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Hyunwoo Kim

Pohang University of Science and Technology · 化学

研究室紹介

Professor Hyunwoo Kim's research lab specializes in the development of innovative electrocatalytic methodologies for the selective and sustainable synthesis of pharmaceutically relevant molecules. The lab focuses on leveraging electricity and transition metal catalysis—particularly cobalt and copper systems—to enable challenging C–H and C–C bond transformations with high chemoselectivity and functional group tolerance. Key research directions include the electrochemical synthesis of nitrogen- and oxygen-containing heterocycles, difluoromethylation of unsaturated systems, and the construction of complex molecular architectures under mild conditions.

electrocatalysisdifluoromethylationC–H functionalizationheterocycle synthesisradical-polar crossover

Research Overview

Papers
20
Total Citations
358
Papers (5y)
20
Primary Field
化学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
20total
2021
2022
2023
2024
2025
Citations per year (5y)
358total
20212022202320242025

Selected Papers

15
1
Article|99 citations·2023
Electrocatalytic Access to Azetidines via Intramolecular Allylic Hydroamination: Scrutinizing Key Oxidation Steps through Electrochemical Kinetic Analysis
Steve Park, Geunsu Bae, Ahhyeon Choi, Suyeon Shin, Kwangmin Shin, Chang Hyuck Choi, Hyunwoo Kim
SJR Q1Journal of the American Chemical Society

Azetidines are prominent structural scaffolds in bioactive molecules, medicinal chemistry, and ligand design for transition metals. However, state-of-the-art methods cannot be applied to intramolecular hydroamination of allylic amine derivatives despite their underlying potential as one of the most prevalent synthetic precursors to azetidines. Herein, we report an electrocatalytic method for intramolecular hydroamination of allylic sulfonamides to access azetidines for the first time. The merger

Organic ChemistryChemistry
2
Article|77 citations·2022
Electrocatalytic Radical-Polar Crossover Hydroetherification of Alkenes with Phenols
Steve Park, Jieun Jang, Kwangmin Shin, Hyunwoo Kim
SJR Q1ACS Catalysis

We disclose a general electrocatalytic hydroetherification for modular synthesis of alkyl aryl ethers by utilizing a wide range of alkenes and phenols. The integration of the two involves an electrochemically instigated cobalt-hydride-catalyzed radical-polar crossover of alkenes that enable the generation of key cationic intermediates, which could readily be entrapped by challenging nucleophilic phenols. We highlight the importance of precise control of the reaction potential by electrochemistry

Organic ChemistryChemistry
3
Article|52 citations·2021
Electrochemically driven stereoselective approach to syn -1,2-diol derivatives from vinylarenes and DMF
Da Sol Chung, Steve Park, Sang‐gi Lee, Hyunwoo Kim
SJR Q1Chemical ScienceOA

An electrochemical method that provides an operationally simple synthesis of masked <italic>syn</italic> -1,2-diols from styrenes and DMF has reported. The TFA ion is engaged in the formation of a key intermediate, which gives rise predominantly to <italic>syn</italic> -selectivity.

Organic ChemistryChemistry
4
Article|26 citations·2024
Cu-Electrocatalysis Enables Vicinal Bis(difluoromethylation) of Alkenes: Unraveling Dichotomous Role of Zn(CF2H)2(DMPU)2 as Both Radical and Anion Source
Seonyoung Kim, Hyunwoo Kim
SJR Q1Journal of the American Chemical Society

The difluoromethyl group (CF 2 H) serves as an essential bioisostere in drug discovery campaigns according to Lipinski’s Rule of 5 due to its advantageous combination of lipophilicity and hydrogen bonding ability, thereby improving the ADME properties. However, despite the high prevalence and importance of vicinal hydrogen bond donors in pharmaceutical agents, a general synthetic method for doubly difluoromethylated compounds in the vicinal position is absent. Here we describe a copper-electroca

