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Jung, In Hwan

Hanyang University · Engineering

About the Lab

Professor Jung, In Hwan's research lab specializes in the design and development of advanced organic and hybrid semiconductors for next-generation optoelectronic devices. The lab focuses on molecular engineering of low-bandgap polymers, non-fullerene acceptors, and electron transport materials to enhance performance in organic solar cells, perovskite solar cells, and thermoelectric devices. Key research directions include interface engineering via self-assembled monolayers, precise doping control for high power factors, and morphology optimization for efficient charge transport and extraction.

organic solar cellsperovskite solar cellsnon-fullerene acceptorsmolecular engineeringthermoelectric materials

Research Overview

Papers
148
Total Citations
4,240
Papers (5y)
55
Primary Field
Engineering

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)
487total
20222023202420252026

Selected Papers

15
1
Article|212 citations·2017
High‐Efficiency Low‐Temperature ZnO Based Perovskite Solar Cells Based on Highly Polar, Nonwetting Self‐Assembled Molecular Layers
Randi Azmi, Wisnu Tantyo Hadmojo, Septy Sinaga, Chang‐Lyoul Lee, Sung Cheol Yoon, In Hwan Jung, Sung‐Yeon Jang
SJR Q1Advanced Energy Materials

Abstract Herein, this study reports high‐efficiency, low‐temperature ZnO based planar perovskite solar cells (PSCs) with state‐of‐the‐art performance. They are achieved via a strategy that combines dual‐functional self‐assembled monolayer (SAM) modification of ZnO electron accepting layers (EALs) with sequential deposition of perovskite active layers. The SAMs, constructed from newly synthesized molecules with high dipole moments, act both as excellent surface wetting control layers and as elect

Electrical and Electronic EngineeringEngineering
2
Article|140 citations·2017
High-performance dopant-free conjugated small molecule-based hole-transport materials for perovskite solar cells
Randi Azmi, So Youn Nam, Septy Sinaga, Zico Alaia Akbar, Chang‐Lyoul Lee, Sung Cheol Yoon, In Hwan Jung, Sung‐Yeon Jang
SJR Q1Nano EnergyOA
Electrical and Electronic EngineeringEngineering
3
Article|124 citations·2010
Synthesis and Photovoltaic Properties of Cyclopentadithiophene‐Based Low‐Bandgap Copolymers That Contain Electron‐Withdrawing Thiazole Derivatives
In Hwan Jung, Jin‐Young Yu, Eunjae Jeong, Jinseck Kim, Sooncheol Kwon, Hoyoul Kong, Kwanghee Lee, Han Young Woo, Hong‐Ku Shim
SJR Q1Chemistry - A European Journal

We have synthesized four types of cyclopentadithiophene (CDT)-based low-bandgap copolymers, poly[{4,4-bis(2-ethylhexyl)-4H-cyclopenta[2,1-b:3,4-b']dithiophene-2,6-diyl}-alt-(2,2'-bithiazole-5,5'-diyl)] (PehCDT-BT), poly[(4,4-dioctyl-4H-cyclopenta[2,1-b:3,4-b']dithiophene-2,6-diyl)-alt-(2,2'-bithiazole-5,5'-diyl)] (PocCDT-BT), poly[{4,4-bis(2-ethylhexyl)-4H-cyclopenta[2,1-b:3,4-b']dithiophene-2,6-diyl}-alt-{2,5-di(thiophen-2-yl)thiazolo[5,4-d]thiazole-5,5'-diyl}] (PehCDT-TZ), and poly[(4,4-diocty

Electrical and Electronic EngineeringEngineering
4
Article|122 citations·2017
High Thermoelectric Power Factor of a Diketopyrrolopyrrole-Based Low Bandgap Polymer via Finely Tuned Doping Engineering
In Hwan Jung, Cheon Taek Hong, Un-Hak Lee, Young Hun Kang, Kwang-Suk Jang, Song Yun Cho
SJR Q1Scientific ReportsOA

Abstract We studied the thermoelectric properties of a diketopyrrolopyrrole-based semiconductor (PDPP3T) via a precisely tuned doping process using Iron (III) chloride. In particular, the doping states of PDPP3T film were linearly controlled depending on the dopant concentration. The outstanding Seebeck coefficient of PDPP3T assisted the excellent power factors (PFs) over 200 μW m −1 K −2 at the broad range of doping concentration (3–8 mM) and the maximum PF reached up to 276 μW m −1 K −2 , whic

Electrical and Electronic EngineeringEngineering
5
Article|104 citations·2014
Synthesis and Search for Design Principles of New Electron Accepting Polymers for All-Polymer Solar Cells
In Hwan Jung, Wai‐Yip Lo, Jaeyoung Jang, Wei Chen, Donglin Zhao, Erik S. Landry, Luyao Lu, Dmitri V. Talapin, Luping Yu
SJR Q1Chemistry of Materials

