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WoS每周论文推送(2024.03.16-2024.03.22)

发布时间:2024-03-22

Web of Science

中国科学院上海有机化学研究所在2024.03.16-2024.03.22期间共发表了10篇SCI-E论文。
  • Wu, Zhuo; Li, Muzi; Gu, Qing; You, Shu-Li*

    ORGANIC LETTERS

    Asymmetric C-H trifluoromethylalkylation represents a novel and straightforward synthetic method for the construction of chiral CF3-containing compounds. However, the reported examples remain limited, given the challenges of reactivity and enantioselective control. Herein, we report a SCpRh(III)-catalyzed asymmetric aryl and alkenyl C-H trifluoromethylalkylation reaction with beta-trifluoromethyl-alpha,beta-unsaturated ketones. The chiral CF3-bearing adducts were obtained in moderate to good yields with high enantioselectivity (up to 81% yield and 96% ee). The reaction features mild conditions and broad substrate scope. The chiral CF3-bearing products could undergo diverse functional group transformations.

  • Ouyang, Yao; Qing, Feng-Ling*

    JOURNAL OF ORGANIC CHEMISTRY

    The emergence of photocatalysis has greatly advanced radical fluoroalkylation reactions. Central to this advancement is the introduction and refinement of radical reagents, which play a pivotal role in driving these reactions forward. Intriguingly, some of these reagents, previously not recognized for their radical properties, have emerged as key players in this area. In this Perspective, we provide an overview of four representative reagents pioneered by our laboratory, which have subsequently garnered extensive application in broader research contexts, including difluorocarbene precursors bromodifluoromethylphosphonium bromide, electrophilic sulfonylation reagent triflic anhydride, and nucleophilic trifluoromethylation reagent methyl fluorosulfonyldifluoroacetate (Chen's reagent). The integration of phosphonium reagents, triflic anhydride, and methyl fluorosulfonyldifluoroacetate into photocatalysis has enabled some unexpected reactivities and now notably expanded the capabilities in radical difluoromethylation, trifluoromethylation, and difluoroalkylation. Our discussion highlights how these atypical reagents have enriched the toolkit available for radical fluoroalkylations, offering insights that could inspire future research and application in this area.

  • Cen, Ke; Bao, Jiajing; Wang, Xudong; Tian, Hailong; Wang, Yun; Gui, Jinghan*

    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY

    Aspersteroids A and B are novel ergostane-type 18,22-cyclosterols with immunosuppressive and antimicrobial activities. Herein, we report the first synthesis of these two natural products, which was accomplished in 15 and 14 steps, respectively, from commercially available ergosterol by means of a bioinspired divergent approach. Key features of this synthesis include an unprecedented radical relay cyclization that was initiated by iron(II)-mediated decomposition of an alkyl hydroperoxide to construct the E ring cyclopentane motif; a titanium(III)-mediated diastereoselective radical reduction of an epoxide to install the challenging C22 stereocenter; and highly regioselective, divergent late-stage oxidations to access the highly oxidized core framework.

  • Song, Hao; Li, Muzi; You, Shu-Li*

    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY

    Ru/Cu dual catalysis has been applied for Z-retentive asymmetric allylic substitution reactions of aldimine esters. This reaction provides an enantioselective synthesis of chiral Z-olefins in high yields (up to 91% yield) with excellent enantioselectivity (up to 98% ee) under mild conditions. The previously unreacted trisubstituted allylic electrophiles under Ir catalytic system are found to be compatible, affording the stereoretentive products in either Z- or E-form. Both linear and branched allylic electrophiles are suitable substrates with excellent reaction outcomes. Notably, Ru and Cu complexes are added in one-pot and simplifies the manipulation of this protocol and self-sorting phenomena could be observed in this Ru/Cu dual catalytic system.

  • Chen, Hongda; Yang, Wenhan; Zhang, Jinyu; Lu, Bin; Wang, Xiaoming*

    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY

    Cooperative bimetallic catalysis to access novel reactivities is a powerful strategy for reaction development in transition-metal-catalyzed chemistry. Particularly, elucidation of the evolution of two transition-metal catalysts and understanding their roles in dual catalysis are among the most fundamental goals for bimetallic catalysis. Herein, a novel three-component reaction of a terminal alkyne, a diazo ester, and an allylic carbonate was successfully developed via cooperative Cu/Rh catalysis with Xantphos as the ligand, providing a highly efficient strategy to access 1,5-enynes with an all-carbon quaternary center that can be used as immediate synthetic precursors for complex cyclic molecules. Notably, a Meyer-Schuster rearrangement was involved in the reactions using propargylic alcohols, resulting in an unprecedented acylation-allylation of carbenes. Mechanistic studies suggested that in the course of the reaction Cu(I) species might aggregate to some types of Cu clusters and nanoparticles (NPs), while the Rh(II)(2) precursor can dissociate to mono-Rh species, wherein Cu NPs are proposed to be responsible for the alkynylation of carbenes and work in cooperation with Xantphos-coordinated dirhodium(II) or Rh(I)-catalyzed allylic alkylation.

