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Dive into the research topics where Pengcheng Zheng is active.

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Featured researches published by Pengcheng Zheng.


Nature Communications | 2015

Carbon-carbon bond activation of cyclobutenones enabled by the addition of chiral organocatalyst to ketone

Bao-Sheng Li; Yuhuang Wang; Zhichao Jin; Pengcheng Zheng; Rakesh Ganguly; Yonggui Robin Chi

The activation of carbon–carbon (C–C) bonds is an effective strategy in building functional molecules. The C–C bond activation is typically accomplished via metal catalysis, with which high levels of enantioselectivity are difficult to achieve due to high reactivity of metal catalysts and the metal-bound intermediates. It remains largely unexplored to use organocatalysis for C–C bond activation. Here we describe an organocatalytic activation of C–C bonds through the addition of an NHC to a ketone moiety that initiates a C–C single bond cleavage as a key step to generate an NHC-bound intermediate for chemo- and stereo-selective reactions. This reaction constitutes an asymmetric functionalization of cyclobutenones using organocatalysts via a C–C bond activation process. Structurally diverse and multicyclic compounds could be obtained with high optical purities via an atom and redox economic process.


Nature Communications | 2014

Metal and carbene organocatalytic relay activation of alkynes for stereoselective reactions

Kayambu Namitharan; Tingshun Zhu; Jiajia Cheng; Pengcheng Zheng; Xiangyang Li; Song Yang; Bao-An Song; Yonggui Robin Chi

Transition metal and organic catalysts have established their own domains of excellence. It has been expected that merging the two unique domains should provide complimentary or unprecedented opportunities in converting simple raw materials to functional products. N-heterocyclic carbenes alone are excellent organocatalysts. When used with transition metals such as copper, N-heterocyclic carbenes are routinely practiced as strong-coordinating ligands. Combination of an N-heterocyclic carbene and copper therefore typically leads to deactivation of either or both of the two catalysts. Here we disclose the direct merge of copper as a metal catalyst and N-heterocyclic carbenes as an organocatalyst for relay activation of alkynes. The reaction involves copper-catalysed activation of alkynes to generate ketenimine intermediates that are subsequently activated by an N-heterocyclic carbene organocatalyst for stereoselective reactions. Each of the two catalysts (copper metal catalyst and N-heterocyclic carbene organocatalyst) accomplishes its own missions in the activation steps without quenching each other.


Angewandte Chemie | 2015

Aminomethylation of Enals through Carbene and Acid Cooperative Catalysis: Concise Access to β2-Amino Acids†

Jianfeng Xu; Xingkuan Chen; Ming Wang; Pengcheng Zheng; Bao-An Song; Yonggui Robin Chi

A convergent, organocatalytic asymmetric aminomethylation of α,β-unsaturated aldehydes by N-heterocyclic carbene (NHC) and (in situ generated) Brønsted acid cooperative catalysis is disclosed. The catalytically generated conjugated acid from the base plays dual roles in promoting the formation of azolium enolate intermediate, formaldehyde-derived iminium ion (as an electrophilic reactant), and methanol (as a nucleophilic reactant). This redox-neutral strategy is suitable for the scalable synthesis of enantiomerically enriched β(2) -amino acids bearing various substituents.


Angewandte Chemie | 2014

β-functionalization of carboxylic anhydrides with β-alkyl substituents through carbene organocatalysis

Zhichao Jin; Shaojin Chen; Yuhuang Wang; Pengcheng Zheng; Song Yang; Yonggui Robin Chi

The first NHC-catalyzed functionalization of carboxylic anhydrides is described. In this reaction, the β carbon behaves as a nucleophilic carbon and undergoes asymmetric reactions with electrophiles. Anhydrides with challenging β-alkyl substituents work effectively.


Nature Communications | 2014

Benzene construction via organocatalytic formal [3+3] cycloaddition reaction

Tingshun Zhu; Pengcheng Zheng; Chengli Mou; Song Yang; Bao-An Song; Yonggui Robin Chi

The benzene unit, in its substituted forms, is a most common scaffold in natural products, bioactive molecules and polymer materials. Nearly 80% of the 200 best selling small molecule drugs contain at least one benzene moiety. Not surprisingly, the synthesis of substituted benzenes receives constant attentions. At present, the dominant methods use pre-existing benzene framework to install substituents by using conventional functional group manipulations or transition metal-catalyzed carbon-hydrogen bond activations. These otherwise impressive approaches require multiple synthetic steps and are ineffective from both economic and environmental perspectives. Here we report an efficient method for the synthesis of substituted benzene molecules. Instead of relying on pre-existing aromatic rings, here we construct the benzene core through a carbene-catalyzed formal [3+3] reaction. Given the simplicity and high efficiency, we expect this strategy to be of wide use especially for large scale preparation of biomedicals and functional materials.


