Sarah Yunmi Lee
연세대학교 화학과 · 화학
Sarah Yunmi Lee 교수의 연구실은 주로 촉매를 이용한 고도로 선택적인 유기합성 반응을 중심으로 연구를 전개하고 있습니다. 특히 산화적, 비대칭 촉매 반응을 통해 복잡한 유기구조체, 특히 희토류 원소나 플루오르인 경우를 포함한 다핵심성 중심을 가진 화합물의 효능적인 합성을 목표로 하고 있습니다. 최근에는 동역학적 비대칭 분리, 비효율적 반응의 촉매적 재편, 다핵심성 중심 생성을 위한 이중 촉매 체계 개발 등에 주력하고 있습니다. 이는 약물화학 및 자연물 합성에서 중요한 구조를 효율적으로 확보하는 데 기여하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
We describe a method for the site-selective construction of a C(aryl)-C(sp<sup>3</sup>) bond by the palladium-catalyzed direct allylation of arenes with allylic pivalates in the presence of AgOPiv to afford the linear (E)-allylated arene with excellent regioselectivity; this reaction occurs with arenes that have not undergone site-selective and stereoselective direct allylation previously, such as monofluorobenzenes and non-fluorinated arenes. Mechanistic studies indicate that AgOPiv ligated by
Substantial progress has been described in the development of asymmetric variants of the phosphine-catalyzed intermolecular [3+2] annulation of allenes with alkenes; however, there have not been corresponding advances for the intramolecular process, which can generate a higher level of complexity (an additional ring and stereocenter(s)). In this study, we describe the application of chiral phosphepine catalysts to address this challenge, thereby providing access to useful scaffolds that are foun
Because of the ubiquity of the secondary carbinol subunit, the development of new methods for its enantioselective synthesis remains an important ongoing challenge. In this report, we describe the first nonenzymatic method for the dynamic kinetic resolution (DKR) of secondary alcohols (specifically, aryl alkyl carbinols) through enantioselective acylation, and we substantially expand the scope of this approach, vis-à-vis enzymatic reactions. Simply combining an effective process for the kinetic
The catalytic asymmetric synthesis of alkyl fluorides, particularly α-fluorocarbonyl compounds, has been the focus of substantial effort in recent years. While significant progress has been described in the formation of enantioenriched secondary alkyl fluorides, advances in the generation of tertiary alkyl fluorides have been more limited. Here, we describe a method for the catalytic asymmetric coupling of aryl alkyl ketenes with commercially available N-fluorodibenzenesulfonimide (NFSI) and C6F
Despite advances in the field of asymmetric catalysis, the synthesis of complete sets of stereoisomers in multistereogenic molecules, particularly those incorporating a fluorine atom, remains a challenging task. We report, herein, a stereodivergent method for the synthesis of tertiary alkyl fluorides in vicinal stereogenic pairs through the conjugate addition of α-fluoro azaaryl acetamides to α,β-unsaturated aldehydes catalyzed by the combination of two chiral catalysts: a copper Lewis acid and
We report herein a Lewis acid-catalyzed nucleophilic double-addition of indoles to ketones under mild conditions. This process occurs with various ketones ranging from dialkyl ketones to diaryl ketones, thereby providing access to an array of bis(indolyl)methanes bearing all-carbon quaternary centers, including tetra-aryl carbon centers. The products can be transformed into bis(indole)-fused polycyclics and bis(indolyl)alkenes.
Chiral 1-pyrrolines containing a nitrile motif serve as crucial structural scaffolds in biologically active molecules and exhibit diversity as building blocks owing to their valuable functional groups; however, the asymmetric synthesis of such compounds remains largely unexplored. Herein, we present an enantio- and diastereoselective method for the synthesis of α-chiral nitrile-containing 1-pyrroline derivatives bearing vicinal stereocenters through the design and introduction of chiral cyclopro
We report herein a Lewis pair-catalyzed process for the regio- and stereoselective addition of secondary phosphine oxides (SPOs) to allenoates. A Lewis pair composed of B(C6F5)3 and P(4-OMeC6H4)3 dissociates into a free acid and base under reaction conditions, thereby creating key reaction intermediates that enable the atom-economical generation of an array of alkenylphosphorus building blocks. Mechanistic studies indicate that this process proceeds through a catalytic cycle wherein the deproton
We report the boron-catalyzed hydrophosphinylation of N-heteroaryl-substituted alkenes with secondary phosphine oxides that furnishes various phosphorus-containing N-heterocycles. This process proceeds under mild conditions and enables the introduction of a phosphorus atom into multisubstituted alkenylazaarenes. The available mechanistic data can be explained by a reaction pathway wherein the C–P bond is created by the reaction between the activated alkene (by coordination to a boron catalyst) a
Catalytic cross-couplings of tertiary alkyl electrophiles with carbon nucleophiles offer a powerful platform for constructing quaternary carbon centers, which are prevalent in bioactive molecules. However, these reactions remain underdeveloped primarily because of steric challenges that impede efficient bond formation. Herein, we describe the copper-catalyzed synthesis of such centers through the C(<i>sp</i><sup>3</sup>)-C(<i>sp</i><sup>2</sup>) bond-forming reaction between tertiary alkyl halid
Abstract The catalytic synthesis of chiral azaarenes has become a focal point of research due to their signifi`1cant applications across various fields, including medicinal chemistry and materials science. α‐Azaaryl carbonyl compounds, featuring both an electron‐withdrawing C=N moiety within an azaarene core and a carbonyl functional group, have proven to be versatile precursors in the synthesis of stereochemically intricate azaaryl molecules. In particular, the generation of chiral α‐azaaryl en
Cu( ii ) Lewis acid/Brønsted base catalysis was employed to achieve enantio - and diastereoselective conjugate additions of pyridyl alkyl ketones to enones, resulting in the formation of various 1,5-diketones with vicinal stereocenters.
Abstract A simple protocol employing the chiral phosphine catalysts (I) is presented for the synthesis of diquinane, fused pyrrolidine, coumarine, and quinoline derivatives.
Antennas used in extreme environments, such as space, underwater, and high-temperature settings, face significant challenges in terms of durability, performance, and reliability. Traditional materials may not withstand the harsh conditions present in these environments, leading to the need for advanced materials that can provide enhanced performance and longevity. This article discusses new materials that are being developed for antennas used in extreme environments, including metamaterials, car
Abstract The reaction can be scaled up.