欧美午夜精品久久久久免费视-亚洲国产精品无码久久久-鲁鲁狠狠狠7777一区二区-特黄aaaaaaa片免费视频

Welcome to LookChem.com Sign In|Join Free

CAS

  • or
Sodium bis(trimethylsilyl)amide (NaHMDS) is a strong, non-nucleophilic base commonly used in organic synthesis, particularly for deprotonation reactions. In the context of the provided literature, it was employed in the synthesis of cobalt(II) β-ketoaminato complexes, where it likely acted as a base to facilitate the formation of the desired metal-ligand coordination compounds. These cobalt complexes demonstrated notable cytotoxic activity against human tumor cell lines, suggesting potential applications in anticancer drug development. NaHMDS's role in such reactions underscores its utility in generating reactive intermediates for the preparation of biologically active metal complexes. (for the first abstract, as it does not provide relevant conclusions about NaHMDS itself). For the second abstract, the synthesized cobalt(II) β-ketoaminato complexes, prepared using sodium bis(trimethylsilyl)amide (NaHMDS), exhibited significant cytotoxic effects against prostate cancer and leukemia cells, mediated through caspase-3, MAP kinases, and reactive oxygen species, highlighting their potential as novel anticancer agents. **Final return (second abstract):** Sodium bis(trimethylsilyl)amide (NaHMDS) is a strong base used in the synthesis of cytotoxic cobalt(II) β-ketoaminato complexes, which demonstrated potent anticancer activity by targeting key cellular pathways, suggesting its utility in medicinal chemistry for developing novel therapeutics.

1070-89-9

Post Buying Request

1070-89-9 Suppliers

Recommended suppliersmore

  • Product
  • FOB Price
  • Min.Order
  • Supply Ability
  • Supplier
  • Contact Supplier

1070-89-9 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1070-89-9 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 1,0,7 and 0 respectively; the second part has 2 digits, 8 and 9 respectively.
Calculate Digit Verification of CAS Registry Number 1070-89:
(6*1)+(5*0)+(4*7)+(3*0)+(2*8)+(1*9)=59
59 % 10 = 9
So 1070-89-9 is a valid CAS Registry Number.
InChI:InChI=1/C6H19NSi2.Na/c1-8(2,3)7-9(4,5)6;/h7H,1-6H3;/q;+1

1070-89-9 Well-known Company Product Price

  • Brand
  • (Code)Product description
  • CAS number
  • Packaging
  • Price
  • Detail
  • TCI America

  • (H0894)  Sodium Bis(trimethylsilyl)amide (contains 2-Methyl-2-butene) (38% in Tetrahydrofuran, ca. 1.9mol/L)  

  • 1070-89-9

  • 100mL

  • 380.00CNY

  • Detail
  • TCI America

  • (H0894)  Sodium Bis(trimethylsilyl)amide (contains 2-Methyl-2-butene) (38% in Tetrahydrofuran, ca. 1.9mol/L)  

