Skip to main content

Soon Hyeok Hong

Korea Advanced Institute of Science and Technology · 化学

研究室紹介

Professor Soon Hyeok Hong's research lab specializes in the development and mechanistic understanding of transition metal-catalyzed transformations, with a strong focus on ruthenium-catalyzed olefin metathesis and direct amide synthesis. The lab investigates catalyst design, decomposition pathways, and reaction mechanisms to enhance selectivity, activity, and functional group tolerance in synthetic processes. Key research directions include the development of water-soluble and stable catalysts for sustainable synthesis, as well as the exploration of novel catalytic cycles involving key intermediates such as Ru hydrides and methylphosphonium salts. The lab also addresses challenges in catalyzing reactions with sterically hindered or less basic substrates, aiming to expand the scope of atom-economical transformations.

olefin metathesisruthenium catalystsdirect amide synthesismechanistic studiescatalyst decomposition

Research Overview

Papers
174
Total Citations
6,784
Papers (5y)
29
Primary Field
化学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
29total
2021
2022
2023
2025
2026
Citations per year (5y)
427total
20212022202320252026

Selected Papers

15
1
Article|632 citations·2005
Prevention of Undesirable Isomerization during Olefin Metathesis
Soon Hyeok Hong, Daniel P. Sanders, Choon Woo Lee, Robert H. Grubbs
SJR Q1Journal of the American Chemical Society

1,4-Benzoquinones have been found to prevent olefin isomerization of a number of allylic ethers and long-chain aliphatic alkenes during ruthenium-catalyzed olefin metathesis reactions. Electron-deficient benzoquinones are the most effective additives for the prevention of olefin migration. This mild, inexpensive, and effective method to block olefin isomerization increases the synthetic utility of olefin metathesis via improvement of overall product yield and purity.

Organic ChemistryChemistry
2
Article|419 citations·2007
Decomposition of Ruthenium Olefin Metathesis Catalysts
Soon Hyeok Hong, Anna G. Wenzel, Tina T. Salguero, Michael W. Day, Robert H. Grubbs
SJR Q1Journal of the American Chemical Society

The decomposition of a series of ruthenium metathesis catalysts has been examined using methylidene species as model complexes. All of the phosphine-containing methylidene complexes decomposed to generate methylphosphonium salts, and their decomposition routes followed first-order kinetics. The formation of these salts in high conversion, coupled with the observed kinetic behavior for this reaction, suggests that the major decomposition pathway involves nucleophilic attack of a dissociated phosp

Organic ChemistryChemistry
3
Article|412 citations·2004
Decomposition of a Key Intermediate in Ruthenium-Catalyzed Olefin Metathesis Reactions
Soon Hyeok Hong, Michael W. Day, Robert H. Grubbs
SJR Q1Journal of the American Chemical Society

Dinuclear ruthenium complex, with a bridging carbide and a hydride ligand, and methyltricyclohexylphosphonium chloride result from thermal decomposition of olefin metathesis catalyst, (IMesH2)(PCy3)(Cl)2Ru=CH2. Involvement of dissociated phosphine in the decomposition is proposed. The dinuclear complex has catalytic olefin isomerization activity, which can be responsible for competing isomerization processes in certain olefin metathesis reactions.

Organic ChemistryChemistry
4
Article|318 citations·2006
Highly Active Water-Soluble Olefin Metathesis Catalyst
Soon Hyeok Hong, Robert H. Grubbs
SJR Q1Journal of the American Chemical Society

A novel water-soluble ruthenium olefin metathesis catalyst supported by a poly(ethylene glycol) conjugated saturated 1,3-dimesityl-4,5-dihydroimidazol-2-ylidene ligand is reported. The catalyst displays improved activity in ring-opening metathesis polymerization, ring-closing metathesis, and cross-metathesis reactions in aqueous media.

