1310329-63-5Relevant academic research and scientific papers
Cobaloxime Catalysis: selective synthesis of alkenylphosphine oxides under visible light
Liu, Wen-Qiang,Lei, Tao,Zhou, Shuai,Yang, Xiu-Long,Li, Jian,Chen, Bin,Sivaguru, Jayaraman,Tung, Chen-Ho,Wu, Li-Zhu
, p. 13941 - 13947 (2019/09/30)
Direct activation of H-phosphine oxide to react with an unsaturated carbon-carbon bond is a straightforward approach for accessing alkenylphosphine oxides, which shows significant applications in both synthetic and material fields. However, expensive metals and strong oxidants are typically required to realize the transformation. Here, we demonstrate the utility of earth-abundant cobaloxime to convert H-phosphine oxide into its reactive radical species under visible light irradiation. The radical species thus generated can be utilized to functionalize alkenes and alkynes without any external photosensitizer and oxidant. The coupling with terminal alkene generates E-alkenylphosphine oxide with excellent chemo- A nd stereoselectivity. The reaction with terminal alkyne yields linear E-alkenylphosphine oxide via neutral radical addition, while addition with internal ones generates cyclic benzophosphine oxides and hydrogen. Mechanistic studies on radical trapping experiments, electron spin resonance studies, and spectroscopic measurements confirm the formation of phosphinoyl radical and cobalt intermediates that are from capturing the electron and proton eliminated from H-phosphine oxide. The highlight of our mechanistic investigation is the dual role played by cobaloxime, viz., both as the visible light absorber to activate the P(O)-H bond as well as a hydrogen transfer agent to influence the reaction pathway. This synergetic feature of the cobaloxime catalyst preforming multiple functions under ambient condition provides a convergent synthetic approach to vinylphosphine oxides directly from H-phosphine oxides and alkenes (or alkynes).
Cobaloxime Catalysis: Selective Synthesis of Alkenylphosphine Oxides under Visible Light
Liu, Wen-Qiang,Lei, Tao,Zhou, Shuai,Yang, Xiu-Long,Li, Jian,Chen, Bin,Sivaguru, Jayaraman,Tung, Chen-Ho,Wu, Li-Zhu
, p. 13941 - 13947 (2019/09/30)
Direct activation of H-phosphine oxide to react with an unsaturated carbon-carbon bond is a straightforward approach for accessing alkenylphosphine oxides, which shows significant applications in both synthetic and material fields. However, expensive metals and strong oxidants are typically required to realize the transformation. Here, we demonstrate the utility of earth-abundant cobaloxime to convert H-phosphine oxide into its reactive radical species under visible light irradiation. The radical species thus generated can be utilized to functionalize alkenes and alkynes without any external photosensitizer and oxidant. The coupling with terminal alkene generates E-alkenylphosphine oxide with excellent chemo- and stereoselectivity. The reaction with terminal alkyne yields linear E-alkenylphosphine oxide via neutral radical addition, while addition with internal ones generates cyclic benzophosphine oxides and hydrogen. Mechanistic studies on radical trapping experiments, electron spin resonance studies, and spectroscopic measurements confirm the formation of phosphinoyl radical and cobalt intermediates that are from capturing the electron and proton eliminated from H-phosphine oxide. The highlight of our mechanistic investigation is the dual role played by cobaloxime, viz., both as the visible light absorber to activate the P(O)-H bond as well as a hydrogen transfer agent to influence the reaction pathway. This synergetic feature of the cobaloxime catalyst preforming multiple functions under ambient condition provides a convergent synthetic approach to vinylphosphine oxides directly from H-phosphine oxides and alkenes (or alkynes).
Ceric(IV) Ammonium Nitrate Mediated Phosphorylation of Alkenes: Easy Access to (E)-Vinylphosphonates
Shen, Jian,Yu, Rui-Xiao,Luo, Yan,Zhu, Li-Xuan,Zhang, Yue,Wang, Xue,Xiao, Bo,Cheng, Jian-Bo,Yang, Bin,Li, Gui-Zhi
supporting information, p. 2065 - 2070 (2019/03/07)
An inexpensive Ceric(IV) ammonium nitrate mediated phosphorylation of alkenes has been developed. Without adding expensive metals and other additives, various (E)-alkenylphosphane oxides are obtained through an easy route in a one-pot manner. Preliminary
Transition-metal-free C-P bond formation via decarboxylative phosphorylation of cinnamic acids with P(O)H compounds
Liu, Lixin,Zhou, Dan,Dong, Jianyu,Zhou, Yongbo,Yin, Shuang-Feng,Han, Li-Biao
, p. 4190 - 4196 (2018/04/14)
A novel, transition-metal-free phosphorylation of cinnamic acids with P(O)H compounds has been developed via radical-promoted decarboxylation under mild conditions. This method provides simple, efficient, and versatile access to valuable (E)-alkenylphosphine oxides in satisfactory yields with a wide variety of substrates.
Preparation method of alkenyl diphenylphosphine compound
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Paragraph 0034; 0035; 0036; 0037; 0041; 0042, (2018/11/03)
The invention discloses a preparation method of an alkenyl diphenylphosphine compound. The method adopts a derivative of aryl ethylene and diphenylphosphine oxide as initial raw materials, under the protection of nitrogen, ceric ammonium nitrate is also added, a molar ratio of the derivative of aryl ethylene to diphenylphosphine oxide to ceric ammonium nitrate is (2 to 3): 1: (1 to 3), the concentration of the solution is 0.2 mol/L (relative to the diphenylphosphine oxide) by adding an organic solvent, then the mixed solution reacts for 6 hours at the reaction temperature of 40 DEG C, then thetemperature increases to 90 DEG C to react for 12 hours until the reaction is ended, the solvent is removed in a rotary evaporation manner, and the alkenyl diphenylphosphine compound is obtained by virtue of column chromatography. The method of the invention is simple in reaction system, easy in obtaining the initial raw materials, convenient in operation, and wider in substrate applicability.
Copper-catalyzed decarboxylative C-P cross-coupling of alkynyl acids with H-phosphine oxides: A facile and selective synthesis of (E)-1-alkenylphosphine oxides
Hu, Gaobo,Gao, Yuxing,Zhao, Yufen
supporting information, p. 4464 - 4467 (2015/01/08)
A novel and efficient copper-catalyzed decarboxylative cross-coupling of alkynyl acids for the stereoselective synthesis of E-alkenylphosphine oxides has been developed. In the presence of 10 mol % of CuCl without added ligand, base, and additive, various alkynyl acids reacted with H-phosphine oxides to afford E-alkenylphosphine oxides with operational simplicity, broad substrate scope, and the stereoselectivity for E-isomers.
Copper-catalyzed C-P coupling through decarboxylation
Hu, Jie,Zhao, Ning,Yang, Bin,Wang, Ge,Guo, Li-Na,Liang, Yong-Min,Yang, Shang-Dong
supporting information; experimental part, p. 5516 - 5521 (2011/06/21)
An acid for a phosphine: A versatile protocol for preparation of various di(phenyl)phosphoryl oxides was developed by copper-catalyzed decarboxylative coupling of alkenyl, alkynyl carboxylic acids, and N-benzylproline, respectively, with R2P(O)
