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Wan Ki Bae

Sungkyunkwan University · 材料科学

研究室紹介

Professor Wan Ki Bae's research lab specializes in the design, synthesis, and application of colloidal quantum dots and nanocrystals for optoelectronic devices. The lab focuses on developing high-performance, solution-processable nanomaterials with tunable optical properties, particularly for light-emitting diodes (LEDs), photodetectors, and solar cells. Key research directions include engineering quantum dot heterostructures with graded compositions and alloyed interfaces to suppress non-radiative recombination and enhance stability and efficiency. The lab also investigates surface passivation strategies to improve the chemical and photostability of quantum dots, especially for infrared-emitting devices.

quantum dotsoptoelectronic devicesnanomaterials synthesissurface passivationlight-emitting diodes

Research Overview

Papers
199
Total Citations
13,860
Papers (5y)
55
Primary Field
材料科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
55total
2022
2023
2024
2025
2026
Citations per year (5y)
943total
20222023202420252026

Selected Papers

15
1
Article|740 citations·2013
Controlling the influence of Auger recombination on the performance of quantum-dot light-emitting diodes
Wan Ki Bae, Young‐Shin Park, Jaehoon Lim, Donggu Lee, Lázaro A. Padilha, Hunter McDaniel, István Robel, Changhee Lee, Jeffrey M. Pietryga, Victor I. Klimov
SJR Q1Nature CommunicationsOA

Development of light-emitting diodes (LEDs) based on colloidal quantum dots is driven by attractive properties of these fluorophores such as spectrally narrow, tunable emission and facile processibility via solution-based methods. A current obstacle towards improved LED performance is an incomplete understanding of the roles of extrinsic factors, such as non-radiative recombination at surface defects, versus intrinsic processes, such as multicarrier Auger recombination or electron-hole separatio

Materials ChemistryMaterials Science
2
Article|522 citations·2008
Single-Step Synthesis of Quantum Dots with Chemical Composition Gradients
Wan Ki Bae, Kookheon Char, Hyuck Hur, Seonghoon Lee
SJR Q1Chemistry of Materials

We demonstrate a single-step synthetic method for highly luminescent (i.e., quantum yield up to 80%) and stable quantum dots (QDs) by using the reactivity difference between Cd and Zn precursors and that between Se and S precursors. A wide range of emission wavelengths (500−610 nm) with a narrow fwhm (<35 nm) is obtained by changing the ratios of the precursors. Under the reaction conditions selected, Cd- and Se (with a bit of S)-based cores are formed first and Zn- and S-based shells are formed

Materials ChemistryMaterials Science
3
Article|502 citations·2013
Controlled Alloying of the Core–Shell Interface in CdSe/CdS Quantum Dots for Suppression of Auger Recombination
Wan Ki Bae, Lázaro A. Padilha, Young‐Shin Park, Hunter McDaniel, István Robel, Jeffrey M. Pietryga, Victor I. Klimov
SJR Q1ACS Nano

The influence of a CdSexS1-x interfacial alloyed layer on the photophysical properties of core/shell CdSe/CdS nanocrystal quantum dots (QDs) is investigated by comparing reference QDs with a sharp core/shell interface to alloyed structures with an intermediate CdSexS1-x layer at the core/shell interface. To fully realize the structural contrast, we have developed two novel synthetic approaches: a method for fast CdS-shell growth, which results in an abrupt core/shell boundary (no intentional or

Materials ChemistryMaterials Science
4
Article|299 citations·2014
Influence of Shell Thickness on the Performance of Light‐Emitting Devices Based on CdSe/Zn1‐XCdXS Core/Shell Heterostructured Quantum Dots
Jaehoon Lim, Byeong Guk Jeong, Myeongjin Park, Jai Kyeong Kim, Jeffrey M. Pietryga, Young‐Shin Park, Victor I. Klimov, Changhee Lee, Doh C. Lee, Wan Ki Bae
SJR Q1Advanced Materials

CdSe/Zn1-X CdX S core/shell heterostructured quantum dots (QDs) with varying shell thicknesses are studied as the active material in a series of electroluminescent devices. "Giant" CdSe/Zn1-X CdX S QDs (e.g., CdSe core radius of 2 nm and Zn1-X CdX S shell thickness of 6.3 nm) demonstrate a high device efficiency (peak EQE = 7.4%) and a record-high brightness (>100 000 cd m(-2) ) of deep-red emission, along with improved device stability.

