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Lee, Tae-Woo

Seoul National University · Engineering

About the Lab

Professor Lee Tae-Woo's research lab specializes in next-generation optoelectronic materials and devices, with a focus on perovskite-based light-emitting diodes (PeLEDs) and bio-inspired electronic systems. The lab pioneers high-efficiency, low-cost perovskite semiconductors through innovative nanostructuring, defect passivation, and heterostructure engineering to enhance luminescent efficiency and stability. Additionally, the lab develops flexible, biomimetic electronic systems that emulate the function of biological nerves and synapses, enabling applications in wearable sensors and neuromorphic computing. Their work bridges materials science, nanotechnology, and bioelectronics to create energy-efficient, high-performance devices.

perovskite LEDsorganic-inorganic hybridsneuromorphic electronicsflexible sensorsexciton confinement

Research Overview

Papers
409
Total Citations
37,955
Papers (5y)
87
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
87total
2021
2022
2023
2024
2025
Citations per year (5y)
6,370total
20212022202320242025

Selected Papers

15
1
Article|2,873 citations·2015
Overcoming the electroluminescence efficiency limitations of perovskite light-emitting diodes
Himchan Cho, Su-Hun Jeong, Min Ho Park, Young‐Hoon Kim, Christoph Wolf, Chang‐Lyoul Lee, Jin Hyuck Heo, Aditya Sadhanala, NoSoung Myoung, Seunghyup Yoo, Sang Hyuk Im, Richard H. Friend
SJR Q1FWCI 155.5Science

Organic-inorganic hybrid perovskites are emerging low-cost emitters with very high color purity, but their low luminescent efficiency is a critical drawback. We boosted the current efficiency (CE) of perovskite light-emitting diodes with a simple bilayer structure to 42.9 candela per ampere, similar to the CE of phosphorescent organic light-emitting diodes, with two modifications: We prevented the formation of metallic lead (Pb) atoms that cause strong exciton quenching through a small increase

Electrical and Electronic EngineeringEngineering
2
Article|1,384 citations·2018
A bioinspired flexible organic artificial afferent nerve
Yeongin Kim, Alex Chortos, Wentao Xu, Yuxin Liu, Jin Young Oh, Donghee Son, Jiheong Kang, Amir M. Foudeh, Chenxin Zhu, Yeongjun Lee, Simiao Niu, Jia Liu
SJR Q1FWCI 72.4Science

The distributed network of receptors, neurons, and synapses in the somatosensory system efficiently processes complex tactile information. We used flexible organic electronics to mimic the functions of a sensory nerve. Our artificial afferent nerve collects pressure information (1 to 80 kilopascals) from clusters of pressure sensors, converts the pressure information into action potentials (0 to 100 hertz) by using ring oscillators, and integrates the action potentials from multiple ring oscilla

Electrical and Electronic EngineeringEngineering
3
Article|1,260 citations·2014
Multicolored Organic/Inorganic Hybrid Perovskite Light‐Emitting Diodes
Young‐Hoon Kim, Himchan Cho, Jin Hyuck Heo, Taesik Kim, NoSoung Myoung, Chang‐Lyoul Lee, Sang Hyuk Im, Tae‐Woo Lee
SJR Q1FWCI 79.4Advanced Materials

Bright organic/inorganic hybrid perov-skite light-emitting diodes (PrLEDs) are realized by using CH3 NH3 PbBr3 as an emitting layer and self-organized buffer hole-injection layer (Buf-HIL). The PrLEDs show high luminance, current efficiency, and EQE of 417 cd m(-2) , 0.577 cd A(-1) , and 0.125%, respectively. Buf-HIL can facilitate hole injection into CH3 NH3 PbBr3 as well as block exciton quenching.

Electrical and Electronic EngineeringEngineering
4
Article|646 citations·2016
Efficient Visible Quasi‐2D Perovskite Light‐Emitting Diodes
Jinwoo Byun, Himchan Cho, Christoph Wolf, Mi Jang, Aditya Sadhanala, Richard H. Friend, Hoichang Yang, Tae‐Woo Lee
SJR Q1FWCI 50.3Advanced Materials

Efficient quasi-2D-structure perovskite light-emitting diodes (4.90 cd A(-1) ) are demonstrated by mixing a 3D-structured perovskite material (methyl ammonium lead bromide) and a 2D-structured perovskite material (phenylethyl ammonium lead bromide), which can be ascribed to better film uniformity, enhanced exciton confinement, and reduced trap density.

