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Yoonsu Park

Korea Advanced Institute of Science and Technology · 材料科学

研究室紹介

Professor Yoonsu Park's research lab specializes in transition metal-catalyzed C–H functionalization, with a primary focus on the development of sustainable and selective methods for C–N bond formation. The lab explores innovative catalytic systems—particularly based on late transition metals like Rh(III) and Ir(III)—to enable direct amidation of inert C–H bonds using novel, safe, and efficient amidating agents such as 1,4,2-dioxazol-5-ones. A key direction involves mechanistic studies combining experimental and computational approaches to understand reaction pathways and improve selectivity. The lab also emphasizes practical aspects, including operational safety, green solvent use, and scalability, aiming to translate fundamental discoveries into industrially viable processes.

C–H amidationtransition metal catalysismechanistic studies1,4,2-dioxazol-5-onesustainable synthesis

Research Overview

Papers
138
Total Citations
6,180
Papers (5y)
47
Primary Field
材料科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
47total
2022
2023
2024
2025
2026
Citations per year (5y)
488total
20222023202420252026

Selected Papers

15
1
Review|2,130 citations·2017
Transition Metal-Catalyzed C–H Amination: Scope, Mechanism, and Applications
Yoonsu Park, Youyoung Kim, Sukbok Chang
SJR Q1Chemical Reviews

Catalytic transformation of ubiquitous C-H bonds into valuable C-N bonds offers an efficient synthetic approach to construct N-functionalized molecules. Over the last few decades, transition metal catalysis has been repeatedly proven to be a powerful tool for the direct conversion of cheap hydrocarbons to synthetically versatile amino-containing compounds. This Review comprehensively highlights recent advances in intra- and intermolecular C-H amination reactions utilizing late transition metal-b

Organic ChemistryChemistry
2
Article|429 citations·2015
Mechanistic Studies on the Rh(III)-Mediated Amido Transfer Process Leading to Robust C–H Amination with a New Type of Amidating Reagent
Yoonsu Park, Kyung Tae Park, Jeung Gon Kim, Sukbok Chang
SJR Q1Journal of the American Chemical Society

Mechanistic investigations on the Cp*Rh(III)-catalyzed direct C-H amination reaction led us to reveal the new utility of 1,4,2-dioxazol-5-one and its derivatives as highly efficient amino sources. Stepwise analysis on the C-N bond-forming process showed that competitive binding of rhodium metal center to amidating reagent or substrate is closely related to the reaction efficiency. In this line, 1,4,2-dioxazol-5-ones were observed to have a strong affinity to the cationic Rh(III) giving rise to d

Organic ChemistryChemistry
3
Article|380 citations·2018
Selective formation of γ-lactams via C–H amidation enabled by tailored iridium catalysts
Seung Youn Hong, Yoonsu Park, Yeongyu Hwang, Yeong Bum Kim, Mu‐Hyun Baik, Sukbok Chang
SJR Q1Science

Guiding nitrenes away from a migration Nitrogen conventionally shares its electrons in three bonds with one or more partners. A singly bonded nitrogen, or nitrene, is exceptionally reactive and can insert itself into normally inert C–H bonds. If the nitrene forms next to a carbonyl center, though, it tends to react with the C–C bond on the other side instead. Hong et al. used theory to guide the design of an iridium catalyst that inhibits this rearrangement, steering the nitrene toward C–H inser

Organic ChemistryChemistry
4
Article|232 citations·2014
Calibration between Color Camera and 3D LIDAR Instruments with a Polygonal Planar Board
Yoonsu Park, Seokmin Yun, Chee Sun Won, Kyungeun Cho, Kyhyun Um, Sungdae Sim
SJR Q1SensorsOA

Calibration between color camera and 3D Light Detection And Ranging (LIDAR) equipment is an essential process for data fusion. The goal of this paper is to improve the calibration accuracy between a camera and a 3D LIDAR. In particular, we are interested in calibrating a low resolution 3D LIDAR with a relatively small number of vertical sensors. Our goal is achieved by employing a new methodology for the calibration board, which exploits 2D-3D correspondences. The 3D corresponding points are est