Materials ChemistryMaterials Science
5
Article|289 citations·2009
Highly Efficient Green‐Light‐Emitting Diodes Based on CdSe@ZnS Quantum Dots with a Chemical‐Composition Gradient
Wan Ki Bae, Jeonghun Kwak, Ji Won Park, Kookheon Char, Changhee Lee, Seonghoon Lee
SJR Q1Advanced Materials

Highly efficient green-light-emitting diodes (LEDs) based on [email protected] quantum dots (QDs) with a chemical-composition gradient are demonstrated. Through the moderate control of QD coverage in multilayered devices, excellent device performance has been achieved. The color-saturated green-light emission (see figure for Commission Internationale de l'Eclairage (CIE) co-ordinates) is mainly from the QD layers (more than 99% of total emission). Detailed facts of importance to specialist reade

Materials ChemistryMaterials Science
6
Article|259 citations·2020
High-resolution patterning of colloidal quantum dots via non-destructive, light-driven ligand crosslinking
Jeehye Yang, Donghyo Hahm, Kyunghwan Kim, Seunghyun Rhee, Myeongjae Lee, Seunghan Kim, Jun Hyuk Chang, Hye Won Park, Jaehoon Lim, Minkyoung Lee, Hyeokjun Kim, Joohee Bang
SJR Q1Nature CommunicationsOA

Establishing multi-colour patterning technology for colloidal quantum dots is critical for realising high-resolution displays based on the material. Here, we report a solution-based processing method to form patterns of quantum dots using a light-driven ligand crosslinker, ethane-1,2-diyl bis(4-azido-2,3,5,6-tetrafluorobenzoate). The crosslinker with two azide end groups can interlock the ligands of neighbouring quantum dots upon exposure to UV, yielding chemically robust quantum dot films. Expl

Materials ChemistryMaterials Science
7
Article|253 citations·2012
Highly Effective Surface Passivation of PbSe Quantum Dots through Reaction with Molecular Chlorine
Wan Ki Bae, Jin Joo, Lázaro A. Padilha, Jonghan Won, Doh C. Lee, Qianglu Lin, Weon‐kyu Koh, Hongmei Luo, Victor I. Klimov, Jeffrey M. Pietryga
SJR Q1Journal of the American Chemical Society

PbSe nanocrystal quantum dots (NQDs) are a promising active material for a range of optoelectronic devices, including solar cells, high-sensitivity infrared (IR) photodetectors, and IR-emitting diodes and lasers. However, device realization has been constrained by these NQDs' chemical instability toward oxidation, which leads to uncontrollable changes in optical and electronic properties. Here, we present a simple method to enhance the stability of PbSe NQDs against oxidation and to improve thei

Materials ChemistryMaterials Science
8
Article|237 citations·2010
Multicolored Light-Emitting Diodes Based on All-Quantum-Dot Multilayer Films Using Layer-by-Layer Assembly Method
Wan Ki Bae, Jeonghun Kwak, Jaehoon Lim, Donggu Lee, Min Ki Nam, Kookheon Char, Changhee Lee, Seonghoon Lee
SJR Q1Nano Letters

A systematic analysis of the exciton-recombination zone within all-quantum dot (QD) multilayer films prepared by a layer-by-layer assembly method was made, using sensing QD layers in QD-based light-emitting diodes (QLEDs). Large area practical multicolored colloidal QLEDs were also demonstrated by patterning and placing variously colored QDs (red, orange, yellow-green, and green) in the exciton-recombination zone.

Materials ChemistryMaterials Science
9
Article|225 citations·2014
R/G/B/Natural White Light Thin Colloidal Quantum Dot‐Based Light‐Emitting Devices
Wan Ki Bae, Jaehoon Lim, Donggu Lee, Myeongjin Park, Hyunkoo Lee, Jeonghun Kwak, Kookheon Char, Changhee Lee, Seonghoon Lee
SJR Q1Advanced Materials

Bright, low-voltage driven colloidal quantum dot (QD)-based white light-emitting devices (LEDs) with practicable device performances are enabled by the direct exciton formation within quantum-dot active layers in a hybrid device structure. Detailed device characterization reveals that white-QLEDs can be rationalized as a parallel circuit, in which different QDs are connected through the same set of electrically common organic and inorganic charge transport layers.