Pharmaceutical SciencePharmacology, Toxicology and Pharmaceutics
5
Article|25 citations·2022
Radical hydrodifluoromethylation of unsaturated C−C bonds via an electroreductively triggered two-pronged approach
Seonyoung Kim, Keon Ha Hwang, Hyeong Gyu Park, Jaesung Kwak, Hyuk Lee, Hyunwoo Kim
SJR Q1Communications ChemistryOA

Abstract Due to its superior ability in controlling pharmaceutical activity, the installation of difluoromethyl (CF 2 H) functionality into organic molecules has been an area of intensive research. In this context, difluoromethylation of C−C π bonds mediated by a CF 2 H radical have been pursued as a central strategy to grant access to difluoromethylated hydrocarbons. However, early precedents necessitate the generation of oxidative chemical species that can limit the generality and utility of t

Pharmaceutical SciencePharmacology, Toxicology and Pharmaceutics
6
Article|23 citations·2025
Electrochemical Access to Difluoromethyl Groups: An Overview of Scope, Mechanisms, and Challenges
Seonyoung Kim, Hyunwoo Kim
SJR Q1ACS Catalysis

The difluoromethyl (−CF 2 H) group has gained considerable significance in synthetic and medicinal chemistry due to its ability to modulate molecular properties, including electronic effects and hydrogen-bonding capability. Traditional difluoromethylation methods often require specialized reagents and demanding reaction conditions, potentially limiting their applicability across diverse substrates. Electrochemical difluoromethylation has emerged as an alternative approach that enables the in sit

Pharmaceutical SciencePharmacology, Toxicology and Pharmaceutics
7
Article|14 citations·2021
Synthesis of 1H-Indazoles via Silver(I)-Mediated Intramolecular Oxidative C–H Bond Amination
Areum Park, Kyu‐Sung Jeong, Hyuk Lee, Hyunwoo Kim
SJR Q1ACS OmegaOA

We described a silver(I)-mediated intramolecular oxidative C-H amination that enables the construction of assorted 1<i>H</i>-indazoles that are widely applicable in medicinal chemistry. The developed amination was found to be efficient for the synthesis of a variety of 3-substituted indazoles that are otherwise difficult to be synthesized by other means of C-H aminations. Preliminary mechanistic studies suggested that the current amination proceeds via single electron transfer (SET) mediated by

Organic ChemistryChemistry
8
Article|14 citations·2024
Electrocatalytic radical-polar crossover hydrofunctionalization of alkenes via cobalt-catalyzed hydrogen atom transfer
Ahhyeon Choi, Hyunwoo Kim
SJR Q1Current Opinion in Electrochemistry
Renewable Energy, Sustainability and the EnvironmentEnergy
9
Article|7 citations·2024
Access to 4‐Membered Heterocycles via Visible‐Light Triggered Intramolecular Cyclization from Alkynes: Bypassing Unfavorable 4‐endo‐dig Cyclization
Arun Sharma, Ahhyeon Choi, Daniel Yim, Hyungjun Kim, Hyunwoo Kim
SJR Q1Advanced Synthesis & CatalysisOA

Abstract We describe a catalyst, oxidant, and coupling‐reagent free strategy to access 4‐membered heterocycles, representing a unique example of visible‐light triggered intramolecular cyclization of propargylic alcohols and amines to access oxetanones and azetidinones respectively. Despite the direct 4‐endo‐dig cyclization from these starting materials has proven to be unfavorable, the formation of key p ‐quinone methide intermediacy allows an efficient bypass for regioselective 4‐exo‐trig cycli

Organic ChemistryChemistry
10
Article|6 citations·2023
Electroreductive Access to 1,2-Aminoalcohols via Cross Aza-Pinacol Coupling of N-Acyl Diarylketimines and Aldehydes
Dongmin Kwak, Se-Hwa Jung, Hyeonbin Ha, Taedong Han, Do Hyun Ryu, Hyunwoo Kim, Jaesung Kwak
SJR Q1Organic Letters