Electrical and Electronic EngineeringEngineering
5
Article|554 citations·2016
Organic core-sheath nanowire artificial synapses with femtojoule energy consumption
Wentao Xu, Sung‐Yong Min, Hyunsang Hwang, Tae‐Woo Lee
SJR Q1FWCI 21.8Science AdvancesOA

Emulation of biological synapses is an important step toward construction of large-scale brain-inspired electronics. Despite remarkable progress in emulating synaptic functions, current synaptic devices still consume energy that is orders of magnitude greater than do biological synapses (~10 fJ per synaptic event). Reduction of energy consumption of artificial synapses remains a difficult challenge. We report organic nanowire (ONW) synaptic transistors (STs) that emulate the important working pr

Electrical and Electronic EngineeringEngineering
6
Article|540 citations·2016
Metal halide perovskite light emitters
Young‐Hoon Kim, Himchan Cho, Tae‐Woo Lee
SJR Q1FWCI 44.9Proceedings of the National Academy of SciencesOA

Twenty years after layer-type metal halide perovskites were successfully developed, 3D metal halide perovskites (shortly, perovskites) were recently rediscovered and are attracting multidisciplinary interest from physicists, chemists, and material engineers. Perovskites have a crystal structure composed of five atoms per unit cell (ABX<sub>3</sub>) with cation A positioned at a corner, metal cation B at the center, and halide anion X at the center of six planes and unique optoelectronic properti

Electrical and Electronic EngineeringEngineering
7
Article|513 citations·2018
Stretchable organic optoelectronic sensorimotor synapse
Yeongjun Lee, Jin Young Oh, Wentao Xu, Onnuri Kim, Taeho Roy Kim, Jiheong Kang, Yeongin Kim, Donghee Son, Jeffrey B.‐H. Tok, Moon Jeong Park, Zhenan Bao, Tae‐Woo Lee
SJR Q1FWCI 24.1Science AdvancesOA

Emulation of human sensory and motor functions becomes a core technology in bioinspired electronics for next-generation electronic prosthetics and neurologically inspired robotics. An electronic synapse functionalized with an artificial sensory receptor and an artificial motor unit can be a fundamental element of bioinspired soft electronics. Here, we report an organic optoelectronic sensorimotor synapse that uses an organic optoelectronic synapse and a neuromuscular system based on a stretchabl

Electrical and Electronic EngineeringEngineering
8
Review|509 citations·2019
Flexible Neuromorphic Electronics for Computing, Soft Robotics, and Neuroprosthetics
Hea‐Lim Park, Yeongjun Lee, Naryung Kim, Dae‐Gyo Seo, Gyeong‐Tak Go, Tae‐Woo Lee
SJR Q1FWCI 24.7Advanced Materials

Flexible neuromorphic electronics that emulate biological neuronal systems constitute a promising candidate for next-generation wearable computing, soft robotics, and neuroprosthetics. For realization, with the achievement of simple synaptic behaviors in a single device, the construction of artificial synapses with various functions of sensing and responding and integrated systems to mimic complicated computing, sensing, and responding in biological systems is a prerequisite. Artificial synapses

Electrical and Electronic EngineeringEngineering
9
Article|500 citations·2015
Planar heterojunction organometal halide perovskite solar cells: roles of interfacial layers
Hobeom Kim, Kyung‐Geun Lim, Tae‐Woo Lee
SJR Q1FWCI 46.4Energy & Environmental Science

This review article gives an overview of progress in planar heterojunction perovskite solar cells and the roles of interfacial layers in the device, and suggests a practical strategy to fabricate highly efficient and flexible planar heterojunction perovskite solar cells.

