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Youngkook Kwon

Ulsan National Institute of Science and Technology · Energy

About the Lab

Professor Youngkook Kwon's research lab specializes in electrocatalysis for sustainable energy conversion, with a focus on understanding and optimizing the electrooxidation of renewable organic fuels—such as glycerol, furfural, and 5-hydroxymethylfurfural—on noble and base metal catalysts. The lab employs advanced in situ and online analytical techniques, including online HPLC, FTIR, and mass spectrometry, to elucidate reaction mechanisms, identify intermediates, and enhance selectivity in fuel cell and electrochemical conversion processes. A key research direction involves designing selective and stable electrocatalysts through surface modification (e.g., bismuth adatoms on platinum) and exploring the role of pH and electrode material in controlling reaction pathways. The lab also investigates electrochemical CO2 reduction as a route to value-added chemicals, aiming to address challenges in activity, selectivity, and scalability for industrial application.

electrocatalysisorganic fuel oxidationselective oxidationCO2 reductionin situ analysis

Research Overview

Papers
124
Total Citations
9,367
Papers (5y)
40
Primary Field
Energy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
40total
2022
2023
2024
2025
2026
Citations per year (5y)
956total
20222023202420252026

Selected Papers

15
1
Article|488 citations·2011
Electrocatalytic Oxidation of Alcohols on Gold in Alkaline Media: Base or Gold Catalysis?
Youngkook Kwon, Stanley C. S. Lai, Paramaconi Rodríguez, Marc T. M. Koper
SJR Q1Journal of the American Chemical Society

On the basis of a comparison of the oxidation activity of a series of similar alcohols with varying pK(a) on gold electrodes in alkaline solution, we find that the first deprotonation is base catalyzed, and the second deprotonation is fast but gold catalyzed. The base catalysis follows a Hammett-type correlation with pK(a), and dominates overall reactivity for a series of similar alcohols. The high oxidation activity on gold compared to platinum for some of the alcohols is related to the high re

Renewable Energy, Sustainability and the EnvironmentEnergy
2
Article|345 citations·2012
Highly Selective Electro-Oxidation of Glycerol to Dihydroxyacetone on Platinum in the Presence of Bismuth
Youngkook Kwon, Yuvraj Y. Birdja, Ioannis Spanos, Paramaconi Rodríguez, Marc T. M. Koper
SJR Q1ACS Catalysis

A carbon supported platinum electrode in a bismuth saturated solution at a carefully chosen potential is capable of oxidizing glycerol to dihydroxyacetone with 100% selectivity. In the absence of bismuth, the primary alcohol oxidation is dominant. Using a combination of online HPLC and in situ FTIR, it is shown that Bi blocks the pathway for primary oxidation but also provides a specific Pt–Bi surface site poised for secondary alcohol oxidation.

Renewable Energy, Sustainability and the EnvironmentEnergy
3
Article|344 citations·2011
Mechanism of the Catalytic Oxidation of Glycerol on Polycrystalline Gold and Platinum Electrodes
Youngkook Kwon, Klaas Jan P. Schouten, Marc T. M. Koper
SJR Q1ChemCatChem

Abstract This paper addresses the oxidation mechanism of glycerol on Au and Pt electrodes under different pH conditions. Intermediates and/or reaction products were detected by using an online high‐performance liquid chromatography technique (for soluble products) and online electrochemical mass spectrometry (for CO 2 ). In alkaline media, the main product of glycerol oxidation on the Pt electrode is glyceric acid produced via glyceraldehyde. Glyceric acid is the primary oxidation product on the

Materials ChemistryMaterials Science
4
Article|320 citations·2016
Electrocatalytic Conversion of Furanic Compounds
Youngkook Kwon, Klaas Jan P. Schouten, Jan C. van der Waal, E. de Jong, Marc T. M. Koper
SJR Q1ACS Catalysis

The electrocatalytic conversion of furanic compounds, i.e. mainly furfural and 5-hydroxymethylfurfural, has recently emerged as a potentially scalable technology for both oxidation and hydrogenation processes because of its highly valuable products. However, its practical application in industry is currently limited by low catalytic activity and product selectivity. Thus, a better understanding of the catalytic reactions as well as a strategy for the catalyst design can bring solutions for a com

Biomedical EngineeringEngineering
5
Article|214 citations·2010
Combining Voltammetry with HPLC: Application to Electro-Oxidation of Glycerol
Youngkook Kwon, Marc T. M. Koper
SJR Q1Analytical ChemistryOA