  • 1070-89-9

  • 500mL

  • 1,150.00CNY

  • Detail
  • Alfa Aesar

  • (L08779)  Sodium bis(trimethylsilyl)amide, 1M soln. in THF   

  • 1070-89-9

  • 100ml

  • 299.0CNY

  • Detail
  • Alfa Aesar

  • (L08779)  Sodium bis(trimethylsilyl)amide, 1M soln. in THF   

  • 1070-89-9

  • 500ml

  • 1245.0CNY

  • Detail
  • Alfa Aesar

  • (L13352)  Sodium bis(trimethylsilyl)amide, 2M soln. in THF   

  • 1070-89-9

  • 100ml

  • 354.0CNY

  • Detail
  • Alfa Aesar

  • (L13352)  Sodium bis(trimethylsilyl)amide, 2M soln. in THF   

  • 1070-89-9

  • 500ml

  • 1504.0CNY

  • Detail
  • Alfa Aesar

  • (33505)  Sodium bis(trimethylsilyl)amide, 98%   

  • 1070-89-9

  • 2g

  • 172.0CNY

  • Detail
  • Alfa Aesar

  • (33505)  Sodium bis(trimethylsilyl)amide, 98%   

  • 1070-89-9

  • 10g

  • 705.0CNY

  • Detail
  • Alfa Aesar

  • (33505)  Sodium bis(trimethylsilyl)amide, 98%   

  • 1070-89-9

  • 50g

  • 2727.0CNY

  • Detail
  • Aldrich

  • (245585)  Sodiumbis(trimethylsilyl)amidesolution  1.0 M in THF

  • 1070-89-9

  • 245585-100ML

  • 314.73CNY

  • Detail
  • Aldrich

  • (245585)  Sodiumbis(trimethylsilyl)amidesolution  1.0 M in THF

  • 1070-89-9

  • 245585-4X25ML

  • 621.27CNY

  • Detail
  • Aldrich

  • (245585)  Sodiumbis(trimethylsilyl)amidesolution  1.0 M in THF

  • 1070-89-9

  • 245585-4X100ML

  • 1,584.18CNY

  • Detail

1070-89-9SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 10, 2017

Revision Date: Aug 10, 2017

1.Identification

1.1 GHS Product identifier

Product name Sodium bis(trimethylsilyl)amide

1.2 Other means of identification

Product number -
Other names Sodium Hexamethyldisilazide (contains 2-Methyl-2-butene)

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:1070-89-9 SDS

1070-89-9Synthetic route

1,1,1,3,3,3-hexamethyl-disilazane
999-97-3

1,1,1,3,3,3-hexamethyl-disilazane

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

Conditions
ConditionsYield
With sodium hydride; sodium t-butanolate In toluene for 48h; Reflux;86%
With sodium amide In toluene Inert atmosphere;
With styrene; sodium
lithium bis(trimethylsilyl)amide diethyl etherate
18400-61-8

lithium bis(trimethylsilyl)amide diethyl etherate

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

Conditions
ConditionsYield
With sodium t-butanolate In benzene at 20℃;77%
N,N-diphenyl-N'-(trimethylsilyl)hydrazine
17938-30-6

N,N-diphenyl-N'-(trimethylsilyl)hydrazine

A

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

B

sodium N',N'-diphenylhydrazide

sodium N',N'-diphenylhydrazide

Conditions
ConditionsYield
With sodium amide In benzene Heating;A n/a
B 45%
tetrakis(trimethylsilyl)tetrazene
52764-24-6

tetrakis(trimethylsilyl)tetrazene

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

Conditions
ConditionsYield
With sodium In diethyl ether at 25℃; for 24h;100 % Spectr.
hexamethyldisilazan
72525-60-1

hexamethyldisilazan

sodium hydride
7646-69-7

sodium hydride

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

Conditions
ConditionsYield
In tetrahydrofuran Inert atmosphere; Glovebox;
sodium
7440-23-5

sodium

1,1,1,3,3,3-hexamethyl-disilazane
999-97-3

1,1,1,3,3,3-hexamethyl-disilazane

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

Conditions
ConditionsYield
With N,N-dimethyl-ethanamine; isoprene at 20 - 30℃; Schlenk technique;
Mo(hydridotris(3,5-dimethylpyrazolyl)borate)(CO)2(C2H3)

Mo(hydridotris(3,5-dimethylpyrazolyl)borate)(CO)2(C2H3)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

Na{(hydrotris(3,5-dimethylpyrazolyl)borate)(CO)2Mo=C=CH2}

Na{(hydrotris(3,5-dimethylpyrazolyl)borate)(CO)2Mo=C=CH2}

Conditions
ConditionsYield
In tetrahydrofuran-d8 mixed at -78°C (N2); not isolated, detected by NMR;100%
(((C2H5)2O)2Li)Cl2Y(C24H26Si)
253305-31-6

(((C2H5)2O)2Li)Cl2Y(C24H26Si)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

(((CH3)3Si)2N)Y(C24H26Si)
253305-32-7

(((CH3)3Si)2N)Y(C24H26Si)

Conditions
ConditionsYield
In toluene Ar-atmosphere; stirring (room temp., overnight); filtering, drying (vac.), crystn. (toluene, -20°C); elem. anal.;100%
tris(bis(trimethylsilyl)amido)ytterbium(III)

tris(bis(trimethylsilyl)amido)ytterbium(III)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

[(C4H8O)3NaCH2Yb(N(Si(CH3)3)2)2N(Si(CH3)3)Si(CH3)2]

[(C4H8O)3NaCH2Yb(N(Si(CH3)3)2)2N(Si(CH3)3)Si(CH3)2]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: HN(SiMe3)2; Ar atm.; equimolar ratio, refluxing (2 d); evapn. (dryness, vac.); elem. anal.;100%
15-crown-5
33100-27-5

15-crown-5

[W(carbonyl)5([bis(trimethylsilyl)methyl]cyanophosphane)]
851576-85-7

[W(carbonyl)5([bis(trimethylsilyl)methyl]cyanophosphane)]

