bicyclo[2.2.1]heptane | -28.8 | 9.0×10-6 - 1.0×10-1 | - |
Figure 22.Some structures of crown ethers used as supramolecular ionophores in construction of the first group metal cations membrane sensors.
Figure 23.Some structures of crown ethers used as supramolecular ionophores in construction of the Be2+ membrane sensors.
Figure 24.Some structures of crown ethers used as supramolecular ionophores in construction of the Pb2+ membrane sensors.
Figure 25.A structure of a crown ether used as supramolecular ionophore in the construction of the Ag+ membrane sensors.
Figure 26.Some structures of crown ethers used as supramolecular ionophore in the construction of the Hg2+ membrane sensors.