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Donghyo Hahm

Hanyang University · Materials Science

About the Lab

Professor Donghyo Hahm's research lab specializes in the development of advanced colloidal quantum dots and their integration into next-generation optoelectronic devices. The lab focuses on enhancing the stability, efficiency, and functionality of quantum dot-based light-emitting diodes (QLEDs), lasers, and stretchable neuromorphic systems through innovative materials design and interface engineering. Key research directions include suppressing Auger recombination, enabling multi-color patterning, and achieving monolithic integration of sensing, computing, and actuating functions in flexible and biocompatible platforms.

quantum dotsQLEDsoptoelectronic devicesneuromorphic systemssolution-processed semiconductors

Research Overview

Papers
64
Total Citations
2,639
Papers (5y)
36
Primary Field
Materials Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
36total
2022
2023
2024
2025
2026
Citations per year (5y)
822total
20222023202420252026

Selected Papers

15
1
Article|293 citations·2021
Bright and Stable Quantum Dot Light‐Emitting Diodes
Taesoo Lee, Byong Jae Kim, Hyunkoo Lee, Donghyo Hahm, Wan Ki Bae, Jaehoon Lim, Jeonghun Kwak
SJR Q1Advanced Materials

Abstract Quantum dot light‐emitting diodes (QLEDs) are one of the most promising candidates for next‐generation displays and lighting sources, but they are barely used because vulnerability to electrical and thermal stresses precludes high brightness, efficiency, and stability at high current density ( J ) regimes. Here, bright and stable QLEDs on a Si substrate are demonstrated, expanding their potential application boundary over the present art. First, a tailored interface is granted to the qu

Materials ChemistryMaterials Science
2
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
3
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
4
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
5
Article|179 citations·2023
Electrically driven amplified spontaneous emission from colloidal quantum dots
Namyoung Ahn, Clément Livache, Valerio Pinchetti, Heeyoung Jung, Ho Jin, Donghyo Hahm, Young‐Shin Park, Victor I. Klimov
SJR Q1NatureOA

Abstract Colloidal quantum dots (QDs) are attractive materials for realizing solution-processable laser diodes that could benefit from size-controlled emission wavelengths, low optical-gain thresholds and ease of integration with photonic and electronic circuits 1–7 . However, the implementation of such devices has been hampered by fast Auger recombination of gain-active multicarrier states 1,8 , poor stability of QD films at high current densities 9,10 and the difficulty to obtain net optical g

Materials ChemistryMaterials Science
6
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
7
Article|139 citations·2021
A Bioinspired Stretchable Sensory‐Neuromorphic System
Sun Hong Kim, Geun Woo Baek, Jiyong Yoon, Seunghwan Seo, Jin‐Hong Park, Jin‐Hong Park, Donghyo Hahm, Jun Hyuk Chang, Duhwan Seong, Hyunseon Seo, Seyong Oh, Kyunghwan Kim
SJR Q1Advanced Materials

Abstract Conventional stretchable electronics that adopt a wavy design, a neutral mechanical plane, and conformal contact between abiotic and biotic interfaces have exhibited diverse skin‐interfaced applications. Despite such remarkable progress, the evolution of intelligent skin prosthetics is challenged by the absence of the monolithic integration of neuromorphic constituents into individual sensing and actuating components. Herein, a bioinspired stretchable sensory‐neuromorphic system, compri

Biomedical EngineeringEngineering
8
Article|114 citations·2021
Interface polarization in heterovalent core–shell nanocrystals
Byeong Guk Jeong, Jun Hyuk Chang, Donghyo Hahm, Seunghyun Rhee, Myeongjin Park, Sooho Lee, Youngdu Kim, Doyoon Shin, Jeong Woo Park, Changhee Lee, Doh C. Lee, Kyoungwon Park
SJR Q1Nature Materials
Materials ChemistryMaterials Science
9
Article|94 citations·2019
Highly Efficient and Bright Inverted Top‐Emitting InP Quantum Dot Light‐Emitting Diodes Introducing a Hole‐Suppressing Interlayer
Taesoo Lee, Donghyo Hahm, Kyunghwan Kim, Wan Ki Bae, Changhee Lee, Jeonghun Kwak
SJR Q1Small

Abstract InP quantum dots (QDs) based light‐emitting diodes (QLEDs) are considered as one of the most promising candidates as a substitute for the environmentally toxic Cd‐based QLEDs for future displays. However, the device architecture of InP QLEDs is almost the same as the Cd‐based QLEDs even though the properties of Cd‐based and InP‐based QDs are quite different in their energy levels and shapes. Thus, it is highly required to develop a proper device structure for InP‐based QLEDs to improve

Materials ChemistryMaterials Science
10
Article|83 citations·2022
Nondestructive Photopatterning of Heavy‐Metal‐Free Quantum Dots
Jeehye Yang, Myeongjae Lee, Se Young Park, Myoungjin Park, Jonghoon Kim, Niranjan Sitapure, Donghyo Hahm, Seunghyun Rhee, Daeyeon Lee, Hyunwoo Jo, Yong Hyun Jo, Jaemin Lim
SJR Q1Advanced Materials