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

[(OC)5WP(CH(SiMe3)2)CNNa(15-crown-5)]
947333-62-2

[(OC)5WP(CH(SiMe3)2)CNNa(15-crown-5)]

Conditions
ConditionsYield
In tetrahydrofuran under Ar; cooled (-80°C) soln. of NaN(SiMe3)2 in THF added dropwise to stirred soln. of W complex in THF and 15-crown-5; warmed slowly toroom temp. for 3.5 h; solvent removed under vac.; washed with Et2O and n-pentane; dried under reduced pressure; elem. anal.;100%
C14H25B9N2

C14H25B9N2

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

C14H24B9N2(1-)*Na(1+)

C14H24B9N2(1-)*Na(1+)

Conditions
ConditionsYield
In tetrahydrofuran at -30℃; for 0.25h; Inert atmosphere;100%
2-(N,N-dimethylaminomethyl)-1,1'-bis(phosphanyl)ferrocene
1246185-31-8

2-(N,N-dimethylaminomethyl)-1,1'-bis(phosphanyl)ferrocene

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

(C5H4(PHNa))Fe(C5H3(PHNa)CH2NMe2)

(C5H4(PHNa))Fe(C5H3(PHNa)CH2NMe2)

Conditions
ConditionsYield
In hexane; toluene addn. of soln. of Si compd. (2 equiv.) in toluene to soln. of Fe complexin hexane at -78°C, stirring within few minutes; isolation of solid;99%
sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

benzonitrile
100-47-0

benzonitrile

natrium-N,N'-bis(trimethylsilyl)benzamidinat
129454-37-1

natrium-N,N'-bis(trimethylsilyl)benzamidinat

Conditions
ConditionsYield
With diethyl ether for 24h; Ambient temperature;98%
tris(bis(trimethylsilyl)amido)samarium(III)

tris(bis(trimethylsilyl)amido)samarium(III)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

phenylacetylene
536-74-3

phenylacetylene

[Na(C4H8O)Sm(N(Si(CH3)3)2)3(CCC6H5)]

[Na(C4H8O)Sm(N(Si(CH3)3)2)3(CCC6H5)]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: NH(SiMe3)2; dry atm.; molar ratio 1:1:1, stirring (-78°C, 2 h), warming (roomtemp.); evapn. (vac.); elem. anal.;98%
C50H54Ir2N7

C50H54Ir2N7

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

C50H54Ir2N7(1-)*Na(1+)

C50H54Ir2N7(1-)*Na(1+)

Conditions
ConditionsYield
In tetrahydrofuran at 20℃; for 0.333333h; Inert atmosphere;98%
(C5H5)Fe(C5H4C(NC6H11)(NHC6H11))
185699-79-0

(C5H5)Fe(C5H4C(NC6H11)(NHC6H11))

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

Na(1+)*C5H5FeC5H4C(NC6H11)2(1-)=C5H5FeC5H4C(NC6H11)2Na

Na(1+)*C5H5FeC5H4C(NC6H11)2(1-)=C5H5FeC5H4C(NC6H11)2Na

Conditions
ConditionsYield
In hexane a suspn. in hexane was stirred overnight (inert atm.); filtered, dried under reduced pressure;97%
tris(bis(trimethylsilyl)amido)ytterbium(III)

tris(bis(trimethylsilyl)amido)ytterbium(III)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

diphenylamine
122-39-4

diphenylamine

[(C4H8O)2Na((C6H5)2N)2Yb(N(Si(CH3)3)2)2]

[(C4H8O)2Na((C6H5)2N)2Yb(N(Si(CH3)3)2)2]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: LiCl, NH(SiMe3)2; Ar atm.; molar ratio Yb salt:Na salt:HNPh2 1:1:2, stirring; evapn. (after 6 h, vac. (2 h, 1E-4 torr)); elem. anal.;97%
tris[N,N-bis(trimethylsilyl)amide]gadolinium(III)

tris[N,N-bis(trimethylsilyl)amide]gadolinium(III)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

diphenylamine
122-39-4

diphenylamine

[(C4H8O)2Na((C6H5)2N)2Gd(N(Si(CH3)3)2)2]

[(C4H8O)2Na((C6H5)2N)2Gd(N(Si(CH3)3)2)2]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: LiCl, NH(SiMe3)2; Ar atm.; molar ratio Gd salt:Na salt:HNPh2 1:1:2, stirring; evapn. (after 6 h, vac. (2 h, 1E-4 torr)); elem. anal.;97%
Lu(N(SiMe3)2)3

Lu(N(SiMe3)2)3

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

[(C4H8O)3NaCH2Lu(N(Si(CH3)3)2)2N(Si(CH3)3)Si(CH3)2]

