Cheng-Liang Zhu
Georgia State University
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Publication
Featured researches published by Cheng-Liang Zhu.
Journal of the American Chemical Society | 2014
Deng-Fu Lu; Cheng-Liang Zhu; Zhen-Xin Jia; Hao Xu
An iron-catalyzed diastereoselective intermolecular olefin amino-oxygenation reaction is reported, which proceeds via an iron-nitrenoid generated by the N–O bond cleavage of a functionalized hydroxylamine. In this reaction, a bench-stable hydroxylamine derivative is used as the amination reagent and oxidant. This method tolerates a range of synthetically valuable substrates that have been all incompatible with existing amino-oxygenation methods. It can also provide amino alcohol derivatives with regio- and stereochemical arrays complementary to known amino-oxygenation methods.
Chemical Science | 2013
Deng-Fu Lu; Cheng-Liang Zhu; Hao Xu
A diastereoselective 1,4-hydroxytrifluoromethylation of dienes is catalyzed by copper cyanide–phosphine complexes. This reaction is significantly accelerated by bulky monodentate phosphines, and the discovery enables expedient access to a variety of CF3-containing allylic alcohol derivatives.
Organic Letters | 2014
Deng-Fu Lu; Guan-Sai Liu; Cheng-Liang Zhu; Bo Yuan; Hao Xu
An iron(II)-catalyzed diastereoselective olefin aminofluorination is reported (dr up to >20:1). This new transformation applies a functionalized hydroxylamine and Et3N·3HF as the nitrogen and fluorine source, which facilitates the efficient synthesis of β-fluoro primary amines and amino acids from allylic alcohol derivatives. Preliminary mechanistic studies reveal that an iron-nitrenoid is a possible intermediate and that its reactivity and enantioselectivity can be efficiently modulated by ligands.
Journal of the American Chemical Society | 2016
Deng-Fu Lu; Cheng-Liang Zhu; Jeffrey D. Sears; Hao Xu
We herein report a new catalytic method for intermolecular olefin aminofluorination using earth-abundant iron catalysts and nucleophilic fluoride ion. This method tolerates a broad range of unfunctionalized olefins, especially nonstyrenyl olefins that are incompatible with existing olefin aminofluorination methods. This new iron-catalyzed process directly converts readily available olefins to internal vicinal fluoro carbamates with high regioselectivity (N vs F), many of which are difficult to prepare using known methods. Preliminary mechanistic studies demonstrate that it is possible to exert asymmetric induction using chiral iron catalysts and that both an iron-nitrenoid and carbocation species may be reactive intermediates.
Synthesis | 2016
Cheng-Liang Zhu; Deng-Fu Lu; Jeffrey Sears; Zhen-Xin Jia; Hao Xu
A set of practical synthetic procedures for the iron-catalyzed intermolecular olefin aminohydroxylation reactions in gram scale is reported. In these transformations, a bench-stable functionalized hydroxylamine is applied as the amination reagent. This method is compatible with a broad range of synthetically valuable olefins including those that are incompatible with the existing aminohydroxylation methods. It also provides valuable amino alcohol building blocks with regio- and stereo-chemical arrays that are complementary to known methods.
Journal of the American Chemical Society | 2018
Hongze Li; Shou-Jie Shen; Cheng-Liang Zhu; Hao Xu
We herein report a gram-scale, enantioselective synthesis of Tamiflu, in which the key trans-diamino moiety has been efficiently installed via an iron-catalyzed stereoselective olefin diazidation. This significantly improved, iron-catalyzed method is uniquely effective for highly functionalized yet electronically deactivated substrates that have been previously problematic. Preliminary catalyst structure-reactivity-stereoselectivity relationship studies revealed that both the iron catalyst and the complex substrate cooperatively modulate the stereoselectivity for diazidation. Safety assessment using both differential scanning calorimetry (DSC) and the drop weight test (DWT) has also demonstrated the feasibility of carrying out this iron-catalyzed olefin diazidation for large-scale Tamiflu synthesis.
ACS Catalysis | 2018
Cheng-Liang Zhu; Cheng Wang; Qi-Xue Qin; Sam Yruegas; Caleb D. Martin; Hao Xu
We report herein an iron-catalyzed azidotrifluoromethylation method for expedient vicinal trifluoromethyl primary-amine synthesis. This method is effective for a broad range of olefins and N-heterocycles, and it facilitates efficient synthesis of a wide variety of vicinal trifluoromethyl primary amines, including those that prove difficult to synthesize with existing approaches. Our preliminary mechanistic studies revealed that the catalyst-promoted azido-group transfer proceeds through a carbo-radical instead of a carbocation species. Characterization of an active iron catalyst through X-ray crystallographic studies suggests that in situ generated, structurally novel iron-azide complexes promote the oxidant activation and selective azido-group transfer.
ACS Catalysis | 2018
Shou-Jie Shen; Cheng-Liang Zhu; Deng-Fu Lu; Hao Xu
We herein report an iron-catalyzed direct diazidation method via activation of bench-stable peroxyesters promoted by nitrogen-based ligands. This method is effective for a broad range of olefins and N-heterocycles, including those that are difficult substrates for the existing olefin diamination and diazidation methods. Notably, nearly a stoichiometric amount of oxidant and TMSN3 are sufficient for high-yielding diazidation for most substrates. Preliminary mechanistic studies elucidated the similarities and differences between this method and the benziodoxole-based olefin diazidation method previously developed by us. This method effectively addresses the limitations of the existing olefin diazidation methods. Most notably, previously problematic nonproductive oxidant decomposition can be minimized. Furthermore, X-ray crystallographic studies suggest that an iron-azide-ligand complex can be generated in situ from an iron acetate precatalyst and that it may facilitate peroxyester activation and the rate-determining C-N3 bond formation during diazidation of unstrained olefins.
Chemical Science | 2015
Cheng-Liang Zhu; Jun-Shan Tian; Zhen-Yuan Gu; Guo-Wen Xing; Hao Xu
Synthesis | 2015
Jun-Shan Tian; Cheng-Liang Zhu; Yun-Rong Chen; Hao Xu