New electron withdrawing monomers, thieno[2′,3′:5′,6′]pyrido[3,4- g ]thieno[3,2- c ]isoquinoline-5,11(4 H,10 H )-dione (TPTI) and fluorenedicyclopentathiophene dimalononitrile (CN), have been developed and used to form 12 alternating polymers having different monomer combinations: (a) weak donating monomer–strong accepting monomer, (b) weak accepting monomer–strong accepting monomer, (c) weak accepting monomer–weak accepting monomer, and (d) strong donating monomer–strong accepting monomer. It w

Electrical and Electronic EngineeringEngineering
6
Article|87 citations·2016
Highly efficient and thermally stable fullerene-free organic solar cells based on a small molecule donor and acceptor
Sachin Badgujar, Chang Eun Song, Sora Oh, Won Suk Shin, Sang‐Jin Moon, Jong‐Cheol Lee, In Hwan Jung, Sang Kyu Lee
SJR Q1Journal of Materials Chemistry A

We studied fullerene-free organic solar cells using rhodanine-terminated BDT3TR and O-IDTBR.

Electrical and Electronic EngineeringEngineering
7
Article|67 citations·2016
Geometrically controlled organic small molecule acceptors for efficient fullerene-free organic photovoltaic devices
Wisnu Tantyo Hadmojo, So Youn Nam, Tae Joo Shin, Sung Cheol Yoon, Sung‐Yeon Jang, In Hwan Jung
SJR Q1Journal of Materials Chemistry A

Incorporation of a 2,5-difluorobenzene (F2B) moiety provides a unique structure with improved molecular ordering and blend morphology, giving a PCE reaching 5% using an F2B-containing acceptor (F2B-T2PDI) whereas using a counterpart acceptor gave only 3.63%.

Electrical and Electronic EngineeringEngineering
8
Article|64 citations·2015
Development and Structure/Property Relationship of New Electron Accepting Polymers Based on Thieno[2′,3′:4,5]pyrido[2,3-g]thieno[3,2-c]quinoline-4,10-dione for All-Polymer Solar Cells
In Hwan Jung, Donglin Zhao, Jaeyoung Jang, Wei Chen, Erik S. Landry, Luyao Lu, Dmitri V. Talapin, Luping Yu
SJR Q1Chemistry of Materials

Several electron accepting polymers having weak accepting–strong accepting (WA-SA) and strong accepting–strong accepting (SA-SA) monomer alternation were synthesized for studies of structure/property relationship in all-polymer solar cells. Two kinds of cyclic amide monomers, 4,10-bis(2-butyloctyl)-thieno[2′,3′:5,6]pyrido[3,4-g]thieno-[3,2- c ]isoquinoline-5,11-dione (TPTI) and 5,11-bis(2-butyloctyl)-thieno[2′,3′:4,5]pyrido[2,3-g]thieno[3,2- c ]quinoline-4,10-dione (TPTQ), were synthesized as we

Electrical and Electronic EngineeringEngineering
9
Article|59 citations·2008
Synthesis and electroluminescent properties of fluorene‐based copolymers containing electron‐withdrawing thiazole derivatives
In Hwan Jung, Young Kwan Jung, Jonghee Lee, Jong‐Hwa Park, Han Young Woo, Jeong‐Ik Lee, Hye Yong Chu, Hong‐Ku Shim
Journal of Polymer Science Part A Polymer Chemistry

Abstract We synthesized two fluorene‐based copolymers poly[(2,5‐bis(4‐hexylthiophen‐2‐yl)thiazolo[5,4‐day]thiazole‐5,5′‐diyl)‐alt‐(9,9′‐dioctylfluorene‐2,7‐diyl)] ( PF‐TTZT), and poly[(5,5′‐bis(4‐hexylthiophen‐2‐yl)‐2,2′‐bithiazole‐5,5′‐diyl)‐alt‐(9,9′‐dioctylfluorene‐2,7‐diyl)] (PF‐TBTT), which contain the electron‐withdrawing moieties, thiazolothiazole, and bithiazole, respectively. Through electrochemical studies, we found that these two polymers exhibit stable reversible oxidation and reduct

Electrical and Electronic EngineeringEngineering
10
Article|58 citations·2017
Artificial light-harvesting n-type porphyrin for panchromatic organic photovoltaic devices
Wisnu Tantyo Hadmojo, Dajeong Yim, Havid Aqoma, Du Yeol Ryu, Tae Joo Shin, Hyun Woo Kim, Eojin Hwang, Woo‐Dong Jang, In Hwan Jung, Sung‐Yeon Jang
SJR Q1Chemical ScienceOA

We developed a novel NIR-harvesting n-type porphyrin derivative, PDI–P<sub>Zn</sub>–PDI, that shows a low bandgap of 1.27 eV. Panchromatic absorption was extended to the NIR area with a significantly low energy loss of 0.54 eV which led to promising photovoltaic performance.

