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Se‐Woong Baek

Korea University · 材料科学

研究室紹介

Professor Se-Woong Baek's research lab specializes in the development of advanced nanomaterials and optoelectronic devices for next-generation energy conversion and sensing technologies. The lab focuses on plasmonic nanostructures, colloidal quantum dots, and hybrid heterojunctions to enhance light absorption and charge transport in organic and perovskite solar cells. Key research directions include plasmonic light management, interface engineering in solution-processed photovoltaics, and broadband photodetectors using quantum dot heterostructures. The lab also explores dopant-free hole transport materials and nanostructured electrodes to improve device efficiency and stability.

plasmonicscolloidal quantum dotsperovskite solar cellsoptoelectronic devicescharge transport

Research Overview

Papers
88
Total Citations
5,551
Papers (5y)
44
Primary Field
材料科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
44total
2022
2023
2024
2025
2026
Citations per year (5y)
572total
20222023202420252026

Selected Papers

15
1
Article|259 citations·2014
Au@Ag Core–Shell Nanocubes for Efficient Plasmonic Light Scattering Effect in Low Bandgap Organic Solar Cells
Se‐Woong Baek, Garam Park, Jonghyeon Noh, Changsoon Cho, Chunho Lee, Min‐Kyo Seo, Hyunjoon Song, Jung‐Yong Lee
SJR Q1ACS Nano

In this report, we propose a metal-metal core-shell nanocube (NC) as an advanced plasmonic material for highly efficient organic solar cells (OSCs). We covered an Au core with a thin Ag shell as a scattering enhancer to build Au@Ag NCs, which showed stronger scattering efficiency than Au nanoparticles (AuNPs) throughout the visible range. Highly efficient plasmonic organic solar cells were fabricated by embedding Au@Ag NCs into an anodic buffer layer, poly(3,4-ethylenedioxythiophene):poly(styren

Electrical and Electronic EngineeringEngineering
2
Article|248 citations·2013
Plasmonic Forward Scattering Effect in Organic Solar Cells: A Powerful Optical Engineering Method
Se‐Woong Baek, Jonghyeon Noh, Chunho Lee, BongSoo Kim, Min‐Kyo Seo, Jung‐Yong Lee
SJR Q1Scientific ReportsOA

In this report, plasmonic effects in organic photovoltaic cells (OPVs) are systematically analyzed using size-controlled silver nanoparticles (AgNPs, diameter: 10 ~ 100 nm), which were incorporated into the anodic buffer layer, poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS). The optical properties of AgNPs tuned by size considerably influence the performance levels of devices. The power conversion efficiency (PCE) was increased from 6.4% to 7.6% in poly[N-9-hepta-decanyl-2,7

Electrical and Electronic EngineeringEngineering
3
Article|165 citations·2019
Efficient hybrid colloidal quantum dot/organic solar cells mediated by near-infrared sensitizing small molecules
Se‐Woong Baek, Sunhong Jun, Byeongsu Kim, Andrew H. Proppe, Olivier Ouellette, Oleksandr Voznyy, Changjo Kim, Junho Kim, Grant Walters, Jung Hoon Song, Sohee Jeong, Hye Ryung Byun
SJR Q1Nature EnergyOA
Electrical and Electronic EngineeringEngineering
4
Article|59 citations·2019
Nanostructured Back Reflectors for Efficient Colloidal Quantum‐Dot Infrared Optoelectronics
Se‐Woong Baek, Pau Molet, Min‐Jae Choi, Margherita Biondi, Olivier Ouellette, James Z. Fan, Sjoerd Hoogland, F. Pelayo Garcı́a de Arquer, Agustín Mihi, Edward H. Sargent
SJR Q1Advanced MaterialsOA

Abstract Colloidal quantum dots (CQDs) can be used to extend the response of solar cells, enabling the utilization of solar power that lies to the red of the bandgap of c‐Si and perovskites. To achieve largely complete absorption of infrared (IR) photons in CQD solids requires thicknesses on the micrometer range; however, this exceeds the typical diffusion lengths (≈300 nm) of photoexcited charges in these materials. Nanostructured metal back electrodes that grant the cell efficient IR light tra

Materials ChemistryMaterials Science
5
Article|52 citations·2023
Sulfurized Colloidal Quantum Dot/Tungsten Disulfide Multi‐Dimensional Heterojunction for an Efficient Self‐Powered Visible‐to‐SWIR Photodetector
Sol‐Hee Kim, Dong-Gyu Lee, Sang‐Hyun Moon, Jae‐Hwan Choi, Dong-Eon Kim, Jihyun Kim, Se‐Woong Baek
SJR Q1Advanced Functional MaterialsOA

