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Yongwon Seo

Ulsan National Institute of Science and Technology · Environmental Science

About the Lab

Professor Yongwon Seo's research lab specializes in gas hydrate science and engineering, focusing on the thermodynamic and kinetic behavior of clathrate and semiclathrate hydrates for sustainable energy and environmental applications. The lab investigates hydrate-based processes for carbon dioxide sequestration, methane recovery, pre-combustion CO2 capture, and separation of potent greenhouse gases like SF6. Key research directions include phase equilibrium measurements, guest molecule encapsulation, and the stabilizing effects of additives such as quaternary ammonium salts in hydrate systems under high-pressure conditions.

gas hydratesCO2 sequestrationmethane recoverysemiclathrate hydratesgreenhouse gas separation

Research Overview

Papers
209
Total Citations
6,163
Papers (5y)
59
Primary Field
Environmental Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
59total
2022
2023
2024
2025
2026
Citations per year (5y)
464total
20222023202420252026

Selected Papers

15
1
Article|186 citations·2013
Experimental Verification of Methane–Carbon Dioxide Replacement in Natural Gas Hydrates Using a Differential Scanning Calorimeter
Seungmin Lee, Yohan Lee, Jaehyoung Lee, Huen Lee, Yongwon Seo
SJR Q1Environmental Science & Technology

The methane (CH4) - carbon dioxide (CO2) swapping phenomenon in naturally occurring gas hydrates is regarded as an attractive method of CO2 sequestration and CH4 recovery. In this study, a high pressure microdifferential scanning calorimeter (HP μ-DSC) was used to monitor and quantify the CH4 - CO2 replacement in the gas hydrate structure. The HP μ-DSC provided reliable measurements of the hydrate dissociation equilibrium and hydrate heat of dissociation for the pure and mixed gas hydrates. The

Environmental ChemistryEnvironmental Science
2
Article|184 citations·2002
Methane and Carbon Dioxide Hydrate Phase Behavior in Small Porous Silica Gels: Three-Phase Equilibrium Determination and Thermodynamic Modeling
Yongwon Seo, Huen Lee, Tsutomu Uchida
SJR Q1Langmuir

Hydrate phase equilibria for the binary CH 4 + water and CO 2 + water mixtures in silica gel pores of nominal diameters 6.0, 15.0, and 30.0 nm were measured and compared with the calculated results based on van der Waals and Platteeuw model. At a specified temperature, three phase H−L W −V equilibrium curves of pore hydrates were shifted to the higher pressure region depending on pore sizes when compared with those of bulk hydrates. The activities of water in porous silica gels were expressed wi

Environmental ChemistryEnvironmental Science
3
Article|155 citations·2013
CO2Capture from Simulated Fuel Gas Mixtures Using Semiclathrate Hydrates Formed by Quaternary Ammonium Salts
Sung Won Park, Seungmin Lee, Young‐Jun Lee, Yongwon Seo
SJR Q1Environmental Science & Technology

In order to investigate the feasibility of semiclathrate hydrate-based precombustion CO2 capture, thermodynamic, kinetic, and spectroscopic studies were undertaken on the semiclathrate hydrates formed from a fuel gas mixture of H2 (60%) + CO2 (40%) in the presence of quaternary ammonium salts (QASs) such as tetra-n-butylammonium bromide (TBAB) and fluoride (TBAF). The inclusion of QASs demonstrated significantly stabilized hydrate dissociation conditions. This effect was greater for TBAF than TB

Environmental ChemistryEnvironmental Science
4
Article|148 citations·2015
CH4 recovery and CO2 sequestration using flue gas in natural gas hydrates as revealed by a micro-differential scanning calorimeter
Yohan Lee, Yunju Kim, Jaehyoung Lee, Huen Lee, Yongwon Seo
SJR Q1Applied Energy
Environmental ChemistryEnvironmental Science
5
Article|134 citations·2010
Separation of SF6 from Gas Mixtures Using Gas Hydrate Formation
Inuk Cha, Seungmin Lee, Ju Dong Lee, Gang-woo Lee, Yongwon Seo
SJR Q1Environmental Science & Technology

This study aims to examine the thermodynamic feasibility of separating sulfur hexafluoride (SF(6)), which is widely used in various industrial fields and is one of the most potent greenhouse gases, from gas mixtures using gas hydrate formation. The key process variables of hydrate phase equilibria, pressure-composition diagram, formation kinetics, and structure identification of the mixed gas hydrates, were closely investigated to verify the overall concept of this hydrate-based SF(6) separation