Organic ChemistryChemistry
5
Article|177 citations·2010
Oxidative amide synthesis directly from alcohols with amines
Cheng Chen, Soon Hyeok Hong
SJR Q2Organic & Biomolecular Chemistry

Transition metal catalyzed oxidative amide synthesis directly from primary alcohols and amines is a highly atom economical transformation that evolves hydrogen gas as the only by-product. Several Ru-, Rh-based homogeneous and Ag-based heterogeneous catalysts have been developed for direct amide synthesis. Most of the developed catalysts showed excellent activity with sterically unhindered alcohols and amines; however, limited activity was observed with sterically hindered alcohols or amines, les

Inorganic ChemistryChemistry
6
Article|177 citations·2010
Well-Defined N-Heterocyclic Carbene Based Ruthenium Catalysts for Direct Amide Synthesis from Alcohols and Amines
Yao Zhang, Cheng Chen, Subhash Chandra Ghosh, Yongxin Li, Soon Hyeok Hong
SJR Q2Organometallics

Well-defined N-heterocyclic carbene based ruthenium complexes were developed as highly active catalysts for direct amide synthesis from alcohols and amines. A catalytic amount of a base such as KO t Bu was essential to initiate the catalytic cycle. Activity of the Ru complexes was comparable with the reported in situ Ru catalysts. These catalysts provided mechanistic insight suggesting a Ru hydride species as an active catalytic intermediate. The generation of the Ru hydride was critical for the

Inorganic ChemistryChemistry
7
Article|147 citations·2007
Double CH Activation of an N‐Heterocyclic Carbene Ligand in a Ruthenium Olefin Metathesis Catalyst
Soon Hyeok Hong, Anatoly Chlenov, Michael W. Day, Robert H. Grubbs
SJR Q1Angewandte Chemie International Edition

Having a breakdown: Decomposition of the olefin metathesis catalyst [(biph)(PCy3)Cl2RuC(H)Ph] (biph= N,N′-diphenylbenzimidazol-2-ylidene, Cy=cyclohexyl) results in benzylidene insertion into an ortho CH bond of an N-phenyl group of the biph ligand. The ruthenium center further inserts into another ortho CH bond of the other N-phenyl ring to give a new RuC bond as a part of a five-membered metallacycle (see scheme).

Organic ChemistryChemistry
8
Article|135 citations·2012
Acceptorless and Base‐Free Dehydrogenation of Alcohols and Amines using Ruthenium‐Hydride Complexes
Senthilkumar Muthaiah, Soon Hyeok Hong
SJR Q1Advanced Synthesis & Catalysis

Abstract An efficient, operatively simple, acceptorless, and base‐free dehydrogenation of secondary alcohols and nitrogen‐containing heterocyclic compounds was achieved by using readily available ruthenium hydride complexes as precatalysts. The complex RuH 2 (CO)(PPh 3 ) 3 ( 1 ) and Shvo’s complex ( 2 ) showed excellent activities for the dehydrogenation of secondary alcohols and nitrogen containing heterocycles. In addition to complexes 1 and 2 , the complex RuH 2 (PPh 3 ) 4 ( 3 ) also showed m

Inorganic ChemistryChemistry
9
Article|133 citations·2021
Pd-catalyzed formal Mizoroki–Heck coupling of unactivated alkyl chlorides
Geun Seok Lee, Daeun Kim, Soon Hyeok Hong
SJR Q1Nature CommunicationsOA

The use of alkyl chlorides in Pd-catalyzed Mizoroki-Heck coupling reactions remains an unsolved problem despite their significant potential for synthetic utility and applicability. The combination of the high thermodynamic barrier of alkyl chloride activation and kinetic propensity of alkylpalladium complexes to undergo undesired β-hydride elimination provides significant challenges. Herein, a variety of alkyl chlorides, even tertiary chlorides, are shown to efficiently participate in Mizoroki-H

Organic ChemistryChemistry
10
Article|126 citations·2015
Ruthenium-Catalyzed Urea Synthesis Using Methanol as the C1 Source
Seunghyo Kim, Soon Hyeok Hong
SJR Q1Organic LettersOA

An unprecedented protocol for urea synthesis directly from methanol and amine was accomplished. The reaction is highly atom-economical, producing hydrogen as the sole byproduct. Commercially available ruthenium pincer complexes were used as catalysts. In addition, no additive, such as a base, oxidant, or hydrogen acceptor, was required. Furthermore, unsymmetrical urea derivatives were successfully obtained via a one-pot, two-step reaction.