The combination of cyclic voltammetry and "online" chromatographic techniques for product detection is limited by the typically long analysis times in chromatographic columns. Therefore, traditionally, product analysis is performed offline after long bulk electrolysis experiments. To overcome the limitation of the inherently different time scales of voltammetry and high-performance liquid chromatography (HPLC), we suggest here to adopt rapid online sample collection with a micrometer-sized sampl

SpectroscopyChemistry
6
Review|182 citations·2019
Current achievements and the future direction of electrochemical CO2 reduction: A short review
Mi‐Young Lee, Ki Tae Park, Wonhee Lee, Hyungseob Lim, Youngkook Kwon, Seoktae Kang
SJR Q1Critical Reviews in Environmental Science and Technology

Electrochemical CO2 reduction (CO2RR) has received much attention for its ability to generate value-added chemicals from a molecule that would otherwise be a waste end-product. Numerous studies have emerged in the past decades, but the renewable and sustainable carbon-neutral CO2 reduction process is yet to be industrialized. Here, we review the progress and bottlenecks of the electrochemical CO2 reduction technologies over the past 15 years (2004–2018) to examine whether CO2RR process is to be

Renewable Energy, Sustainability and the EnvironmentEnergy
7
Article|165 citations·2016
CO2 Electroreduction with Enhanced Ethylene and Ethanol Selectivity by Nanostructuring Polycrystalline Copper
Youngkook Kwon, Yanwei Lum, Ezra L. Clark, Joel W. Ager, Alexis T. Bell
SJR Q2ChemElectroChemOA

Abstract There are a number of recent reports on the use of oxidation/reduction cycling of Cu surfaces to improve their selectivity for ethylene formation in the aqueous CO 2 reduction reaction. Here, the oxidation/reduction process is examined in detail. It is found that the faradaic efficiencies for both ethylene and ethanol are enhanced after oxidation/reduction cycling in the presence of halide anions. Specifically, cycling of the electrode in the presence of chloride, bromide, or fluoride a

Renewable Energy, Sustainability and the EnvironmentEnergy
8
Article|155 citations·2022
Interface rich CuO/Al2CuO4 surface for selective ethylene production from electrochemical CO2 conversion
Siraj Sultan, Hojeong Lee, Sojung Park, Minho M. Kim, Aram Yoon, Hansaem Choi, Tae‐Hoon Kong, Young-Jin Koe, Hyung‐Suk Oh, Zonghoon Lee, Hyungjun Kim, Wooyul Kim
SJR Q1Energy & Environmental Science

In this work, we designed a novel CuO/Al 2 CuO 4 catalyst by a phase and interphase engineering approach, which enables the electrochemical conversion of carbon dioxide to ethylene with ultrahigh activity and selectivity.

Renewable Energy, Sustainability and the EnvironmentEnergy
9
Article|150 citations·2015
Electrocatalytic Hydrogenation of 5‐Hydroxymethylfurfural in Acidic Solution
Youngkook Kwon, Yuvraj Y. Birdja, Saeed Raoufmoghaddam, Marc T. M. Koper
SJR Q1ChemSusChem

Electrocatalytic hydrogenation of 5-hydroxymethylfurfural (HMF) is studied on solid metal electrodes in acidic solution (0.5 M H2 SO4 ) by correlating voltammetry with on-line HPLC product analysis. Three soluble products from HMF hydrogenation are distinguished: 2,5-dihydroxymethylfuran (DHMF), 2,5-dihydroxymethyltetrahydrofuran (DHMTHF), and 2,5-dimethyl-2,3-dihydrofuran (DMDHF). Based on the dominant reaction products, the metal catalysts are divided into three groups: (1) metals mainly formi

Biomedical EngineeringEngineering
10
Article|149 citations·2020
Unveiling Electrode–Electrolyte Design-Based NO Reduction for NH3 Synthesis
Dong‐Yeon Kim, Dongyup Shin, Juheon Heo, Hyungseob Lim, Hyungseob Lim, Jung-Ae Lim, Hyung Mo Jeong, Beom‐Sik Kim, Iljeong Heo, In‐Hwan Oh, Boreum Lee, Monika Sharma
SJR Q1ACS Energy Letters

The electrochemical N2 reduction reaction has attracted interest as a potential alternative to the Haber–Bosch process, but a significantly low conversion efficiency and a significantly low ammonia production rate stimulate the need for alternatives. Here, we represent the electrochemical reduction of nitric oxide (NO) on a nanostructured Ag electrode in combination with a rationally designed electrolyte containing the EDTA–Fe2+ metal complex (EFeMC), which results in an ∼100% efficiency for NH3