Environmental ChemistryEnvironmental Science
6
Article|133 citations·2013
Hydrate-based pre-combustion capture of carbon dioxide in the presence of a thermodynamic promoter and porous silica gels
Sung Won Park, Seungmin Lee, Young‐Jun Lee, Yohan Lee, Yongwon Seo
SJR Q1International journal of greenhouse gas control
Environmental ChemistryEnvironmental Science
7
Article|116 citations·2014
Structure identification and dissociation enthalpy measurements of the CO2+ N2 hydrates for their application to CO2 capture and storage
Yohan Lee, Seungmin Lee, Jaehyoung Lee, Yongwon Seo
SJR Q1Chemical Engineering Journal
Environmental ChemistryEnvironmental Science
8
Article|115 citations·2007
Effects of water vapor pretreatment time and reaction temperature on CO2 capture characteristics of a sodium-based solid sorbent in a bubbling fluidized-bed reactor
Yongwon Seo, Sung-Ho Jo, Changkook Ryu, Chang-Keun Yi
SJR Q1Chemosphere
Mechanical EngineeringEngineering
9
Article|104 citations·2020
Influence of CH4 hydrate exploitation using depressurization and replacement methods on mechanical strength of hydrate-bearing sediment
Yohan Lee, Christian Deusner, Elke Kossel, Wonjung Choi, Yongwon Seo, Matthias Haeckel
SJR Q1Applied EnergyOA
Environmental ChemistryEnvironmental Science
10
Article|94 citations·2016
CH4 – Flue gas replacement occurring in sH hydrates and its significance for CH4 recovery and CO2 sequestration
Yohan Lee, Young-ju Seo, Young-ju Seo, Taewoong Ahn, Jaehyoung Lee, Joo Yong Lee, Se-Joon Kim, Yongwon Seo, Yongwon Seo
SJR Q1Chemical Engineering JournalOA
Environmental ChemistryEnvironmental Science
11
Article|92 citations·2011
Guest Gas Enclathration in Semiclathrates of Tetra-n-butylammonium Bromide: Stability Condition and Spectroscopic Analysis
Seungmin Lee, Sungmin Park, Young‐Jun Lee, Jaehyoung Lee, Huen Lee, Yongwon Seo
SJR Q1Langmuir

In this study, guest gas enclathration behavior in semiclathrates of tetra-n-butylammonium bromide (TBAB) was closely investigated through phase equilibrium measurement and spectroscopic analysis. The three-phase equilibria of semiclathrate (H), liquid water (L(W)), and vapor (V) for the ternary CH(4) + TBAB + water and CO(2) + TBAB + water mixtures with various TBAB concentrations were experimentally measured to determine the stability conditions of the double TBAB semiclathrates. Equilibrium d

Environmental ChemistryEnvironmental Science
12
Article|87 citations·2017
CH 4 -CO 2 replacement occurring in sII natural gas hydrates for CH 4 recovery and CO 2 sequestration
Yohan Lee, Wonjung Choi, Kyuchul Shin, Yongwon Seo
SJR Q1Energy Conversion and Management
Environmental ChemistryEnvironmental Science
13
Article|83 citations·2019
Thermodynamic, structural, and kinetic studies of cyclopentane + CO2 hydrates: Applications for desalination and CO2 capture
Joonseop Lee, Ki-Sub Kim, Yongwon Seo
SJR Q1Chemical Engineering Journal
Environmental ChemistryEnvironmental Science
14
Article|83 citations·2015
Semiclathrate-based CO2 capture from flue gas mixtures: An experimental approach with thermodynamic and Raman spectroscopic analyses
Soyoung Kim, Yongwon Seo
SJR Q1Applied Energy
Mechanical EngineeringEngineering
15
Article|83 citations·2010
Phase Equilibria of Semiclathrate Hydrate for Nitrogen in the Presence of Tetra-n-butylammonium Bromide and Fluoride
Seungmin Lee, Young‐Jun Lee, Sungmin Park, Yongwon Seo
SJR Q2Journal of Chemical & Engineering Data

Semiclathrate hydrate phase equilibria for N 2 + TBAB (tetra- n -butylammonium bromide) + water mixtures were measured in the temperature range of (280 to 290) K and in the pressure range of (4.0 to 9.2) MPa at TBAB, w (weight fraction) = 0.05, 0.20, 0.40, and 0.60. Also, semiclathrate hydrate phase equilibria for N 2 + TBAF (tetra- n -butylammonium fluoride) + water mixtures were measured in the temperature range of (293 to 302) K and in the pressure range of (2.0 to 9.7) MPa at TBAF, w = 0.10,

Environmental ChemistryEnvironmental Science

Research Areas

Environmental ChemistryMechanical EngineeringBiomedical EngineeringMaterials ChemistryControl and Systems EngineeringInorganic Chemistry

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