Aerospace EngineeringEngineering
5
Article|201 citations·2019
Asymmetric formation of γ-lactams via C–H amidation enabled by chiral hydrogen-bond-donor catalysts
Yoonsu Park, Sukbok Chang
SJR Q1Nature Catalysis
Organic ChemistryChemistry
6
Article|159 citations·2016
Why is the Ir(III)-Mediated Amido Transfer Much Faster Than the Rh(III)-Mediated Reaction? A Combined Experimental and Computational Study
Yoonsu Park, Joon Heo, Mu‐Hyun Baik, Sukbok Chang
SJR Q1Journal of the American Chemical Society

The mechanism of the Ir(III)- and Rh(III)-mediated C-N coupling reaction, which is the key step for catalytic C-H amidation, was investigated in an integrated experimental and computational study. Novel amidating agents containing a 1,4,2-dioxazole moiety allowed for designing a stoichiometric version of the catalytic C-N coupling reaction and giving access to reaction intermediates that reveal details about each step of the reaction. Both DFT and kinetic studies strongly point to a mechanism wh

Organic ChemistryChemistry
7
Article|137 citations·2015
Study of Sustainability and Scalability in the Cp*Rh(III)-Catalyzed Direct C–H Amidation with 1,4,2-Dioxazol-5-ones
Yoonsu Park, Soyeon Jee, Jeung Gon Kim, Sukbok Chang
SJR Q1Organic Process Research & DevelopmentOA

High Resolution Image Download MS PowerPoint Slide The practical aspects of Cp*Rh(III)-catalyzed direct C–H amidation with 1,4,2-dioxazol-5-ones were investigated on the operational safety, use of green solvent, and scalability. Differential scanning calorimeter (DSC) measurement showed that 3-phenyl-1,4,2-dioxazol-5-one is thermally stable while benzoyl azide, a conventionally employed precursor of acyl nitrene, rapidly decomposes to isocyanate. It was confirmed that the replacement of acyl azi

Organic ChemistryChemistry
8
Article|66 citations·2019
Harnessing Secondary Coordination Sphere Interactions That Enable the Selective Amidation of Benzylic C–H Bonds
Hoimin Jung, Malte L. Schrader, Dongwook Kim, Mu‐Hyun Baik, Yoonsu Park, Sukbok Chang
SJR Q1Journal of the American Chemical Society

Engineering site-selectivity is highly desirable especially in C-H functionalization reactions. We report a new catalyst platform that is highly selective for the amidation of benzylic C-H bonds controlled by π-π interactions in the secondary coordination sphere. Mechanistic understanding of the previously developed iridium catalysts that showed poor regioselectivity gave rise to the recognition that the π-cloud of an aromatic fragment on the substrate can act as a formal directing group through

Organic ChemistryChemistry
9
Article|62 citations·2021
Visible light enables catalytic formation of weak chemical bonds with molecular hydrogen
Yoonsu Park, Sangmin Kim, Lei Tian, Hongyu Zhong, Gregory D. Scholes, Paul J. Chirik
SJR Q1Nature ChemistryOA
Inorganic ChemistryChemistry
10
Article|45 citations·2017
Quantifying Structural Effects of Amino Acid Ligands in Pd(II)-Catalyzed Enantioselective C–H Functionalization Reactions
Yoonsu Park, Zachary L. Niemeyer, Jin‐Quan Yu, Matthew S. Sigman
SJR Q2Organometallics

Delineating complex ligand effects on enantioselectivity is a longstanding challenge in asymmetric catalysis. With α-amino acid ligands, the essential difficulty lies in accurately describing integrated perturbations induced by simultaneous variation about the α side chain and N protecting group of the ligand, which hampers an intuitive understanding of the structure–enantioselectivity relationships. To deconvolute such complexity in chiral amino acid enabled enantioselective C–H functionalizati