Angewandte Chemie | 2016

Enantioselective Nucleophilic β‐Carbon‐Atom Amination of Enals: Carbene‐Catalyzed Formal [3+2] Reactions

Xingxing Wu; Bin Liu; Yuexia Zhang; Martin Jeret; Honglin Wang; Pengcheng Zheng; Song Yang; Bao-An Song; Yonggui Robin Chi

An enantioselective β-carbon amination for enals is disclosed. The nitrogen atom from a protected hydrazine with suitable electronic properties readily behaves as a nucleophile. Addition of the nitrogen nucleophile to a catalytically generated N-heterocyclic-carbene-bound α,β-unsaturated acyl azolium intermediate constructs a new carbon-nitrogen bond asymmetrically. The pyrazolidinone products from our catalytic reactions are common scaffolds in bioactive molecules, and can be easily transformed into useful compounds such as β(3) -amino-acid derivatives.


Chemistry: A European Journal | 2015

Nucleophilic β-carbon activation of propionic acid as a 3-carbon synthon by carbene organocatalysis

Zhichao Jin; Ke Jiang; Zhenqian Fu; Jaume Torres; Pengcheng Zheng; Song Yang; Bao-An Song; Yonggui Robin Chi

Direct β-carbon activation of propionic acid (C2H5CO2H) by carbene organocatalysis has been developed. This activation affords the smallest azolium homoenolate intermediate (without any substituent) as a 3-carbon nucleophile for enantioselective reactions. Propionic acid is an excellent raw material because it is cheap, stable, and safe. This approach provides a much better solution to azolium homoenolate synthesis than the previously established use of acrolein (enal without any substituent), which is expensive, unstable, and toxic.


Chemistry: A European Journal | 2015

Oxidative N‐Heterocyclic Carbene‐Catalyzed γ‐Carbon Addition of Enals to Imines: Mechanistic Studies and Access to Antimicrobial Compounds

Pengcheng Zheng; Jiajia Cheng; Shihu Su; Zhichao Jin; Yuhuang Wang; Song Yang; Linhong Jin; Bao-An Song; Yonggui Robin Chi

The reaction mechanism of the γ-carbon addition of enal to imine under oxidative N-heterocyclic carbene catalysis is studied experimentally. The oxidation, γ-carbon deprotonation, and nucleophilic addition of γ-carbon to imine were found to be facile steps. The results of our study also provide highly enantioselective access to tricyclic sulfonyl amides that exhibit interesting antimicrobial activities against X. oryzae, a bacterium that causes bacterial disease in rice growing.


Nature Communications | 2017

A reaction mode of carbene-catalysed aryl aldehyde activation and induced phenol OH functionalization

Xingkuan Chen; Hongling Wang; Kazuki Doitomi; Chong Yih Ooi; Pengcheng Zheng; Wangsheng Liu; Hao Guo; Song Yang; Bao-An Song; Hajime Hirao; Yonggui Robin Chi

The research in the field of asymmetric carbene organic catalysis has primarily focused on the activation of carbon atoms in non-aromatic scaffolds. Here we report a reaction mode of carbene catalysis that allows for aromatic aldehyde activation and remote oxygen atom functionalization. The addition of a carbene catalyst to the aldehyde moiety of 2-hydroxyl aryl aldehyde eventually enables dearomatization and remote OH activation. The catalytic process generates a type of carbene-derived intermediate with an oxygen atom as the reactive centre. Inexpensive achiral urea co-catalyst works cooperatively with the carbene catalyst, leading to consistent enhancement of the reaction enantioselectivity. Given the wide presence of aromatic moieties and heteroatoms in natural products and synthetic functional molecules, we expect our reaction mode to significantly expand the power of carbene catalysis in asymmetric chemical synthesis.


Journal of Organic Chemistry | 2017

Carbene-Catalyzed Indole 3-Methyl C(sp3)–H Bond Functionalization

Jian Cheng; Jun Sun; Jiekuan Yan; Song Yang; Pengcheng Zheng; Zhichao Jin; Yonggui Robin Chi

The metal-free catalytic functionalization of aromatic sp2-carbons and benzylic sp3-carbons remains challenging. Here we report a carbene-catalyzed functionalization of the 3-methyl sp3-carbon attached to 2-formyl-indoles. The reaction proceeds through an NHC-bound o-quinodimethane as the key intermediate generated from 2-formyl-3-methylindoles under oxidative conditions. Reactive ketones are found to be effective substrates to produce substituted hydropyrano[3,4-b]indoles in good to excellent yields.

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Yonggui Robin Chi

Nanyang Technological University

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Tingshun Zhu

Chinese Academy of Sciences

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Yuhuang Wang

Nanyang Technological University

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Chengli Mou

Guiyang College of Traditional Chinese Medicine

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