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Multidentate ligand

Ammine complex complex with NH3 (ammonia) as the only N-donor ligand, for example, trani -PtCl2(NH3)2 Facultative ligand multidentate ligands that are capable of arranging their donor atoms around a metal ion in a number of different ways... [Pg.172]

There are a few documented examples of studies of ligand effects on hydrolysis reactions. Angelici et al." investigated the effect of a number of multidentate ligands on the copper(II) ion-catalysed hydrolysis of coordinated amino acid esters. The equilibrium constant for binding of the ester and the rate constant for the hydrolysis of the resulting complex both decrease in the presence of ligands. Similar conclusions have been reached by Hay and Morris, who studied the effect of ethylenediamine... [Pg.76]

The utility of complexation titrations improved following the introduction by Schwarzenbach, in 1945, of aminocarboxylic acids as multidentate ligands capable of forming stable 1 1 complexes with metal ions. The most widely used of these new ligands was ethylenediaminetetraacetic acid, EDTA, which forms strong 1 1 complexes with many metal ions. The first use of EDTA as a titrant occurred in... [Pg.314]

In recent years this simple picture has been completely transformed and it is now recognized that the alkali metals have a rich and extremely varied coordination chemistry which frequently transcends even that of the transition metals. The efflorescence is due to several factors such as the emerging molecular chemistry of lithium in particular, the imaginative use of bulky ligands, the burgeoning numbers of metal amides, alkoxides, enolates and organometallic compounds, and the exploitation of multidentate... [Pg.91]

Multidentate ligands contain more than two coordinating atoms per molecule, e.g. 1,2-diaminoethanetetra-acetic acid (ethylenediaminetetra-acetic acid, EDTA),f which has two donor nitrogen atoms and four donor oxygen atoms in the molecule, can be hexadentate. [Pg.52]

The vast majority of complexation titrations are carried out using multidentate ligands such as EDTA or similar substances as the complexone. However, there are other more simple processes which also involve complexation using monodentate or bidentate ligands and which also serve to exemplify the nature of this type of titration. This is demonstrated in the determination outlined in Section 10.44. [Pg.309]

They demonstrate the sensitivity of the Ru—N bond length to the trans-donor atom and also how when a multidentate ligand is involved bond lengths do not necessarily shorten on increasing the oxidation state. [Pg.51]

Certain multidentate ligands also provide for better solubility. Cu1 complexes formed with tctramcthylcthylcncdiaminc (TMEDA), N,N,N ,N ,N -pentamethyldiethylenetriamine (PMDETA, 140) and 1,1,4,7,10,10-hcxamethyltricthylcnctctraminc (HMTETA, 144) and Mc6TREN (145) have been found effective.311 Transfer to ligand during MMA polymerization has been reported as a side reaction when PMDETA is used. 12 313... [Pg.493]


See other pages where Multidentate ligand is mentioned: [Pg.652]    [Pg.1617]    [Pg.1196]    [Pg.1430]    [Pg.2005]    [Pg.360]    [Pg.2004]    [Pg.1430]    [Pg.644]    [Pg.1837]    [Pg.2968]    [Pg.3452]    [Pg.4871]    [Pg.7257]    [Pg.358]    [Pg.296]    [Pg.34]    [Pg.652]    [Pg.1617]    [Pg.1196]    [Pg.1430]    [Pg.2005]    [Pg.360]    [Pg.2004]    [Pg.1430]    [Pg.644]    [Pg.1837]    [Pg.2968]    [Pg.3452]    [Pg.4871]    [Pg.7257]    [Pg.358]    [Pg.296]    [Pg.34]    [Pg.320]    [Pg.2825]    [Pg.47]    [Pg.438]    [Pg.37]    [Pg.384]    [Pg.385]    [Pg.181]    [Pg.169]    [Pg.494]    [Pg.593]    [Pg.671]    [Pg.911]    [Pg.970]    [Pg.38]    [Pg.225]    [Pg.76]    [Pg.109]    [Pg.146]    [Pg.146]   
See also in sourсe #XX -- [ Pg.53 , Pg.63 ]

See also in sourсe #XX -- [ Pg.232 ]

See also in sourсe #XX -- [ Pg.14 ]

See also in sourсe #XX -- [ Pg.19 , Pg.20 , Pg.21 , Pg.22 , Pg.26 , Pg.40 , Pg.40 , Pg.41 , Pg.42 , Pg.44 , Pg.134 , Pg.135 , Pg.135 , Pg.136 , Pg.137 , Pg.137 , Pg.138 , Pg.149 ]




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Aqueous Reactions of Vanadate with Multidentate Ligands

Aqueous reactions multidentate ligands

Aqueous reactions vanadate, multidentate ligands

Bond multidentate ligands

Chiral ligands multidentate

Complexes with Multidentate Ligands

Coordination Polymers with N-containing Multidentate Aromatic Ligands

Esters multidentate ligands

Formation Involving Unsubstituted Metal Ions Multidentate Ligand Substitution

Lanthanide complexes multidentate ligands

Ligand, unidentate, multidentate

Ligands common multidentate

Macrocyclic ligands multidentate

Macropolycyclic ligands multidentate

Multidentate

Multidentate NHC ligands

Multidentate Podand Ligands

Multidentate chelating ligands

Multidentate ligand carriers for

Multidentate ligand, substitution

Multidentate ligand, substitution reactions

Multidentate ligands coordination polymers

Multidentate ligands, dithiolene

Multidentate ligands, lead substitution

Multidentate ligands, lead substitution reactions

Multidentate ligands, metal coordination

Multidentate ligands, vanadate, aqueous

Multidentate organic ligands

Multidenticity

Other Multidentate Ligands

Phosphines multidentate ligands

Poly(phosphine) Multidentate Ligands

Replacement Reactions Involving Multidentate Ligands

Schiff base-type ligands multidentate

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