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Lee Choongyeop

Kyung Hee University · 材料科学

研究室紹介

Professor Lee Choongyeop's research lab specializes in the design and characterization of functional micro- and nanostructured surfaces for advanced fluidic and ionic transport applications. The lab focuses on superhydrophobic surfaces, exploring how geometric parameters such as pitch, gas fraction, and hierarchical micro-nano structures influence liquid slip and drag reduction. A key research direction involves developing self-healing and pressure-stable superhydrophobic surfaces that maintain a gaseous lubricating layer under extreme conditions. The lab also investigates ion transport through solid-state nanopores, revealing unexpected entrance effects that significantly enhance ionic conductance.

superhydrophobic surfacesliquid slipnanopore ionic transportsurface engineeringdrag reduction

Research Overview

Papers
98
Total Citations
3,749
Papers (5y)
30
Primary Field
材料科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
30total
2022
2023
2024
2025
2026
Citations per year (5y)
179total
20222023202420252026

Selected Papers

15
1
Article|428 citations·2008
Structured Surfaces for a Giant Liquid Slip
Choongyeop Lee, Chang‐Hwan Choi, Chang‐Jin Kim
SJR Q1Physical Review LettersOA

We study experimentally how two key geometric parameters (pitch and gas fraction) of textured hydrophobic surfaces affect liquid slip. The two are independently controlled on precisely fabricated microstructures of posts and grates, and the slip length of water on each sample is measured using a rheometer system. The slip length increases linearly with the pitch but dramatically with the gas fraction above 90%, the latter trend being more pronounced on posts than on grates. Once the surfaces are

Surfaces, Coatings and FilmsMaterials Science
2
Article|422 citations·2011
Underwater Restoration and Retention of Gases on Superhydrophobic Surfaces for Drag Reduction
Choongyeop Lee, Chang‐Jin Kim
SJR Q1Physical Review Letters

Superhydrophobic (SHPo) surfaces have shown promise for passive drag reduction because their surface structures can hold a lubricating gas film between the solid surface and the liquid in contact with it. However, the types of SHPo surfaces that would produce any meaningful amount of reduction get wet under liquid pressure or at surface defects, both of which are unavoidable in the real world. In this Letter, we solve the above problem by (1) discovering surface structures that allow the restora

Surfaces, Coatings and FilmsMaterials Science
3
Review|325 citations·2016
Superhydrophobic drag reduction in laminar flows: a critical review
Choongyeop Lee, Chang‐Hwan Choi, Chang‐Jin Kim
SJR Q1Experiments in FluidsOA

A gas in between micro- or nanostructures on a submerged superhydrophobic (SHPo) surface allows the liquid on the structures to flow with an effective slip. If large enough, this slippage may entail a drag reduction appreciable for many flow systems. However, the large discrepancies among the slippage levels reported in the literature have led to a widespread misunderstanding on the drag-reducing ability of SHPo surfaces. Today we know that the amount of slip, generally quantified with a slip le

Surfaces, Coatings and FilmsMaterials Science
4
Article|297 citations·2009
Maximizing the Giant Liquid Slip on Superhydrophobic Microstructures by Nanostructuring Their Sidewalls
Choongyeop Lee, Chang‐Jin Kim
SJR Q1Langmuir

In an effort to maximize the liquid slip on superhydrophobic surfaces, we investigate the role of the nanoscale roughness on microscale structures by developing well-defined micro-nano hierarchical structures. The nonwetting stability and slip length on the dual-scale micro-nano structures are measured and compared with those on single-scale micro-smooth structures. A force balance between a liquid pressure and a surface tension indicates that hydrophobic nanostructures on the sidewall of microp

Surfaces, Coatings and FilmsMaterials Science
5
Article|198 citations·2016
The effects of surface wettability on the fog and dew moisture harvesting performance on tubular surfaces
Donghyun Seo, Junghun Lee, Choongyeop Lee, Youngsuk Nam
SJR Q1Scientific ReportsOA

The efficient water harvesting from air-laden moisture has been a subject of great interest to address world-wide water shortage issues. Recently, it has been shown that tailoring surface wettability can enhance the moisture harvesting performance. However, depending on the harvesting condition, a different conclusion has often been reported and it remains unclear what type of surface wettability would be desirable for the efficient water harvesting under the given condition. Here we compare the

Renewable Energy, Sustainability and the EnvironmentEnergy
6
Article|197 citations·2012
Large Apparent Electric Size of Solid-State Nanopores Due to Spatially Extended Surface Conduction
Choongyeop Lee, Laurent Joly, Alessandro Siria, Anne‐Laure Biance, Rémy Fulcrand, Lydéric Bocquet
SJR Q1Nano Letters

Ion transport through nanopores drilled in thin membranes is central to numerous applications, including biosensing and ion selective membranes. This paper reports experiments, numerical calculations, and theoretical predictions demonstrating an unexpectedly large ionic conduction in solid-state nanopores, taking its origin in anomalous entrance effects. In contrast to naive expectations based on analogies with electric circuits, the surface conductance inside the nanopore is shown to perturb th

Biomedical EngineeringEngineering
7
Article|130 citations·2015
Two types of Cassie-to-Wenzel wetting transitions on superhydrophobic surfaces during drop impact
Choongyeop Lee, Youngsuk Nam, Henri Lastakowski, Janet I. Hur, Seungwon Shin, Anne‐Laure Biance, Christophe Pirat, Chang‐Jin Kim, Christophe Ybert
SJR Q2Soft Matter

Despite the fact that superhydrophobic surfaces possess useful and unique properties, their practical application has remained limited by durability issues. Among those, the wetting transition, whereby a surface gets impregnated by the liquid and permanently loses its superhydrophobicity, certainly constitutes the most limiting aspect under many realistic conditions. In this study, we revisit this so-called Cassie-to-Wenzel transition (CWT) under the broadly encountered situation of liquid drop