[(C4H8O)3NaCH2Lu(N(Si(CH3)3)2)2N(Si(CH3)3)Si(CH3)2]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: HN(SiMe3)2; Ar atm.; equimolar ratio, refluxing (2 d); evapn. (dryness, vac.); elem. anal.;97%
4-methyl-1,2,3,5-tetraphenyl-1,2-diaza-3,5-diborolidine
1048698-05-0

4-methyl-1,2,3,5-tetraphenyl-1,2-diaza-3,5-diborolidine

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

4-methyl-1,2,3,5-tetraphenyl-1,2-diaza-3,5-diborolyl sodium
1048638-05-6

4-methyl-1,2,3,5-tetraphenyl-1,2-diaza-3,5-diborolyl sodium

Conditions
ConditionsYield
In tetrahydrofuran under Ar; soln. of B compd. in THF added to stirred soln. of NaN(SiMe3)2in THF; stirred at ambient temp. for 3 h; volatiles removed under vac.; washed with hexane; dried under vac.;97%
tetrahydrofuran
109-99-9

tetrahydrofuran

titanium(IV)(N(tert-Bu)(3,5-Me2C6H3))3 formate
862887-61-4

titanium(IV)(N(tert-Bu)(3,5-Me2C6H3))3 formate

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

C36H54N3OTi(1-)*Na(1+)*C4H8O

C36H54N3OTi(1-)*Na(1+)*C4H8O

Conditions
ConditionsYield
at 20℃; for 1h; Inert atmosphere; Glovebox; Cooling;97%
tris(bis(trimethylsilyl)amido)samarium(III)

tris(bis(trimethylsilyl)amido)samarium(III)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

diphenylamine
122-39-4

diphenylamine

[(C4H8O)2Na((C6H5)2N)2Sm(N(Si(CH3)3)2)2]

[(C4H8O)2Na((C6H5)2N)2Sm(N(Si(CH3)3)2)2]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: HN(SiMe3)2; Ar atm.; 2 equiv. of HNPh2, stirring (0°C); evapn. (after 2 h, vac.); elem. anal.;96%
ammonia borane complex
10043-11-5

ammonia borane complex

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

B3H12N2(1-)*Na(1+)
1452577-09-1

B3H12N2(1-)*Na(1+)

Conditions
ConditionsYield
In fluorobenzene; toluene at 50℃; for 24h; Inert atmosphere;96%
methylamine-borane
1722-33-4

methylamine-borane

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

C2H16B3N2(1-)*Na(1+)
1452577-10-4

C2H16B3N2(1-)*Na(1+)

Conditions
ConditionsYield
In fluorobenzene; toluene at 60℃; for 24h; Inert atmosphere; Glovebox;96%
sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

2-{1-[1-Chloro-meth-(E)-ylidene]-2,2-dimethyl-propylsulfanyl}-isoindole-1,3-dione
131968-42-8

2-{1-[1-Chloro-meth-(E)-ylidene]-2,2-dimethyl-propylsulfanyl}-isoindole-1,3-dione

N-(1-tert-butyl-2-chlorovinylthio)bis(trimethylsilyl)amine
144216-67-1

N-(1-tert-butyl-2-chlorovinylthio)bis(trimethylsilyl)amine

Conditions
ConditionsYield
In tetrahydrofuran 1.) -78 deg C, 15 min, 2.) -78 deg C to room temperature;95%
ytterbium(II) iodide

ytterbium(II) iodide

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

(Yb(NSiMe3)(μ-SiMe3))2

(Yb(NSiMe3)(μ-SiMe3))2

Conditions
ConditionsYield
In diethyl ether absence of air and moisture; addn. of 2 equiv. of ligand to YbI2 (0°C), stirring (1 h), warming to room temp., stirring (16 h, pptn.), filtration, solvent removal from filtrate (vac.); drying (20°C, 1E-2 Torr, 2 days);95%
sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

tris(bis(trimethylsilyl)amido)europium(III)

tris(bis(trimethylsilyl)amido)europium(III)

phenylacetylene
536-74-3

phenylacetylene

[Na(C4H8O)Eu(N(Si(CH3)3)2)3(CCC6H5)]

[Na(C4H8O)Eu(N(Si(CH3)3)2)3(CCC6H5)]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: NH(SiMe3)2; dry atm.; molar ratio 1:1:1, stirring (-78°C, 2 h), warming (roomtemp.); evapn. (vac.); elem. anal.;95%
tris(bis(trimethylsilylamido))cerium(III)
41836-21-9

tris(bis(trimethylsilylamido))cerium(III)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

phenylacetylene
536-74-3

phenylacetylene

[Na(C4H8O)Ce(N(Si(CH3)3)2)3(CCC6H5)]