Electroluminescence from quantum dots (QDs) is a suitable photon source for futuristic displays offering hyper-realistic images with free-form factors. Accordingly, a nondestructive and scalable process capable of rendering multicolored QD patterns on a scale of several micrometers needs to be established. Here, nondestructive direct photopatterning for heavy-metal-free QDs is reported using branched light-driven ligand crosslinkers (LiXers) containing multiple azide units. The branched LiXers e

Materials ChemistryMaterials Science
11
Article|80 citations·2021
Enhanced Performance of Pixelated Quantum Dot Light‐Emitting Diodes by Inkjet Printing of Quantum Dot–Polymer Composites
Heebum Roh, Donghyun Ko, Dong Yeol Shin, Jun Hyuk Chang, Donghyo Hahm, Wan Ki Bae, Changhee Lee, Jun Young Kim, Jeonghun Kwak
SJR Q1Advanced Optical Materials

Abstract Inkjet printing of colloidal quantum dots (QDs) is considered a promising technology for application in full‐color quantum dot light‐emitting diode (QLED) displays. However, QLEDs that are inkjet printed in a pixel‐defining bank structure generally exhibit a low performance, mainly due to the nonuniformity in its QD morphology. In this study, an enhanced performance of inkjet‐printing‐based pixelated QLEDs is achieved by introducing small amounts of poly(methyl methacrylate) (PMMA) of d

Materials ChemistryMaterials Science
12
Article|65 citations·2020
Tailoring the Electronic Landscape of Quantum Dot Light-Emitting Diodes for High Brightness and Stable Operation
Seunghyun Rhee, Jun Hyuk Chang, Donghyo Hahm, Byeong Guk Jeong, Jaeyoul Kim, Hyunkoo Lee, Jaehoon Lim, E. H. Hwang, Jeonghun Kwak, Wan Ki Bae
SJR Q1ACS Nano

The charge injection imbalance into the quantum dot (QD) emissive layer of QD-based light-emitting diodes (QD-LEDs) is an unresolved issue that is detrimental to the efficiency and operation stability of devices. Herein, an integrated approach to harmonize the charge injection rates for bright and stable QD-LEDs is proposed. Specifically, the electronic characteristics of the hole transport layer (HTL) is delicately designed in order to facilitate the hole injection from the HTL into QDs and con

Materials ChemistryMaterials Science
13
Article|50 citations·2022
Transient Dynamics of Charges and Excitons in Quantum Dot Light‐Emitting Diodes
Jaeyoul Kim, Donghyo Hahm, Wan Ki Bae, Hyunho Lee, Jeonghun Kwak
SJR Q1Small

Wide interest in quantum dot (QD) light-emitting diodes (QLEDs) for potential application to display devices and light sources has led to their rapid advancement in device performance. Despite such progress, detailed operation mechanisms of QLEDs, which are necessary for the fundamental understanding and further improvements, have been still uncertain because of the intricate interaction between charges and excitons in electrical operation. In this work, the transient electroluminescence (TREL)

Materials ChemistryMaterials Science
14
Article|48 citations·2020
Surface Engineered Colloidal Quantum Dots for Complete Green Process
Donghyo Hahm, Jisoo Park, Inho Jeong, Seunghyun Rhee, Taesoo Lee, Changhee Lee, Seunjun Chung, Wan Ki Bae, Seonwoo Lee
SJR Q1ACS Applied Materials & Interfaces

The rising demand for eradicating hazardous substances in the workplace has motivated vigorous researches on environmentally sustainable manufacturing processes of colloidal quantum dots (QDs) for their optoelectronic applications. Despite remarkable achievements witnessed in QD materials (e.g., Pb- or Cd-free QDs), the progress in the eco-friendly process is far falling behind and thus the practical use of QDs. Herein, a complete "green" process of QDs, which excludes environmentally unfriendly

Materials ChemistryMaterials Science
15
Article|43 citations·2024
Colloidal quantum dots enable tunable liquid-state lasers
Donghyo Hahm, Valerio Pinchetti, Clément Livache, Namyoung Ahn, Jungchul Noh, Xueyang Li, Jun Du, Kaifeng Wu, Victor I. Klimov
SJR Q1Nature MaterialsOA

Present-day liquid-state lasers are based on organic dyes. Here we demonstrate an alternative class of liquid lasers that use solutions of colloidal quantum dots (QDs). Previous efforts to realize such devices have been hampered by the fast non-radiative Auger recombination of multicarrier states required for optical gain. Here we overcome this challenge by using type-(I + II) QDs, which feature a trion-like optical gain state with strongly suppressed Auger recombination. When combined with a Li

Materials ChemistryMaterials Science

Research Areas

Materials ChemistryBiomedical EngineeringElectrical and Electronic EngineeringAtomic and Molecular Physics, and OpticsAutomotive Engineering

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