Abstract Emerging semiconducting materials show considerable promise for application in the development of next‐generation optoelectronic devices. In particular, broadband light detection is crucial in various applications, including multispectral imaging and cognition. Therefore, tuning the physical properties of semiconductors and thereby building an efficient heterojunction are important for achieving a high‐performance photodetection device. In this study, a heavy p‐type colloidal quantum do

Materials ChemistryMaterials Science
6
Article|47 citations·2018
A hydro/oxo-phobic top hole-selective layer for efficient and stable colloidal quantum dot solar cells
Se‐Woong Baek, Sang-Hoon Lee, Jung Hoon Song, Changjo Kim, Ye-Seol Ha, Hyeyoung Shin, Hyungjun Kim, Sohee Jeong, Jung‐Yong Lee
SJR Q1Energy & Environmental Science

In this report, we explore the underlying mechanisms by which doped organic thin films as a top hole-selective layer (HSL) improve the performance and stability of colloidal quantum dot (CQD)-based solar cells.

Materials ChemistryMaterials Science
7
Article|45 citations·2021
A tailored graft-type polymer as a dopant-free hole transport material in indoor perovskite photovoltaics
Henry Opoku, Yun Hoo Kim, Ji Hyeon Lee, Hyungju Ahn, Jae‐Joon Lee, Se‐Woong Baek, Jea Woong Jo
SJR Q1Journal of Materials Chemistry A

A new graft-type polymer which exhibits dual functionality of efficient charge transport and interfacial passivation was synthesized as a dopant-free hole transport material for indoor perovskite photovoltaics.

Electrical and Electronic EngineeringEngineering
8
Article|43 citations·2024
P‐Type Colloidal InSb Quantum Dot Ink Enables III–V Group Bulk‐Heterojunction Shortwave Infrared (SWIR) Photodetector
Seungin Jee, Min‐Jae Si, Jae‐Hwan Choi, Dong-Eon Kim, Changjo Kim, Dongsoo Yang, Se‐Woong Baek
SJR Q1Advanced Optical MaterialsOA

Abstract Infrared (IR) optoelectronics have become important owing to their various applications, such as recognition, autonomous driving, and quantum communications. In particular, detection beyond 1400‐nm wavelength in the shortwave IR (SWIR) spectrum (i.e., 1550 nm) is important for eye safety, and long‐range communication. Recently, group III–V (InAs or InSb) colloidal quantum dots (CQDs) have attracted considerable interest due to their broadband optical tunability and toxic‐elements (Pb an

Materials ChemistryMaterials Science
9
Article|42 citations·2024
Colloidal InAs Quantum Dot‐Based Infrared Optoelectronics Enabled by Universal Dual‐Ligand Passivation
Min‐Jae Si, Seungin Jee, Minjung Yang, Dong-Eon Kim, Yongnam Ahn, Seungjin Lee, Changjo Kim, In‐Ho Bae, Se‐Woong Baek
SJR Q1Advanced ScienceOA

Solution-processed low-bandgap semiconductors are crucial to next-generation infrared (IR) detection for various applications, such as autonomous driving, virtual reality, recognitions, and quantum communications. In particular, III-V group colloidal quantum dots (CQDs) are interesting as nontoxic bandgap-tunable materials and suitable for IR absorbers; however, the device performance is still lower than that of Pb-based devices. Herein, a universal surface-passivation method of InAs CQDs enable

Materials ChemistryMaterials Science
10
Article|35 citations·2015
Enhancing the Internal Quantum Efficiency and Stability of Organic Solar Cells via Metallic Nanofunnels
Se‐Woong Baek, Jong Hun Kim, Juhoon Kang, Hyunsoo Lee, Jeong Young Park, Jung‐Yong Lee
SJR Q1Advanced Energy Materials

Metal nanoparticles are demonstrated to boost the internal quantum efficiency (IQE) of organic solar cells (OSCs), even without a notable plasmonic optical gain. A hybrid layer platform in combination with silver nanoparticles (AgNPs) and a polyethylenimine‐ethoxylated (PEIE) layer maximize the IQE of the OSCs to nearly 100%, yielding a power conversion efficiency (PCE) of 10.1% in the OSCs. 2D surface characterization confirmed that the AgNPs provide a short path and funneled charge carriers to

Electrical and Electronic EngineeringEngineering
11
Article|35 citations·2024
Multi‐Facet Passivation of Ternary Colloidal Quantum Dot Enabled by Quadruple‐Ligand Ensemble toward Efficient Lead‐Free Optoelectronics
Dong-Eon Kim, Gaeun Cho, Yun Hoo Kim, Ji Hyun Kwon, Yeonwoo Oh, Minjung Yang, Seungin Jee, In Suh Lee, Min‐Jae Si, Yujin Jung, Ho Yeon Yang, Yongnam Ahn
SJR Q1Advanced Energy MaterialsOA

