Abstract:Ti-imido
complex [TiCl(N
t
Bu)(BIPP)]
[1; BIPP = bis(iminophosphoranyl)phosphide ligand] reacts
with terminal alkynes R–CCH (R = phenyl, isopropenyl,
cyclopropyl, and 2-pyridyl) via P–P bond cleavage of the BIPP
ligand. The resulting complexes [TiCl(NPN′)(NPhPPh2)] (2a–d) contain a pincer-type NPN′ phosphide
ligand that incorporates the terminal alkyne and the imido ligand
from complex 1. Complexes 2a–d feature
two chiral centers (Ti and P) with interdependent absolute configurations;
thus, they are for… Show more
“…In an attempt to isolate a low-coordinate Ti(III) pincer complex, halide abstraction on 2 was attempted. In order to achieve this, [(SiEt 3 ) 2 (μ-H)][BAr F 4 ] (Ar F = C 6 F 5 ) was usedthis has been used to great effect to abstract halides from particularly strong M–Cl bonds (e.g., lanthanides). − Addition of [(SiEt 3 ) 2 (μ-H)][BAr F 4 ] to 2 in benzene resulted in the immediate formation of a brown oil, which could be extracted with fluorobenzene as a deep brown-red solution. A structural analysis found that only half an equivalent of chloride had been abstracted and a dimeric species could be isolated in the solid state, [(( tBu PCP)TiCl) 2 (μ-Cl)][BAr F 4 ] ( 3 , Scheme ).…”
Ti(IV) and Ti(III)
complexes using the tBuPCP ligand
have been synthesized (tBuPCP = C6H3-2,6-(CH2PtBu2)2). The
[tBuPCP]Li synthon can be reacted with TiCl4(THF)2 to form (tBuPCP)TiCl3 (1) in limited yields due to significant reduction of the titanium
synthon. The Ti(III) complex (tBuPCP)TiCl2 (2) has been further characterized. This can have half an equivalent
of halide abstracted to form [{(tBuPCP)TiCl}2{μ-Cl}][B(C6F5)4] (3) and can also be methylated, forming (tBuPCP)TiMe2 (4). All the Ti(III) complexes have been characterized
using EPR and X-ray crystallography, giving insight into their electronic
structures, which are further supported by DFT calculations.
“…In an attempt to isolate a low-coordinate Ti(III) pincer complex, halide abstraction on 2 was attempted. In order to achieve this, [(SiEt 3 ) 2 (μ-H)][BAr F 4 ] (Ar F = C 6 F 5 ) was usedthis has been used to great effect to abstract halides from particularly strong M–Cl bonds (e.g., lanthanides). − Addition of [(SiEt 3 ) 2 (μ-H)][BAr F 4 ] to 2 in benzene resulted in the immediate formation of a brown oil, which could be extracted with fluorobenzene as a deep brown-red solution. A structural analysis found that only half an equivalent of chloride had been abstracted and a dimeric species could be isolated in the solid state, [(( tBu PCP)TiCl) 2 (μ-Cl)][BAr F 4 ] ( 3 , Scheme ).…”
Ti(IV) and Ti(III)
complexes using the tBuPCP ligand
have been synthesized (tBuPCP = C6H3-2,6-(CH2PtBu2)2). The
[tBuPCP]Li synthon can be reacted with TiCl4(THF)2 to form (tBuPCP)TiCl3 (1) in limited yields due to significant reduction of the titanium
synthon. The Ti(III) complex (tBuPCP)TiCl2 (2) has been further characterized. This can have half an equivalent
of halide abstracted to form [{(tBuPCP)TiCl}2{μ-Cl}][B(C6F5)4] (3) and can also be methylated, forming (tBuPCP)TiMe2 (4). All the Ti(III) complexes have been characterized
using EPR and X-ray crystallography, giving insight into their electronic
structures, which are further supported by DFT calculations.
“…lanthanides). [26][27][28][29][30][31] Addition of [(SiEt3)2(µ-H)][BAr F 4] to 2 in benzene resulted in the immediate formation of a brown oil, which could be extracted with fluorobenzene as a deep brown-red solution. Structural analysis found that only half an equivalent of chloride had been abstracted and a dimeric species could be isolated in the solid state, [(( tBu PCP)TiCl)2(µ-Cl)][BAr F 4] (3, Scheme 3).…”
“…The crude product could be dissolved in fluorobenzene (0.5 mL) and layered with hexane to afford brown needle single crystals of [{( tBu PCP)TiCl}2(μ-Cl)][BAr F 4] suitable for x-ray diffraction. No 1 H or 31…”
Section: Synthesis Of [( Tbu Pcpticl)2(µ-cl)][bar F 4]mentioning
Ti(IV) and Ti(III) complexes using the tBuPCP ligand have been synthesised (tBuPCP = C6H3-2,6-(CH2PtBu2)2). The [tBuPCP]Li synthon can be reacted with TiCl4(THF)2 to form (tBuPCP)TiCl3 (1) in limited yields due to significant reduction of the titanium synthon. The Ti(III) complex (tBuPCP)TiCl2 (2) has been further characterised. This can have half an equivalent of halide abstracted to form [{(tBuPCP)TiCl}2{μ-Cl}][B(C6F5)4] (3) and can also be methylated forming (tBuPCP)TiMe2 (4). All the Ti(III) complexes have been characterised using EPR and x-ray crystallography, giving insight into their electronic structure, which is further supported by DFT calculations.
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