[Na(C4H8O)Ce(N(Si(CH3)3)2)3(CCC6H5)]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: NH(SiMe3)2; dry atm.; molar ratio 1:1:1, stirring (-78°C, 2 h), warming (roomtemp.); evapn. (vac.); elem. anal.;95%
sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

tris(bistrimethylsilylamine)scandium(III)

tris(bistrimethylsilylamine)scandium(III)

[(C4H8O)3NaCH2Sc(N(Si(CH3)3)2)2N(Si(CH3)3)Si(CH3)2]

[(C4H8O)3NaCH2Sc(N(Si(CH3)3)2)2N(Si(CH3)3)Si(CH3)2]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: HN(SiMe3)2; Ar atm.; equimolar ratio, refluxing (2 d); evapn. (dryness, vac.); elem. anal.;95%
sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

tris(bistrimethylsilylamine)scandium(III)

tris(bistrimethylsilylamine)scandium(III)

diphenylamine
122-39-4

diphenylamine

Na(1+)*Sc(3+)*2C4H8O*2(C6H5)2N(1-)*2((CH3)3Si)2N(1-)=[(C4H8O)2Na((C6H5)2N)2Sc(N(Si(CH3)3)2)2]

Na(1+)*Sc(3+)*2C4H8O*2(C6H5)2N(1-)*2((CH3)3Si)2N(1-)=[(C4H8O)2Na((C6H5)2N)2Sc(N(Si(CH3)3)2)2]

Conditions
ConditionsYield
In tetrahydrofuran byproducts: LiCl, NH(SiMe3)2; Ar atm.; molar ratio Sc salt:Na salt:HNPh2 1:1:2, stirring; evapn. (after 6 h, vac. (2 h, 1E-4 torr)); elem. anal.;95%
tetrahydrofuran
109-99-9

tetrahydrofuran

2-tert-Butylphenol
88-18-6

2-tert-Butylphenol

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

[(THF)Na(μ3-o-tert-butylphenol)]4*THF

[(THF)Na(μ3-o-tert-butylphenol)]4*THF

Conditions
ConditionsYield
for 12h; Glovebox; Inert atmosphere;94.4%
methylenebis(dichlorophosphine)
28240-68-8

methylenebis(dichlorophosphine)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

C19H55N3P2Si6
78463-59-9

C19H55N3P2Si6

Conditions
ConditionsYield
In diethyl ether94%
sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

CH2(P(Cl)(N(Si(CH3)3)2))2

CH2(P(Cl)(N(Si(CH3)3)2))2

C19H55N3P2Si6
78463-59-9

C19H55N3P2Si6

Conditions
ConditionsYield
In diethyl ether94%
bis(pentafluorophenyl)boron chloride
2720-03-8

bis(pentafluorophenyl)boron chloride

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

N-(bis(perfluorophenyl)boraneyl)-1,1,1-trimethyl-N-(trimethylsilyl)silanamine
201163-50-0

N-(bis(perfluorophenyl)boraneyl)-1,1,1-trimethyl-N-(trimethylsilyl)silanamine

Conditions
ConditionsYield
In toluene byproducts: NaCl; N2-atmosphere; stirring (room temp., 30 min); evapn., extg. (pentane), crystn. on concg. (5°C); elem. anal.;94%
bis(bis(trimethylsilyl)amido)zinc(II)

bis(bis(trimethylsilyl)amido)zinc(II)

(1,4,7,10-tetraoxacyclododecane)
294-93-9

(1,4,7,10-tetraoxacyclododecane)

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

[Na((CH2CH2O)4)2](1+)*[Zn(N(Si(CH3)3)2)3](1-)=[Na((CH2CH2O)4)2][Zn(N(Si(CH3)3)2)3]

[Na((CH2CH2O)4)2](1+)*[Zn(N(Si(CH3)3)2)3](1-)=[Na((CH2CH2O)4)2][Zn(N(Si(CH3)3)2)3]

Conditions
ConditionsYield
In toluene Ar atm.; stirring (20°C, 5 min+2 d); filtn., washing (n-hexane), drying (vac.); elem. anal.;94%
tBuIr2N

tBuIr2N

sodium hexamethyldisilazane
1070-89-9

sodium hexamethyldisilazane

tBuIr2N-Na+

tBuIr2N-Na+

Conditions
ConditionsYield
In tetrahydrofuran at 20℃; for 0.333333h; Inert atmosphere;94%