Abstract Solution‐processed ternary‐compound semiconductor AgBiS 2 colloidal quantum dots (CQDs) are promising light‐absorbing materials owing to their nontoxicity and high absorption coefficient (>10 6 cm −1 ). However, rational strategies to passivate multi‐facet of ternary‐compound CQDs and manufacture stable CQD inks have not yet been proposed. In this paper, a ligand passivation strategy is proposed using a solution‐phase ligand exchange method. A quadruple‐ligand ensemble is employed to

Materials ChemistryMaterials Science
12
Article|34 citations·2024
Silver Telluride Colloidal Quantum Dot Solid for Fast Extended Shortwave Infrared Photodetector
Yongnam Ahn, So Young Eom, Gahyeon Kim, Jin Hyeok Lee, Beomkwan Kim, Dong-Eon Kim, Min‐Jae Si, Minjung Yang, Yujin Jung, B.S. Kim, Yoon Jang Chung, Kwang Seob Jeong
SJR Q1Advanced ScienceOA

Abstract Extended shortwave infrared (eSWIR) photodetectors that employ solution‐processable semiconductors have attracted attention for use in applications such as ranging, night vision, and gas detection. Colloidal quantum dots (CQDs) are promising materials with facile bandgap tunability across the visible‐to‐mid‐infrared wavelengths. However, toxic elements, such as Hg and Pb, and the slow response time of CQD‐based IR photodetectors, limit their commercial viability. This article presents a

Materials ChemistryMaterials Science
13
Article|34 citations·2015
A Resonance‐Shifting Hybrid n‐Type Layer for Boosting Near‐Infrared Response in Highly Efficient Colloidal Quantum Dots Solar Cells
Se‐Woong Baek, Jung Hoon Song, Woong Choi, Hyunjoon Song, Sohee Jeong, Jung‐Yong Lee
SJR Q1Advanced MaterialsOA

A new configuration of a plasmonic quantum dots solar structure is proposed. Gold-silver core-shell metal nanoparticles (Au@Ag NCs) are incorporated into the TiO2 layer (Au@Ag NCs-HL) of PbS-based solar cells. The TiO2 layer enables the Au@Ag NCs to have broad plasmonic responses and the external quantum efficiency and absorption of the plasmonic devices are significantly enhanced. The electrical performance of the solar cells is also improved.

Materials ChemistryMaterials Science
14
Article|27 citations·2018
Infrared Cavity-Enhanced Colloidal Quantum Dot Photovoltaics Employing Asymmetric Multilayer Electrodes
Se‐Woong Baek, Olivier Ouellette, Jea Woong Jo, Jongmin Choi, Ki‐Won Seo, Junghwan Kim, Bin Sun, Sang‐Hoon Lee, Min‐Jae Choi, Dae‐Hyun Nam, Li Na Quan, Juhoon Kang
SJR Q1ACS Energy Letters

Efficient infrared (IR) optoelectronic devices, crucial for emerging sensing applications and also for solar energy harvesting, demand high-conductivity IR-transparent electrodes. Here we present a new strategy, one based on oxide/metal/oxide multilayers, that enables highly transparent IR electrodes. Symmetry breaking in the oxide stack leads to broad and high transmittance from visible to IR wavelengths, while a low refractive index doped oxide as a front layer boosts IR transmittance. The com

Materials ChemistryMaterials Science
15
Article|27 citations·2024
Giant Colloidal Quantum Dot/α-Ga2O3 Heterojunction for High Performance UV–Vis–IR Broadband Photodetector
Dong-Gyu Lee, Seoryeon Jeong, Sang‐Hyun Moon, Minjung Yang, Sol-Hee Kim, Dong-Eon Kim, Seo‐Young Lee, In-Suh Lee, Dae‐Woo Jeon, Ji-Hyeon Park, Jihyun Kim, Se‐Woong Baek
SJR Q1ACS Nano

Broadband optoelectronics, which extend from the UV to IR regions, are crucial for imaging, autonomous driving, and object recognition. In particular, photon detection efficiency relies significantly on semiconductor properties, such as absorption coefficients and electron–hole pair generation rate, which can be optimized by designing a suitable p–n junction. In this study, we devise giant PbS colloidal quantum dots (G-PbS CQDs) that exhibit high absorption coefficients and broadband absorption.

Electronic, Optical and Magnetic MaterialsMaterials Science

Research Areas

Materials ChemistryElectrical and Electronic EngineeringRenewable Energy, Sustainability and the EnvironmentBiomedical EngineeringElectronic, Optical and Magnetic MaterialsPolymers and Plastics

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