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Siu Lee

Pohang University of Science and Technology · Engineering

About the Lab

Professor Siu Lee's research lab specializes in the design and characterization of advanced nanomaterials for energy conversion and catalytic applications. The lab focuses on understanding and engineering metal-oxide interfaces at the nanoscale to control catalytic selectivity and enhance reaction efficiency, particularly in reactions such as CO₂ hydrogenation and methanol oxidation. A key research direction involves probing hot electron dynamics and plasmon-induced catalysis using advanced in situ microscopy and spectroscopic techniques. The lab also investigates functional materials for dye-sensitized solar cells and thin-film transistors, emphasizing interface engineering and charge transport mechanisms.

plasmonicsheterogeneous catalysismetal-oxide interfaceshot electron dynamicsnanocatalysts

Research Overview

Papers
66
Total Citations
1,274
Papers (5y)
23
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
23total
2022
2023
2024
2025
2026
Citations per year (5y)
188total
20222023202420252026

Selected Papers

15
1
Article|71 citations·2004
Organic Thin Film Transistors: Materials, Processes and Devices
이시우, B. Chandar Shekar, Jiyeon Lee
Korean Journal of Chemical Engineering

For the past ten years, organic materials have been extensively investigated as an electronic material forthin film transistor (TFT) devices. Organic materials offer strong promise in terms of properties, processing and costeffectiveness and they can be used in flat panel displays, imagers, smart cards, inventory tags and large area electronicapplications. In this review, we summarize the curent status of the organic thin film transistors including substratematerials, electrodes, semiconducting

2
Article|47 citations·2023
Unraveling surface structures of gallium promoted transition metal catalysts in CO2 hydrogenation
Si Woo Lee, Mauricio López Luna, Nikolay Berdunov, Weiming Wan, Sebastian Kunze, Shamil Shaikhutdinov, Beatriz Roldán Cuenya
SJR Q1Nature CommunicationsOA

Abstract Gallium-containing alloys have recently been reported to hydrogenate CO 2 to methanol at ambient pressures. However, a full understanding of the Ga-promoted catalysts is still missing due to the lack of information about the surface structures formed under reaction conditions. Here, we employed near ambient pressure scanning tunneling microscopy and x-ray photoelectron spectroscopy to monitor the evolution of well-defined Cu-Ga surfaces during CO 2 hydrogenation. We show the formation o

Materials ChemistryMaterials Science
3
Article|41 citations·2021
Controlling hot electron flux and catalytic selectivity with nanoscale metal-oxide interfaces
Si Woo Lee, Jong Min Kim, Woonghyeon Park, Hyosun Lee, Gyu Rac Lee, Yousung Jung, Yeon Sik Jung, Jeong Young Park
SJR Q1Nature CommunicationsOA

Abstract Interaction between metal and oxides is an important molecular-level factor that influences the selectivity of a desirable reaction. Therefore, designing a heterogeneous catalyst where metal-oxide interfaces are well-formed is important for understanding selectivity and surface electronic excitation at the interface. Here, we utilized a nanoscale catalytic Schottky diode from Pt nanowire arrays on TiO 2 that forms a nanoscale Pt-TiO 2 interface to determine the influence of the metal-ox

Renewable Energy, Sustainability and the EnvironmentEnergy
4
Article|40 citations·2018
The surface plasmon-induced hot carrier effect on the catalytic activity of CO oxidation on a Cu2O/hexoctahedral Au inverse catalyst
Si Woo Lee, Jong Wook Hong, Hyunhwa Lee, Dae Han Wi, Sun Mi Kim, Sang Woo Han, Jeong Young Park
SJR Q1Nanoscale

The intrinsic correlation between an enhancement of catalytic activity and the flow of hot electrons generated at metal-oxide interfaces suggests an intriguing way to control catalytic reactions and is a significant subject in heterogeneous catalysis. Here, we show surface plasmon-induced catalytic enhancement by the peculiar nanocatalyst design of hexoctahedral (HOH) Au nanocrystals (NCs) with Cu2O clusters. We found that this inverse catalyst comprising a reactive oxide for the catalytic porti

Materials ChemistryMaterials Science
5
Article|38 citations·2021
Surface chemistry of hot electron and metal-oxide interfaces
Si Woo Lee, Hyunhwa Lee, Yujin Park, Heeyoung Kim, Gábor A. Somorjai, Jeong Young Park
SJR Q1Surface Science ReportsOA
Electrical and Electronic EngineeringEngineering
6
Article|37 citations·2011
Key technological elements in dye-sensitized solar cells (DSC)
이시우, 권우성
Korean Journal of Chemical Engineering

The best cell efficiency of lab scale dye sensitized solar cell (DSC) exceeds 11%, but there are still many technological problems to overcome for commercialization. This review describes key technological elements in DSC,including working electrodes with dye/TiO_2/electrolyte interfaces, quasi solid state electrolyte with ion diffusion, and counter electrodes with electrolyte-catalytic electrode interfaces. Their operating principles, equivalent electric circuits and measurement techniques are

7
Article|26 citations·2019
Intrinsic Relation between Hot Electron Flux and Catalytic Selectivity during Methanol Oxidation
Si Woo Lee, Woonghyeon Park, Hyosun Lee, Hee Chan Song, Yousung Jung, Jeong Young Park
SJR Q1ACS Catalysis

Catalytic selectivity, or the production of only one desired molecule that may be used as a fuel or chemical out of several thermodynamically possible molecules, is the foundation of surface chemistry. During catalytic reactions, electronic excitation taking place on the surface creates energetic electrons called “hot electrons” that have a significant impact on catalytic reactions. Despite its importance in fundamentally understanding electronic excitation on the surface, no reports show the re

Renewable Energy, Sustainability and the EnvironmentEnergy
8
Article|26 citations·2018
Enhanced catalytic activity for CO oxidation by the metal–oxide perimeter of TiO2/nanostructured Au inverse catalysts
Si Woo Lee, Jun Tae Song, Jae‐Hoon Kim, Jihun Oh, Jeong Young Park
SJR Q1Nanoscale

-Au interface sites. These results implied that the perimeter area of the metal-oxide interface played a significant role in determining the catalytic performance for CO oxidation.