Materials ChemistryMaterials Science
10
Article|199 citations·2022
Direct patterning of colloidal quantum dots with adaptable dual-ligand surface
Donghyo Hahm, Jaemin Lim, Hyeokjun Kim, Jinwook Shin, Seongkwon Hwang, Seunghyun Rhee, Jun Hyuk Chang, Jeehye Yang, Chang Hyeon Lim, Hyunwoo Jo, Beomgyu Choi, Nam Sung Cho
SJR Q1Nature Nanotechnology
Materials ChemistryMaterials Science
11
Article|197 citations·2018
Unraveling the Origin of Operational Instability of Quantum Dot Based Light-Emitting Diodes
Jun Hyuk Chang, Philip Park, Heeyoung Jung, Byeong Guk Jeong, Donghyo Hahm, Gabriel Nagamine, Jongkuk Ko, Jinhan Cho, Lázaro A. Padilha, Doh C. Lee, Changhee Lee, Kookheon Char
SJR Q1ACS Nano

We investigate the operational instability of quantum dot (QD)-based light-emitting diodes (QLEDs). Spectroscopic analysis on the QD emissive layer within devices in chorus with the optoelectronic and electrical characteristics of devices discloses that the device efficiency of QLEDs under operation is indeed deteriorated by two main mechanisms. The first is the luminance efficiency drop of the QD emissive layer in the running devices owing to the accumulation of excess electrons in the QDs, whi

Materials ChemistryMaterials Science
12
Article|188 citations·2008
Gram-Scale One-Pot Synthesis of Highly Luminescent Blue Emitting Cd1−xZnxS/ZnS Nanocrystals
Wan Ki Bae, Min Ki Nam, Kookheon Char, Seonghoon Lee
SJR Q1Chemistry of Materials

We demonstrated a facile synthesis of highly luminescent blue emitting Cd 1− x Zn x S/ZnS core/shell structured nanocrystals (NCs) in straightforward and reproducible manner. The alloyed Cd 1− x Zn x S cores with homogeneity in both size and composition were prepared by introducing S precursors (S dissolved in the noncoordinating solvent (1-octadecene)) into the mixed solution of Cd−Oleate (Cd(OA) 2 ) and Zn−Oleate (Zn(OA) 2 ) at elevated temperature (300 °C). ZnS shells were successively overco

Materials ChemistryMaterials Science
13
Article|159 citations·2016
Colloidal Spherical Quantum Wells with Near-Unity Photoluminescence Quantum Yield and Suppressed Blinking
Byeong Guk Jeong, Young‐Shin Park, Jun Hyuk Chang, Ikjun Cho, Jai Kyeong Kim, Heesuk Kim, Kookheon Char, Jinhan Cho, Victor I. Klimov, Philip Park, Doh C. Lee, Wan Ki Bae
SJR Q1ACS Nano

Thick inorganic shells endow colloidal nanocrystals (NCs) with enhanced photochemical stability and suppression of photoluminescence intermittency (also known as blinking). However, the progress of using thick-shell heterostructure NCs in applications has been limited due to the low photoluminescence quantum yield (PL QY ≤ 60%) at room temperature. Here, we demonstrate thick-shell NCs with CdS/CdSe/CdS seed/spherical quantum well/shell (SQW) geometry that exhibit near-unity PL QY at room tempera

Materials ChemistryMaterials Science
14
Article|154 citations·2019
Design Principle for Bright, Robust, and Color-Pure InP/ZnSexS1–x/ZnS Heterostructures
Donghyo Hahm, Jun Hyuk Chang, Byeong Guk Jeong, Philip Park, Jaeyoul Kim, Seongjae Lee, Jeongwook Choi, Whi Dong Kim, Seunghyun Rhee, Jaehoon Lim, Doh C. Lee, Changhee Lee
SJR Q1Chemistry of Materials

Advance in wet chemistry enables the sophisticated design of nanocrystal quantum dots (QDs) and allows unprecedented color purity and brightness, promising their useful applications in a variety of light-emitting applications. A representative example is core/shell heterostructures, in which charge carriers are effectively decoupled from structural artifacts to generate photons efficiently. Despite the development of widely accepted synthetic protocols for Cd- or Pb-based QDs, the progress in he

Materials ChemistryMaterials Science
15
Review|143 citations·2019
III–V colloidal nanocrystals: control of covalent surfaces
Youngsik Kim, Jun Hyuk Chang, Hyekyoung Choi, Yong‐Hyun Kim, Wan Ki Bae, Sohee Jeong
SJR Q1Chemical ScienceOA

Colloidal quantum dots (QDs) are nanosized semiconductors whose electronic features are dictated by the quantum confinement effect. The optical, electrical, and chemical properties of QDs are influenced by their dimensions and surface landscape. The surface of II-VI and IV-VI QDs has been extensively explored; however, in-depth investigations on the surface of III-V QDs are still lagging behind. This Perspective discusses the current understanding of the surface of III-V QDs, outlines deep trap

Materials ChemistryMaterials Science

Research Areas

Materials ChemistryElectrical and Electronic EngineeringBiomedical EngineeringAtomic and Molecular Physics, and OpticsElectronic, Optical and Magnetic MaterialsRenewable Energy, Sustainability and the Environment

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