1070-89-9Relevant articles and documents

Ln(II)/Pb(II)-Ln(III)/Pb(0) Redox Approach toward Rare-Earth-Metal Half-Sandwich Complexes

Bienfait, André M.,Wolf, Benjamin M.,T?rnroos, Karl W.,Anwander, Reiner

, p. 5734 - 5744 (2015)

The divalent bis(trimethylsilyl)amide complexes Ln[N(SiMe3)2]2(THF)2 (Ln = Sm, Yb) react with 0.5 equiv of lead(II) pentamethylcyclopentadienide, Cp?2Pb (Cp? = C5Me5), in n-hexane to form the half-sandwich complexes Cp?Ln[N(SiMe3)2]2 (Ln = Sm, Yb) in almost quantitative yield. The same reaction performed with Eu[N(SiMe3)2]2(THF)2 resulted in the cocrystallization of the sandwich complex Cp?2Eu[N(SiMe3)2] and homoleptic Eu[N(SiMe3)2]3. The divalent bis(dimethylsilyl)amide complexes Ln{[μ-N(SiHMe2)2]2Ln[N(SiHMe2)2](THF)}2 (Ln = Sm, Yb) react with 1.5 equiv of Cp?2Pb in n-hexane/THF to form the half-sandwich complexes Cp?Ln[N(SiHMe2)2]2(THF) (Ln = Sm, Yb). The corresponding europium reaction did not provide any crystalline material. Treatment of divalent Eu[N(SiMe3)2]2(THF)2 with 2 equiv of 3-tert-butyl-5-methylpyrazole (HpztBu,Me) in THF generates [(pztBu,Me)Eu(μ-pztBu,Me)(THF)2]2. Oxidation of the europium(II) pyrazolate complex with 1 equiv of Cp?2Pb in THF afforded Cp?Eu(μ-pztBu,Me)2(THF)2. The tetramethylaluminate compounds {Ln(AlMe4)2}n (Ln = Sm, Yb) react with 0.5 equiv of PbCp?2 in n-hexane to produce mixtures of half-sandwich and metallocene complexes Cp?Ln(AlMe4)2 and [Cp?2Ln(μ-AlMe4)]2, respectively. The attempted oxidation of {Eu(AlMe4)2}n led to the formation of {Cp?Eu(AlMe4)}, which could be crystallized from THF to give polymeric {Cp?Eu(μ-AlMe4)(THF)3}n. The reaction of chloro-contaminated {Sm(AlMe4)2}n with 2 equiv of HCp? performed in THF led to the isolation of the unexpected mixed chloride methylidene complex [Cp?3Sm3(μ2-Cl)3(μ3-Cl)(μ3-CH2)(THF)3]. Reacting {Yb(AlEt4)2}n with 0.5 equiv of Cp?2Pb in n-hexane gave a mixture of products, from which Cp?2Yb(AlEt4) was identified. Performing the same reaction in toluene in the presence of diethyl ether resulted in the formation of the divalent metathesis product Cp?Yb(AlEt4)(Et2O)2.

Monodentate coordination of the normally chelating chiral diamine (R,R)-TMCDA

Ojeda-Amador, Ana I.,Martínez-Martínez, Antonio J.,Kennedy, Alan. R.,Armstrong, David R.,O'Hara, Charles T.

, p. 324 - 327 (2017)

After isolating an unusual binuclear, but monosolvated NaHMDS complex [{(R,R)-TMCDA}·(NaHMDS)2]∞ which polymerises via intermolecular electrostatic Na...MeHMDS interactions, further (R,R)-TMCDA was added to produce the dis

Unusual redox chemistry of ytterbium carbazole-bis(oxazoline) compounds: Oxidative coupling of primary phosphines by an ytterbium carbazole- bis(oxazoline) dialkyl

Zou, Jin,Berg, David J.,Oliver, Allen,Twamley, Brendan

, p. 6532 - 6540 (2013)

