추천 제품
Quality Level
분석
97%
형태
liquid
반응 적합성
reaction type: Buchwald-Hartwig Cross Coupling Reaction
reaction type: Heck Reaction
reaction type: Hiyama Coupling
reaction type: Negishi Coupling
reaction type: Sonogashira Coupling
reaction type: Stille Coupling
reaction type: Suzuki-Miyaura Coupling
reagent type: ligand
refractive index
n20/D 1.468 (lit.)
bp
284-291 °C/50 mmHg (lit.)
density
0.831 g/mL at 25 °C (lit.)
작용기
phosphine
SMILES string
CCCCCCCCP(CCCCCCCC)CCCCCCCC
InChI
1S/C24H51P/c1-4-7-10-13-16-19-22-25(23-20-17-14-11-8-5-2)24-21-18-15-12-9-6-3/h4-24H2,1-3H3
InChI key
RMZAYIKUYWXQPB-UHFFFAOYSA-N
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일반 설명
Trioctylphosphine serves as a phosphorus source and used in the synthesis of metal nanoparticles.
애플리케이션
Trioctylphosphine can be used for the conversion of metal nanocrystals, bulk powders, foils, wires, thin films to metal phosphides. It can also act as a solvent and stabilizer for synthesizing cadmium sulfide nanorods from cadmium acetate and sulfur.
신호어
Danger
유해 및 위험 성명서
Hazard Classifications
Eye Dam. 1 - Skin Corr. 1B
Storage Class Code
8A - Combustible corrosive hazardous materials
WGK
WGK 2
Flash Point (°F)
296.6 °F - closed cup
Flash Point (°C)
147 °C - closed cup
이미 열람한 고객
Trioctylphosphine: a general phosphorus source for the low-temperature conversion of metals into metal phosphides.
Chemistry of Materials, 19(17), 4234-4242 (2007)
Palladium (ii)-complexes of bi-and tri-dentate phosphine ligands: precursor for palladium--phosphorous nanoparticles and activity towards Suzuki--Miyaura coupling
New. J. Chem., 47, 4218-4227 (2023)
Trioctylphosphine as both solvent and stabilizer to synthesize CdS nanorods.
Nanoscale Research Letters, 4(10), 1159-1159 (2009)
EJNMMI physics, 7(1), 22-22 (2020-04-24)
For multicenter clinical studies, PET/CT and SPECT/CT scanners need to be validated to ensure comparability between various scanner types and brands. This validation is usually performed using hollow phantoms filled with radioactive liquids. In recent years, 3D printing technology has
ACS nano, 11(10), 10430-10438 (2017-09-16)
We examine the effects of CdS shell growth on photochemical reduction of colloidal CdSe quantum dots (QDs) and describe the spectroscopic properties of the resulting n-type CdSe/CdS QDs. CdS shell growth greatly slows electron trapping. Because of this improvement, complete
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