Materials ChemistryMaterials Science
9
Review|23 citations·2023
Hot electron-driven chemical reactions: A review
Si Woo Lee
SJR Q1Applied Surface Science AdvancesOA

Fundamental understanding of energy dissipation on surfaces has been important issues for studying renewable energy conversion. An energetic electron with high kinetic energy can be produced by a non-adiabatic dissipation process when the surface is exposed to external energy, such as exothermic reaction, mechanical interaction, or photon absorption. Excited electrons with an energy of 1–3 eV that are not in thermal equilibrium in metal surfaces are called "hot electrons". Significantly, it has

Renewable Energy, Sustainability and the EnvironmentEnergy
10
Article|20 citations·2017
Surface plasmon-driven catalytic reactions on a patterned Co3O4/Au inverse catalyst
Si Woo Lee, Changhwan Lee, Kalyan C. Goddeti, Sun Mi Kim, Jeong Young Park
SJR Q1RSC AdvancesOA

Hot carriers generated from LSPR excitation of Au can transfer to Co<sub>3</sub>O<sub>4</sub>, thus enhancing the catalytic activity for CO oxidation.

Electronic, Optical and Magnetic MaterialsMaterials Science
11
Review|17 citations·2022
Hot Electron Phenomena at Solid–Liquid Interfaces
Si Woo Lee, Beomjoon Jeon, Hyosun Lee, Jeong Young Park
SJR Q1The Journal of Physical Chemistry Letters

Understanding the role of energy dissipation and charge transfer under exothermic chemical reactions on metal catalyst surfaces is important for elucidating the fundamental phenomena at solid-gas and solid-liquid interfaces. Recently, many surface chemistry studies have been conducted on the solid-liquid interface, so correlating electronic excitation in the liquid-phase with the reaction mechanism plays a crucial role in heterogeneous catalysis. In this review, we introduce the detection princi

ElectrochemistryChemistry
12
Article|17 citations·2023
Interaction of Gallium with a Copper Surface: Surface Alloying and Formation of Ordered Structures
Si Woo Lee, Arravind Subramanian, Fernando Buendía, Jian‐Qiang Zhong, Sergey M. Kozlov, Shamil Shaikhutdinov, Beatriz Roldán Cuenya
SJR Q1The Journal of Physical Chemistry COA

High Resolution Image Download MS PowerPoint Slide Alloys of gallium with transition metals have recently received considerable attention for their applications in microelectronics and catalysis. Here, we investigated the initial stages of the Ga–Cu alloy formation on Cu(111) and Cu(001) surfaces using scanning tunneling microscopy (STM), X-ray photoelectron spectroscopy (XPS), and low energy electron diffraction (LEED). The results show that Ga atoms deposited using physical vapor deposition re

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
13
Article|11 citations·2023
How Hot Electron Generation at the Solid–Liquid Interface Is Different from the Solid–Gas Interface
Si Woo Lee, Heeyoung Kim, Jeong Young Park
SJR Q1Nano Letters

Excitation of hot electrons by energy dissipation under exothermic chemical reactions on metal catalyst surfaces occurs at both solid–gas and solid–liquid interfaces. Despite extensive studies, a comparative operando study directly comparing electronic excitation by electronically nonadiabatic interactions at solid–gas and solid–liquid interfaces has not been reported. Herein, on the basis of our in situ techniques for monitoring energy dissipation as a chemicurrent using a Pt/n-Si nanodiode sen

ElectrochemistryChemistry
14
Article|7 citations·2024
Insight into the Synergistic Effect of the Oxide–Metal Interface on Hot Electron Excitation
Eunji Lee, Beomjoon Jeon, Hyuk Choi, Jihun Kim, Jong-Seok Kim, Gyuho Han, Kwangjin An, Hyun You Kim, Jeong Young Park, Si Woo Lee
SJR Q1ACS Catalysis

Formulating a quantitative relationship between the extent of electron transfer at metal–oxide interfaces and catalytic performance aids the rational design of oxide-supported metal catalysts. An effective strategy for monitoring electron transfer at nanoscale interfacial sites is to detect in real time the hot electrons excited when catalytic reactions occur at metal–oxide perimeter sites. Here, based on our in situ techniques for extracting electron transfer as a current signal using a catalyt

Materials ChemistryMaterials Science
15
Article|6 citations·2023
Hot electron chemistry in catalytic reactions
Si Woo Lee
SJR Q1Trends in Chemistry
Materials ChemistryMaterials Science

Research Areas

Materials ChemistryElectrical and Electronic EngineeringRenewable Energy, Sustainability and the EnvironmentMechanical EngineeringElectronic, Optical and Magnetic MaterialsAtomic and Molecular Physics, and Optics

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