Surfaces, Coatings and FilmsMaterials Science
8
Article|115 citations·2014
Osmotic Flow through Fully Permeable Nanochannels
Choongyeop Lee, Cécile Cottin-Bizonne, Anne‐Laure Biance, Pierre Joseph, Lydéric Bocquet, Christophe Ybert
SJR Q1Physical Review LettersOA

Osmosis across membranes is intrinsically associated with the concept of semipermeability. Here, however, we demonstrate that osmotic flow can be generated by solute gradients across nonselective, fully permeable nanochannels. Using a fluorescence imaging technique, we are able to measure the water flow rate inside single nanochannels to an unprecedented sensitivity of femtoliters per minute flow rates. Our results indicate the onset of a convective liquid motion under salinity gradients, from t

Biomedical EngineeringEngineering
9
Article|103 citations·2014
Drop Impact Dynamics on Oil-Infused Nanostructured Surfaces
Choongyeop Lee, Hyun‐Sik Kim, Youngsuk Nam
SJR Q1Langmuir

We experimentally investigated the impact dynamics of a water drop on oil-infused nanostructured surfaces using high-speed microscopy and scalable metal oxide nano surfaces. The effects of physical properties of the oil and impact velocity on complex fluid dynamics during drop impact were investigated. We show that the oil viscosity does not have significant effects on the maximal spreading radius of the water drop, while it moderately affects the retraction dynamics. The oil viscosity also dete

Surfaces, Coatings and FilmsMaterials Science
10
Article|62 citations·2011
Influence of Surface Hierarchy of Superhydrophobic Surfaces on Liquid Slip
Choongyeop Lee, Chang‐Jin Kim
SJR Q1Langmuir

We investigated how the surface hierarchy of superhydrophobic (SHPo) surfaces influences liquid slip by testing well-defined microposts that have nanoposts only on their top. Contrary to the commonly held belief, our results show that such hierarchical surfaces do not always lead to an increase of slip length despite their reduced solid fraction and enhanced hydrophobicity compared to single-scale surfaces. Adding nanoposts on top of the microposts resulted in an increase of slip length only if

Surfaces, Coatings and FilmsMaterials Science
11
Article|59 citations·2017
Enhanced heat transfer using metal foam liquid supply layers for micro heat spreaders
Seunggeol Ryu, Jeonghoon Han, Jichul Kim, Choongyeop Lee, Youngsuk Nam
SJR Q1International Journal of Heat and Mass Transfer
Mechanical EngineeringEngineering
12
Article|55 citations·2018
Effect of geometrical parameters on rebound of impacting droplets on leaky superhydrophobic meshes
Arvind Kumar, Abinash Tripathy, Youngsuk Nam, Choongyeop Lee, Prosenjit Sen
SJR Q2Soft Matter

) of the impinging droplet exceeds the breakthrough pressure (γΓ/A). At higher impact velocities, the ejected-jet breaks and separates from the main droplet. The remaining part of the droplet bounces off the surface showing different modes (normal bouncing as a vertically elongated drop or pancake bouncing). In this work, we have studied the effect of different geometrical parameters of superhydrophobic copper meshes on different modes of droplet rebound. We observe three different effects in ou

Computational MechanicsEngineering
13
Article|53 citations·2019
Passive Anti-Flooding Superhydrophobic Surfaces
Donghyun Seo, Jaehwan Shim, Byungyun Moon, Kyungjun Lee, Jooyoung Lee, Choongyeop Lee, Youngsuk Nam
SJR Q1ACS Applied Materials & Interfaces

Superhydrophobic (SHPo) surfaces can provide high condensation heat transfer due to facilitated droplet removal. However, such high performance has been limited to low supersaturation conditions due to surface flooding. Here, we quantify flooding resistance defined as the rate of increase in the fraction of water-filled cavities with respect to the supersaturation level. Based on the quantitative understanding of surface flooding, we suggest effective anti-flooding strategies through tailoring t

Surfaces, Coatings and FilmsMaterials Science
14
Article|45 citations·2019
Performance Analysis of Gravity-Driven Oil–Water Separation Using Membranes with Special Wettability
Seungtae Oh, Seokkan Ki, Seunggeol Ryu, Myung Chul Shin, Jinki Lee, Choongyeop Lee, Youngsuk Nam
SJR Q1Langmuir

A membrane with selective wettability to either oil or water has been utilized for highly efficient, environmentally friendly membrane-based oil-water separation. However, a predictive model, which can be used to evaluate the overall separation performance of the membrane, still needs further development. Herein, we investigate three separation performance parameters, that is, separation efficiency, liquid intrusion pressure, and mass flux in particular, as a function of pore geometry and liquid

Surfaces, Coatings and FilmsMaterials Science
15
Article|41 citations·2020
Brushed lubricant-impregnated surfaces (BLIS) for long-lasting high condensation heat transfer
Donghyun Seo, Jaehwan Shim, Choongyeop Lee, Youngsuk Nam
SJR Q1Scientific ReportsOA

Recently, lubricant-impregnated surfaces (LIS) have emerged as a promising condenser surface by facilitating the removal of condensates from the surface. However, LIS has the critical limitation in that lubricant oil is depleted along with the removal of condensates. Such oil depletion is significantly aggravated under high condensation heat transfer. Here we propose a brushed LIS (BLIS) that can allow the application of LIS under high condensation heat transfer indefinitely by overcoming the pr

Surfaces, Coatings and FilmsMaterials Science

Research Areas

Surfaces, Coatings and FilmsBiomedical EngineeringComputational MechanicsRenewable Energy, Sustainability and the EnvironmentSurgeryMechanical Engineering

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