We present highly efficient and operationally simple synthetic methods for 1,2-aminoalcohols via electroreductive cross aza-pinacol coupling between N -acyl diarylketimines and aldehydes. Preliminary mechanistic studies including cyclic voltammetry and density functional theory (DFT) calculations suggest that the reaction is instigated by selective electrochemical single electron transfer (SET) of N -acylketimines. The developed electrochemical protocol is compatible to biorelevant functional gr

Organic ChemistryChemistry
11
Article|5 citations·2024
Electrooxidative Pd-Catalyzed Remote Hydrofunctionalization of Alkenes with Nucleophiles
Seungdae Park, Baeho Yang, Do‐Hyun Lee, Hyunwoo Kim, Kwangmin Shin
SJR Q1ACS Catalysis

The catalytic hydrofunctionalization of alkenes with nucleophiles via the generation of carbocationic intermediates has been extensively studied as an efficient strategy for the regioselective installation of functional groups on alkene feedstocks. However, since the established methods are confined to functionalization of the position where the alkene is originally located, it is highly desirable to develop a broadly applicable catalytic hydrofunctionalization platform that offers an alternativ

Organic ChemistryChemistry
12
Article|5 citations·2025
Photon-Primed Organic Electrosynthesis Enabled by Oxidation of Photon-Induced Intermediates
Ahhyeon Choi, Doyeon Kim, Daniel Yim, Jungjin Park, Arun Dev Sharma, Woojae Kim, Hyungjun Kim, Hyunwoo Kim
SJR Q1Journal of the American Chemical Society

We present a catalyst-free strategy that combines photochemical and electrochemical activation to unlock unique reactivity in otherwise less reactive molecules. Photochemical excitation generates intermediates that can undergo electrochemical oxidation to form highly electrophilic species that can engage weak nucleophiles, enabling the synthesis of diverse heterocycles under mild conditions. Mechanistic studies, including voltammetric, spectroscopic, and computational analyses, suggest that a li

Organic ChemistryChemistry
13
Article|3 citations·2024
A photoelectrocatalytic system as a reaction platform for selective radical–radical coupling
Sunghwan Won, Dongmin Park, Yousung Jung, Hyunwoo Kim, Taek Dong Chung
SJR Q1Chemical ScienceOA

The selection of electrode material is a critical factor that determines the selectivity of electrochemical organic reactions. However, the fundamental principles governing this relationship are still largely unexplored. Herein, we demonstrate a photoelectrocatalytic (PEC) system as a promising reaction platform for the selective radical-radical coupling reaction owing to the inherent charge-transfer properties of photoelectrocatalysis. As a model reaction, the radical trifluoromethylation of ar

Renewable Energy, Sustainability and the EnvironmentEnergy
14
Preprint|1 citations·2024
Photoelectrocatalytic System as a Reaction Platform for Selective Radical–Radical Coupling
Sunghwan Won, Dongmin Park, Yousung Jung, Hyunwoo Kim, Taek Dong Chung
ChemRxivOA

The selection of electrode material is a critical factor that determines the selectivity of electrochemical organic reactions. However, the fundamental principles governing this relationship are still largely unexplored. Herein, we demonstrate a photoelectrocatalytic (PEC) system as a promising reaction platform for the selective radical–radical coupling reaction owing to the inherent charge-transfer properties of photoelectrocatalysis. As a model reaction, the radical trifluoromethylation of ar

Organic ChemistryChemistry
15
Preprint|1 citations·2022
Electrocatalytic Radical-Polar Crossover Hydroetherification of Alkenes with Phenols
Steve Park, Jieun Jang, Kwangmin Shin, Hyunwoo Kim
ChemRxivOA

We disclose a general electrocatalytic hydroetherfication for modular synthesis of alkyl aryl ethers by utilizing a wide range of alkenes and phenols. The integration of the two involves an electrochemically instigated cobalt-hydride catalyzed radical–polar crossover of alkenes that enables the generation of key cationic intermediates, which could readily be entrapped by challenging nucleophilic phenols. We highlight the importance of precise control of the reaction potential by electrochemistry

Organic ChemistryChemistry

Research Areas

Organic ChemistryPharmaceutical ScienceRenewable Energy, Sustainability and the Environment

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