Inorganic ChemistryChemistry
11
Article|124 citations·2013
Ruthenium-Catalyzed Redox-Neutral and Single-Step Amide Synthesis from Alcohol and Nitrile with Complete Atom Economy
Byungjoon Kang, Zhenqian Fu, Soon Hyeok Hong
SJR Q1Journal of the American Chemical Society

A completely atom-economical and redox-neutral catalytic amide synthesis from an alcohol and a nitrile is realized. The amide C-N bond is efficiently formed between the nitrogen atom of nitrile and the α-carbon of alcohol, with the help of an N-heterocyclic carbene-based ruthenium catalyst, without a single byproduct. A utility of the reaction was demonstrated by synthesizing (13)C or (15)N isotope-labeled amides without involvement of any separate reduction and oxidation step.

Inorganic ChemistryChemistry
12
Article|119 citations·2014
Fe-Catalyzed Acceptorless Dehydrogenation of Secondary Benzylic Alcohols
Hansoo Song, Byungjoon Kang, Soon Hyeok Hong
SJR Q1ACS Catalysis

Oxidation of alcohols is an essential organic reaction, affording versatile carbonyl groups. To provide a sustainable solution for environmentally harmful traditional oxidation methods, the transition-metal catalyzed acceptor-free dehydrogenation of alcohols has attracted much attention. The widely used catalysts for the dehydrogenation reaction are based on precious metals, which are not economical and environmentally benign. We developed an operationally simple, economical, and environmentally

Inorganic ChemistryChemistry
13
Article|118 citations·2013
Carbon Dioxide Capture and Use: Organic Synthesis Using Carbon Dioxide from Exhaust Gas
Seunghyo Kim, Kwang Hee Kim, Soon Hyeok Hong
SJR Q1Angewandte Chemie International Edition

A carbon capture and use (CCU) strategy was applied to organic synthesis. Carbon dioxide (CO2) captured directly from exhaust gas was used for organic transformations as efficiently as hyper-pure CO2 gas from a commercial source, even for highly air- and moisture-sensitive reactions. The CO2 capturing aqueous ethanolamine solution could be recycled continuously without any diminished reaction efficiency.

Process Chemistry and TechnologyChemical Engineering
14
Article|106 citations·2011
N-Heterocyclic Carbene Based Ruthenium-Catalyzed Direct Amide Synthesis from Alcohols and Secondary Amines: Involvement of Esters
Cheng Chen, Yao Zhang, Soon Hyeok Hong
SJR Q2The Journal of Organic Chemistry

A well-defined N-heterocyclic carbene based ruthenium complex was developed as a highly active precatalyst for the direct amide synthesis from alcohols and secondary amines. Notably, reaction of 1-hexanol and dibenzylamine afforded 60% of the corresponding amide using our catalytic system, while no amide formation was observed for this reaction with the previously reported catalytic systems. Unlike the previously reported amidation with less sterically hindered alcohols and amines, involvement o

Inorganic ChemistryChemistry
15
Article|104 citations·2020
Synergistic Activation of Amides and Hydrocarbons for Direct C(sp3)–H Acylation Enabled by Metallaphotoredox Catalysis
Geun Seok Lee, Joonghee Won, Seulhui Choi, Mu‐Hyun Baik, Soon Hyeok Hong
SJR Q1Angewandte Chemie International Edition

Abstract The utilizations of omnipresent, thermodynamically stable amides and aliphatic C(sp 3 )−H bonds for various functionalizations are ongoing challenges in catalysis. In particular, the direct coupling between the two functional groups has not been realized. Here, we report the synergistic activation of the two challenging bonds, the amide C−N and unactivated aliphatic C(sp 3 )−H, via metallaphotoredox catalysis to directly acylate aliphatic C−H bonds utilizing amides as stable and readily

Organic ChemistryChemistry

Research Areas

Organic ChemistryInorganic ChemistryMaterials ChemistryProcess Chemistry and TechnologyMolecular BiologyMechanical Engineering

Soon Hyeok Hongの研究をNubintでさらに深く

この研究室の論文をアプリで開き、AIと共に読み、要約し、引用しましょう。