The 1,8-bis(4′,4′-dimethyloxazolin-2′-yl)-3,6-di-tert- butylcarbazole anion (Czx) forms monomeric, six-coordinate halide complexes of Yb(II), (Czx)Yb(X)(THF)2 (X = I (2), Cl (3)), by metathesis of YbX2 with NaCzx (1) or Na/Hg reduction of (Czx)Yb(Cl) 2(THF). The crystal structure of 1 reveals a polymeric chain structure in which the oxazoline ring bridges to the Na+ of an adjacent unit. The iodo complex 2 serves as a precursor to divalent silylamide, alkyl, and phosphide complexes, (Czx)Yb(X)(THF)n (4, X = N(SiMe 3)2, n = 1; 5, X = CH(SiMe3)2, n = 1; 7a, X = 2,4,6-Me3C6H2PH, n = 2; 7b, X = 2,4,6-Pri3C6H2PH, n = 2). The X-ray structure of 4 reveals a distorted-trigonal-bipyramidal geometry with the Czx ligand occupying two axial sites and one equatorial site in a pseudo-mer coordination mode. In contrast to the typical metathesis chemistry observed with LiCH(SiMe3)2, an unusual oxidation occurs when 2 or 3 is treated with LiCH2SiMe3 to generate the previously isolated trivalent alkyl (Czx)Yb(CH2SiMe3)2. Trivalent Yb complexes with the Czx ligand also display unusual redox chemistry: rapid reduction to the Yb(II) phosphides 7a,b is observed on treatment of mer,cis-(Czx)Yb(Cl)2(THF) with ArPH- Na+ (6a,b) or, equivalently, on treatment of (Czx)Yb(CH2SiMe3) 2 with ArPH2. In both cases, oxidative coupling of the phosphide or phosphine was observed to form meso- and rac-biphosphines, ArPH-PHAr (Ar = 2,4,6-Me3C6H2 (9a), 2,4,6-Pri3C6H2 (9b)).

Migration of trimethylsilyl group in the reaction of sodium bis(trimethylsilyl)amide with bromobenzene

Lis,Tsyrendorzhieva,Albanov,Rakhlin,Voronkov

, p. 1451 - 1453 (2013)

The reaction of sodium bis(trimethylsilyl)amide with bromobenzene gave a mixture of N,N-bis-(trimethylsilyl)aniline and N,2-bis(trimethylsilyl)aniline, the latter being a rearrangement product formed via 1,3-migration of trimethylsilyl group from the nitrogen atom to the ortho-carbon atom in the benzene ring.

β-Oxo-δ-diimine Nickel Complexes: A Comparison of Tautomeric Active Species in Ethylene Polymerization Catalysis

Chiu, Hsin-Chun,Pearce, Adam J.,Dunn, Peter L.,Cramer, Christopher J.,Tonks, Ian A.

, p. 2076 - 2085 (2016)

A series of mono- and bimetallic Ni alkyl complexes of a β-oxo-δ-diimine (BODDI) ligand are reported. The monometallic complexes have a second binding pocket, of which the free "arm" can exist as either an enamine (e.g., 8, BODEI, β-oxo-δ-enamineiminato) or imine (e.g., 3, BODII, β-oxo-δ-imineiminato) tautomer. The identity of the tautomer in the secondary Ni coordination sphere has a significant effect on ethylene polymerization behavior: the enamine tautomer, which hydrogen bonds to the central O atom and is in conjugation with the N,O backbone chelate, is significantly more electron rich and yields a much lower molecular weight polymer than the imine tautomer, which rotates away from Ni to a distal position and has little effect on polymerization. Deprotonation of the second binding pocket with M(HMDS) (M = Li, Na, K) yields the Ni-alkali metal heterobimetallic complexes 3Li, 3Na, and 3K. The deprotonated alkali metal enamides display ethylene polymerization behavior similar to the neutral imine complex because the enamide arm can also distally rotate to minimize interaction with the Ni coordination sphere upon activation.

Method of continuous variation: Characterization of alkali metal enolates using 1h and 19F NMR spectroscopies

Tomasevich, Laura L.,Collum, David B.

, p. 9710 - 9718 (2014)

The method of continuous variation in conjunction with 1H and 19F NMR spectroscopies was used to characterize lithium and sodium enolates solvated by N,N,N,N-tetramethylethyldiamine (TMEDA) and tetrahydrofuran (THF). A strategy developed using lithium enolates was then applied to the more challenging sodium enolates. A number of sodium enolates solvated by TMEDA or THF afford exclusively tetramers. Evidence suggests that TMEDA chelates sodium on cubic tetramers.

Coordination of isocyanide and reduction of cyclooctatetraene by a homoleptic uranium(III) aryloxide, and characterisation of the heteroleptic uranium(III) dimer [{U(N″)2(thf)(μ-I)}2]

Mansell, Stephen M.,Arnold, Polly L.