Electrical and Electronic EngineeringEngineering
10
Review|458 citations·2018
Improving the Stability of Metal Halide Perovskite Materials and Light‐Emitting Diodes
Himchan Cho, Young‐Hoon Kim, Christoph Wolf, Hyeon‐Dong Lee, Tae‐Woo Lee
SJR Q1FWCI 33.9Advanced MaterialsOA

Metal halide perovskites (MHPs) have numerous advantages as light emitters such as high photoluminescence quantum efficiency with a direct bandgap, very narrow emission linewidth, high charge-carrier mobility, low energetic disorder, solution processability, simple color tuning, and low material cost. Based on these advantages, MHPs have recently shown unprecedented radical progress (maximum current efficiency from 0.3 to 42.9 cd A<sup>-1</sup> ) in the field of light-emitting diodes. However, p

Electrical and Electronic EngineeringEngineering
11
Article|426 citations·2016
Organometal Halide Perovskite Artificial Synapses
Wentao Xu, Himchan Cho, Young‐Hoon Kim, Young‐Tae Kim, Christoph Wolf, Chan‐Gyung Park, Tae‐Woo Lee
SJR Q1FWCI 18.3Advanced Materials

Organometal halide perovskite synaptic devices are fabricated; they emulate important working principles of a biological synapse, including excitatory postsynaptic current, paired-pulse facilitation, short-term plasticity, long-term plasticity, and spike-timing dependent plasticity. These properties originate from possible ion migration in the ion-rich perovskite matrix. This work has extensive applicability and practical significance in neuromorphic electronics.

Electrical and Electronic EngineeringEngineering
12
Review|387 citations·2022
A roadmap for the commercialization of perovskite light emitters
Tae‐Hee Han, Kyung Yeon Jang, Yitong Dong, Richard H. Friend, Edward H. Sargent, Tae‐Woo Lee
SJR Q1FWCI 32.4Nature Reviews Materials
Electrical and Electronic EngineeringEngineering
13
Article|372 citations·2020
Retina‐Inspired Carbon Nitride‐Based Photonic Synapses for Selective Detection of UV Light
Hea‐Lim Park, Haeju Kim, Donggyu Lim, Huanyu Zhou, Young‐Hoon Kim, Yeongjun Lee, Sungjin Park, Tae‐Woo Lee
SJR Q1FWCI 23.8Advanced Materials

Photonic synapses combine sensing and processing in a single device, so they are promising candidates to emulate visual perception of a biological retina. However, photonic synapses with wavelength selectivity, which is a key property for visual perception, have not been developed so far. Herein, organic photonic synapses that selectively detect UV rays and process various optical stimuli are presented. The photonic synapses use carbon nitride (C<sub>3</sub> N<sub>4</sub> ) as an UV-responsive f

Electrical and Electronic EngineeringEngineering
14
Article|358 citations·2014
Boosting the Power Conversion Efficiency of Perovskite Solar Cells Using Self‐Organized Polymeric Hole Extraction Layers with High Work Function
Kyung‐Geun Lim, Hak‐Beom Kim, Jaeki Jeong, Hobeom Kim, Jin Young Kim, Tae‐Woo Lee
SJR Q1FWCI 34.7Advanced Materials

A self-organized hole extraction layer (SOHEL) with high work function (WF) is designed for energy level alignment with the ionization potential level of CH3 NH3 PbI3 . The SOHEL increases the built-in potential, photocurrent, and power conversion efficiency (PCE) of CH3 NH3 PbI3 perovskite solar cells. Thus, interface engineering of the positive electrode of solution-processed planar heterojunction solar cells using a high-WF SOHEL is a very effective way to achieve high device efficiency (PCE

Electrical and Electronic EngineeringEngineering
15
Review|331 citations·2019
Organic Synapses for Neuromorphic Electronics: From Brain-Inspired Computing to Sensorimotor Nervetronics
Yeongjun Lee, Tae‐Woo Lee
SJR Q1FWCI 18.8Accounts of Chemical Research

Living organisms have a long evolutionary history that has provided them with functions and structures that enable them to survive in their environment. The goal of biomimetic technology is to emulate these traits of living things. Research in bioinspired electronics develops electronic sensors and motor systems that mimic biological sensory organs and motor systems and that are intended to be used in bioinspired applications such as humanoid robots, exoskeletons, and other devices that combine

Electrical and Electronic EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringMaterials ChemistryBiomedical EngineeringPolymers and PlasticsElectronic, Optical and Magnetic MaterialsRenewable Energy, Sustainability and the Environment

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