  • Yu, Ziqi; Shi, Min*; Wei, Yin*

    MOLECULES

    Rhodium-catalyzed cycloaddition reactions are a powerful tool for the construction of polycyclic compounds. Combined experimental and DFT studies were used to investigate the temperature-controlled chemoselectivity of cationic rhodium-catalyzed intramolecular cycloaddition reactions of ene-vinylidenecyclopropanes. After a series of mechanistic studies, it was found that trace amounts of water in the reaction system play an important role in generating the product with endo double bond located on a five-membered ring and revealed that trace amounts of water in the reaction system, including the rhodium catalyst, substrate and solvent, were sufficient to promote the formation of the product with endo double bond located on a five-membered ring, and additional water could not further accelerate the reaction. DFT calculation results show that the addition of water indeed significantly lowers the energy barrier of the proton transfer step, making the formation of the product with endo double bond located on a five-membered ring more likely to occur and confirming the rationality of water-assisted proton transfer occurring in the selective access to the product with endo double bond located on a five-membered ring.

  • Su, Yuming; Du, Xinghao; Fu, Boyi; Wang, Guangming; Piao*, Xixi; Wang*, Guoxiang; Zhang, Kaka*

    ACS MATERIALS LETTERS

    Benzophenone, a well-known phosphorescence emitter, features near-unity intersystem crossing efficiency but shows a short phosphorescence lifetime of only 0.1-1 ms because of significant n-pi* transition character in its T-1 state. Here we report benzophenone derivatives that maintain high intersystem crossing efficiency and disrupt the n-pi* transition's contribution to their T-1 states, giving the emergence of a 2.0 s long phosphorescence lifetime under ambient conditions. Aromatic electron-donating substituents with low T-1 energy levels are selected to build benzophenone derivatives. Consequently, the benzophenone derivatives' T-1 states exhibit major localized excitation character from aromatic substituents and minor n-pi* transition character. The modulation of electronic conjugation and dihedral angles between the benzophenone group and the aromatic substituent have been found to further disrupt the n-pi* transition of the benzophenone derivatives' T-1 states. After doping into rigid matrices, the resultant room-temperature phosphorescence materials display bright afterglow, exhibit excellent processability into diverse shapes, function as donors to form long-wavelength afterglow materials via energy transfer, and show aqueous dispersity enabled by emulsion polymerization and potential bioapplication.

  • Cai, Shaokun; Tang, Hong; Li, Bo; Shao, Yingbo; Zhang, Danqi; Zheng, Hanliang; Qiao, Tianjiao; Chu, Xin; He, Gang; Xue, Xiao-Song*; Chen, Gong*

    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY

    The ability of alkylamines to spontaneously liberate hydride ions is typically restrained, except under specific intramolecular reaction settings. Herein, we demonstrate that this reactivity can be unlocked through simple treatment with formaldehyde in hexafluoroisopropanol (HFIP) solvent, thereby enabling various intermolecular hydride transfer reactions of alkylamines under mild conditions. Besides transformations of small molecules, these reactions enable unique late-stage modification of complex peptides. Mechanistic investigations uncover that the key to these intermolecular hydride transfer processes lies in the accommodating conformation of solvent-mediated macrocyclic transition states, where the aggregates of HFIP molecules act as dexterous proton shuttles. Importantly, negative hyperconjugation between the lone electron pair of nitrogen and the antibonding orbital of amine's alpha C-H bond plays a critical role in the C-H activation, promoting its hydride liberation.

  • Dong, Jiaxing; Leng, Xuebing; Wang, Dongyang*; Deng, Liang*

    ACS CATALYSIS

    Transition-metal-catalyzed cyclization/hydrosilylation of 1,6-diynes is a useful method for the preparation of five-membered ring-fused silyl dienes that are useful reagents in organic synthesis. Only a handful of noble metal catalysts facilitating this transformation are known, and nonprecious metal catalysts effecting the reaction have remained elusive. Herein, we report that low-coordinate Co(0)-N-heterocyclic carbene complexes can catalyze the cyclization/hydrosilylation of 1,6-diynes with tertiary and secondary hydrosilanes, furnishing five-membered ring-fused (Z)-1-silyldienes in good yields and excellent stereoselectivity. Mechanistic study disclosed that the catalytic cycle likely has oxidative cyclization of 1,6-diynes with Co(0) species as the key step. This mechanism accounts for the high stereoselectivity and absence of uncyclized hydrosilylation byproducts in the cobalt-catalyzed cyclization/hydrosilylation reaction, which is different from the hydrosilylation-cyclization mechanism of the noble metal-catalyzed reactions.

  • Bao, Wenjing; Gu, Guangxing; Wu, Jian; Gu, Yu-Cheng; Zhao, Yanchuan*

    ANALYTICAL CHEMISTRY

    The surge in applications of nitrile compounds across diverse fields, such as pharmaceuticals, agrochemicals, dyes, and functional materials, necessitates the development of rapid and efficient detection and identification methods. In this study, we introduce a chemosensing strategy employing a novel F-19-labeled probe, facilitating swift and accurate analysis of a broad spectrum of nitrile-containing analytes. This approach leverages the reversible interaction between the F-19-labeled probe and the analytes to produce chromatogram-like outputs, ensuring the precise identification of various pharmaceuticals and pesticides within complex matrices. Additionally, this dynamic system offers a versatile platform to investigate through-space F-19-F-19 interactions, showcasing its potential for future applications in mechanistic studies.


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