Organic ChemistryChemistry
11
Article|45 citations·2021
Synthesis, Electronic Structure, and Reactivity of a Planar Four‐Coordinate, Cobalt–Imido Complex
Yoonsu Park, Scott P. Semproni, Hongyu Zhong, Paul J. Chirik
SJR Q1Angewandte Chemie International EditionOA

Abstract A four‐coordinate cobalt–imido complex, ( t Bu mPNP)Co=NMes ( t Bu mPNP=modified PNP pincer ligand) has been synthesized from addition of 2,4,6‐trimethylphenylazide (Mes–N 3 ) to the corresponding dinitrogen complex. The solid‐state structure determined by X‐ray diffraction established a rare, idealized planar geometry with a Co=N bond distance of 1.716(2) Å. Magnetic measurements revealed an S =1 ground state with CAS‐SCF calculations supporting radical character on the imide nitrogen.

Organic ChemistryChemistry
12
Article|42 citations·2021
Design of nanocatalyst for electrode structure: Electrophoretic deposition of iron phosphide nanoparticles to produce a highly active hydrogen evolution reaction catalyst
Yoonsu Park, Hoyoung Kim, Taegyeom Lee, Yun‐Kun Hong, WooSeok Jeong, Soo‐Kil Kim, Don‐Hyung Ha
SJR Q1Chemical Engineering Journal
Renewable Energy, Sustainability and the EnvironmentEnergy
13
Article|42 citations·2020
Influence of the phosphorus source on iron phosphide nanoparticle synthesis for hydrogen evolution reaction catalysis
Yoonsu Park, Hyeri Kang, Yun‐Kun Hong, Geonhee Cho, Miri Choi, Jiung Cho, Don‐Hyung Ha
SJR Q1International Journal of Hydrogen Energy
Renewable Energy, Sustainability and the EnvironmentEnergy
14
Article|36 citations·2016
Mechanism of Rh-Catalyzed Oxidative Cyclizations: Closed versus Open Shell Pathways
Yoonsu Park, Seihwan Ahn, Dahye Kang, Mu‐Hyun Baik
SJR Q1Accounts of Chemical Research

A conceptual theory for analyzing and understanding oxidative addition reactions that form the cornerstone of many transition metal mediated catalytic cycles that activate C-C and C-H bonds, for example, was developed. The cleavage of the σ- or π-bond in the organic substrate can be envisioned to follow a closed or an open shell formalism, which is matched by a corresponding electronic structure at the metal center of the catalyst. Whereas the assignment of one or the other mechanistic scenario

Organic ChemistryChemistry
15
Article|32 citations·2023
Iridium‐Catalyzed Chemo‐, Diastereo‐, and Enantioselective Allyl‐Allyl Coupling: Accessing All Four Stereoisomers of (E)‐1‐Boryl‐Substituted 1,5‐Dienes by Chirality Pairing
Yongsuk Jung, Seok Yeol Yoo, Yonghoon Jin, Jaehyun You, Seungcheol Han, Jeongwoo Yu, Yoonsu Park, Seung Hwan Cho
SJR Q1Angewandte Chemie International Edition

Here, we report a highly chemo-, diastereo-, and enantioselective allyl-allyl coupling between branched allyl alcohols and α-silyl-substituted allylboronate esters, catalyzed by a chiral iridium complex. The α-silyl-substituted allylboronate esters can be chemoselectively coupled with allyl electrophiles, affording a diverse set of enantioenriched (E)-1-boryl-substituted 1,5-dienes in good yields, with excellent stereoselectivity. By permuting the chiral iridium catalysts and the substrates, we

Organic ChemistryChemistry

Research Areas

Materials ChemistryOrganic ChemistryRenewable Energy, Sustainability and the EnvironmentElectrical and Electronic EngineeringInorganic ChemistryCatalysis

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