CatalysisChemical Engineering
11
Article|146 citations·2013
Electrocatalytic Hydrogenation of 5‐Hydroxymethylfurfural in the Absence and Presence of Glucose
Youngkook Kwon, Ed de Jong, Saeed Raoufmoghaddam, Marc T. M. Koper
SJR Q1ChemSusChem

Electrocatalytic hydrogenation of 5-hydroxymethylfurfural (HMF) to 2,5-dihydroxymethylfuran (DHMF) or other species, such as 2,5-dimethylfuran, on solid metal electrodes in neutral media is addressed, both in the absence and in the presence of glucose. The reaction is studied by combining voltammetry with on-line product analysis by using HPLC, which provides both qualitative and quantitative information about the reaction products as a function of electrode potential. Three groups of catalysts

Biomedical EngineeringEngineering
12
Article|142 citations·2023
Copper with an atomic-scale spacing for efficient electrocatalytic co-reduction of carbon dioxide and nitrate to urea
Seokmin Shin, Siraj Sultan, Zong‐Xian Chen, Hojeong Lee, Hojeong Lee, Hansaem Choi, Tae‐Ung Wi, Chang-Hyun Park, Tae‐Won Kim, Chanhee Lee, Jihong Jeong, Hyeju Shin
SJR Q1Energy & Environmental Science

This work presents that Cu with atomic-scale spacings ( d s ) efficiently catalyses the electrochemical co-reduction of CO 2 and NO 3 − to urea. Specifically, Cu with d s near 6 Å (6 Å-Cu) produces urea with a high yield rate and partial current density.

CatalysisChemical Engineering
13
Article|111 citations·2022
Boosting Electrochemical CO2 Reduction to Methane via Tuning Oxygen Vacancy Concentration and Surface Termination on a Copper/Ceria Catalyst
Kshirodra Kumar Patra, Zhu Liu, Hojeong Lee, Seungwon Hong, Hakhyeon Song, Hafiz Ghulam Abbas, Youngkook Kwon, Stefan Ringe, Jihun Oh
SJR Q1ACS Catalysis

Metal oxides are a promising material for designing highly active and selective catalysts for the electrochemical reduction of carbon dioxide (CO2RR). Here, we designed a Cu/ceria catalyst with high selectivity of methane production at single-atomic Cu active sites. Using this, we report favorable design concepts that push the product selectivity of methane formation by combining detailed structural analysis, density functional theory (DFT), in situ Raman spectroscopy, and electrochemical measur

Renewable Energy, Sustainability and the EnvironmentEnergy
14
Article|101 citations·2022
Electro-synthesis of Ammonia from Dilute Nitric Oxide on a Gas Diffusion Electrode
Seonjeong Cheon, Won June Kim, Dong Yeon Kim, Youngkook Kwon, Jong‐In Han
SJR Q1ACS Energy Letters

The electrochemical conversion of nitric oxide (NO) to ammonia (NH3) provides a sustainable route to transform an air pollutant into a value-added chemical. However, the development of NO electroreduction remains hindered by the poor solubility in aqueous electrolytes, requiring the use of concentrated NO. Here, we report a dilute NO reduction using a gas diffusion electrode (GDE) to circumvent the mass transport issue. Through the incorporation of nanoscale zero-valent iron into carbon black on

CatalysisChemical Engineering
15
Article|97 citations·2021
Modulation of Cu and Rh single-atoms and nanoparticles for high-performance hydrogen evolution activity in acidic media
Siraj Sultan, Muhammad Hanif Diorizky, Miran Ha, Jitendra N. Tiwari, Hansaem Choi, Ngoc Kim Dang, Pandiarajan Thangavel, Jong‐Hoon Lee, Hu Young Jeong, Hyeon Suk Shin, Youngkook Kwon, Kwang S. Kim
SJR Q1Journal of Materials Chemistry A

This article reports the synthesis of bimetallic Cu/Rh single atoms and Cu<sub>2</sub>Rh nanoparticles on N-doped graphene (Cu/Rh(SAs) + Cu<sub>2</sub>Rh(NPs)/G<sub>N</sub>) for efficient and durable hydrogen fuel production from acidic water.

Renewable Energy, Sustainability and the EnvironmentEnergy

Research Areas

Renewable Energy, Sustainability and the EnvironmentCatalysisElectrical and Electronic EngineeringMaterials ChemistryBiomedical EngineeringAerospace Engineering

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