, p. 82 - 87 (2016)

[U(ODtbp)3] (ODtbp?=?O-2,6-tBu2C6H3) reacts in a 1:1 ratio with the isocyanide CN-Xyl (Xyl?=?2,6-Me2C6H3) to form the pseudo-tetrahedral 4-coordinate adduct [U(CNXyl)(ODtbp)3] with νCN24?cm?1higher compared to the free isocyanide. Uranium(III) complexes with bulky ligands UX3(X: ODtbp, N″?=?N(SiMe3)2) react with cyclooctatetraene (COT) in a 2:1 U:COT ratio to generate the half-sandwich UIV[U(COT)X2] and [UX4] (which for X?=?N″ spontaneously converts into the more stable metallacycle [U(N″)2{κ2-N(SiMe3)SiMe2CH2}] and HN″), as opposed to the other potential product, the inverse COT-sandwich [(UX2)2(μ-COT)]. The heteroleptic UIIIamido-iodide [{U(N″)2(thf)(μ-I)}2] can be isolated in a low yield (14%) from the 2:1 reaction of KN″ and [UI3(thf)4] in thf, and its molecular structure was shown to be dimeric with iodine atoms bridging the U centres.

New UIII and UIV silylamides and an improved synthesis of NaN(SiMe2R)2 (R = Me, Ph)

Mansell, Stephen M.,Perandones, Bernabé Fernandez,Arnold, Polly L.

, p. 2814 - 2821 (2010)

It is shown that the deprotonation of bulky amides such as HN(SiMe 2Ph)2 may be accelerated by the use of catalytic quantities of an alkali metal tert-butoxide salt, affording, for example, overnight syntheses of NaN(SiMe2Ph)2. The new uranium(IV) and uranium(III) complexes [U{N(SiMe2H)2}4] and [U{N(SiMe2Ph)2}3] are both accessible from the Group 1 salts of the amides and UI3(thf)4 in thf. The choice of sodium or potassium salt made no difference to the reaction outcome. Both exhibit Weak interactions between uranium and with silyl-H or silyl-Ph groups in the solid-state.

Ketone Enolization with Sodium Hexamethyldisilazide: Solvent- And Substrate-Dependent E- Z Selectivity and Affiliated Mechanisms

Collum, David B.,Woltornist, Ryan A.

, p. 17452 - 17464 (2021/11/04)

Ketone enolization by sodium hexamethyldisilazide (NaHMDS) shows a marked solvent and substrate dependence. Enolization of 2-methyl-3-pentanone reveals E-Z selectivities in Et3N/toluene (20:1), methyl-t-butyl ether (MTBE, 10:1), N,N,N′,N″,N″-pentamethyldiethylenetriamine (PMDTA)/toluene (8:1), TMEDA/toluene (4:1), diglyme (1:1), DME (1:22), and tetrahydrofuran (THF) (1:90). Control experiments show slow or nonexistent stereochemical equilibration in all solvents except THF. Enolate trapping with Me3SiCl/Et3N requires warming to -40 °C whereas Me3SiOTf reacts within seconds. In situ enolate trapping at -78 °C using preformed NaHMDS/Me3SiCl mixtures is effective in Et3N/toluene yet fails in THF by forming (Me3Si)3N. Rate studies show enolization via mono- and disolvated dimers in Et3N/toluene, disolvated dimers in TMEDA, trisolvated monomers in THF/toluene, and free ions with PMDTA. Density functional theory computations explore the selectivities via the E- and Z-based transition structures. Failures of theory-experiment correlations of ionic fragments were considerable even when isodesmic comparisons could have canceled electron correlation errors. Swapping 2-methyl-3-pentanone with a close isostere, 2-methylcyclohexanone, causes a fundamental change in the mechanism to a trisolvated-monomer-based enolization in THF.

Extended 2,5-diazaphosphole oxides: Promising electron-acceptor building blocks for π-conjugated organic materials

Linder, Thomas,Sutherland, Todd C.,Baumgartner, Thomas

supporting information; experimental part, p. 7101 - 7105 (2010/09/14)

(Chemical equation presented) BTD makeover-phosphorus edition: Replacing the sulfur atom in πextended 2,1,3-benzo[c]thiadiazoles (BTD) by a phosphoryl group affords the materials with improved electronacceptor properties. The significantly lower reduction potentials and competitive electron-transfer rates make the new diazaphosphole oxides excellent candidates for application in π-conjugated organic materials (see figure).

Post a RFQ

Enter 15 to 2000 letters.Word count: 0 letters

Attach files(File Format: Jpeg, Jpg, Gif, Png, PDF, PPT, Zip, Rar,Word or Excel Maximum File Size: 3MB)

1

What can I do for you?
Get Best Price

Get Best Price for 1070-89-9