Electrical and Electronic EngineeringEngineering
11
Article|50 citations·2020
PbS-Based Quantum Dot Solar Cells with Engineered π-Conjugated Polymers Achieve 13% Efficiency
Muhibullah Al Mubarok, Febrian Tri Adhi Wibowo, Havid Aqoma, Narra Vamsi Krishna, Wooseop Lee, Du Yeol Ryu, Shinuk Cho, In Hwan Jung, Sung‐Yeon Jang
SJR Q1ACS Energy LettersOA

While hole extraction is crucial for the external quantum efficiency of conventional n-i-p colloidal quantum dot (CQD) solar cells (CQDSCs), sulfur-passivated p-type CQDs (pCQDs) have been the best hole-transport material (HTM) to date. In this work, we developed organic π-conjugated polymers (π-CPs) that can achieve substantially improved HTM performance compared with conventional pCQDs. A weakly electron-withdrawing triisopropylsilylethynyl (TIPS) group was employed with a weak donor moiety, b

Electrical and Electronic EngineeringEngineering
12
Article|50 citations·2017
Fullerene-Free Organic Solar Cells with an Efficiency of 10.2% and an Energy Loss of 0.59 eV Based on a Thieno[3,4-c]Pyrrole-4,6-dione-Containing Wide Band Gap Polymer Donor
Wisnu Tantyo Hadmojo, Febrian Tri Adhi Wibowo, Du Yeol Ryu, In Hwan Jung, Sung‐Yeon Jang
SJR Q1ACS Applied Materials & Interfaces

Although the combination of wide band gap polymer donors and narrow band gap small-molecule acceptors achieved state-of-the-art performance as bulk heterojunction (BHJ) active layers for organic solar cells, there have been only several of the wide band gap polymers that actually realized high-efficiency devices over >10%. Herein, we developed high-efficiency, low-energy-loss fullerene-free organic solar cells using a weakly crystalline wide band gap polymer donor, PBDTTPD-HT, and a nonfullerene

Electrical and Electronic EngineeringEngineering
13
Article|48 citations·2018
Visible-Light-Responsive High-Detectivity Organic Photodetectors with a 1 μm Thick Active Layer
Jong Baek Park, Jong-Woon Ha, Sung Cheol Yoon, Changjin Lee, In Hwan Jung, Do‐Hoon Hwang
SJR Q1ACS Applied Materials & Interfaces

Organic photodetectors (OPDs) are attracting attention for use in flexible and portable electronic applications such as image sensors, remote sensing, optical communications, and medical sensors because of their strong photon responsivity in thin films over a broad range of wavelengths. In particular, the efficient photon-to-current conversion of OPDs under visible light allows their use in indirect X-ray detectors using scintillators to convert X-rays to visible light. The polymer poly(4,8-bis(

Electrical and Electronic EngineeringEngineering
14
Article|45 citations·2017
Diphenyl‐2‐pyridylamine‐Substituted Porphyrins as Hole‐Transporting Materials for Perovskite Solar Cells
Un‐Hak Lee, Randi Azmi, Septy Sinaga, Sunbin Hwang, Seung Hun Eom, Tae‐Wook Kim, Sung Cheol Yoon, Sung‐Yeon Jang, In Hwan Jung
SJR Q1ChemSusChemOA

The susceptibility of porphyrin derivatives to light-harvesting and charge-transport operations have enabled these materials to be employed in solar cell applications. The potential of porphyrin derivatives as hole-transporting materials (HTMs) for perovskite solar cells (PSCs) has recently been demonstrated, but knowledge of the relationships between the porphyrin structure and device performance remains insufficient. In this work, a series of novel zinc porphyrin (PZn) derivatives has been dev

Electrical and Electronic EngineeringEngineering
15
Article|45 citations·2018
High-Performance Near-Infrared Absorbing n-Type Porphyrin Acceptor for Organic Solar Cells
Wisnu Tantyo Hadmojo, Un-Hak Lee, Dajeong Yim, Hyun Woo Kim, Woo‐Dong Jang, Sung Cheol Yoon, In Hwan Jung, Sung‐Yeon Jang
SJR Q1ACS Applied Materials & Interfaces

While the outstanding charge transport and sunlight-harvesting properties of porphyrin molecules are highly attractive as active materials for organic photovoltaic (OPV) devices, the development of n-type porphyrin-based electron acceptors has been challenging. In this work, we developed a high-performance porphyrin-based electron acceptor for OPVs by substitution of four naphthalene diimide (NDI) units at the perimeter of a Zn-porphyrin (P<sub>Zn</sub>) core using ethyne linkage. Effective π-co

Electrical and Electronic EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringMaterials ChemistryPolymers and PlasticsComputer Vision and Pattern RecognitionMolecular BiologyBioengineering

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