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Jeonyoon Lee

Korea Advanced Institute of Science and Technology · Engineering

About the Lab

Professor Jeonyoon Lee's research lab specializes in advanced functional materials and scalable manufacturing processes for next-generation composites and microelectronics. The lab focuses on developing nanostructured resistive heaters based on aligned carbon nanotubes (A-CNT) for energy-efficient, out-of-oven curing of polymeric systems, enabling high-performance composite fabrication without autoclaves or ovens. A key innovation involves using nanoporous networks to generate capillary pressure, replacing external pressure in void-free composite consolidation. The lab also explores multifunctional applications such as thermal actuation in bistable structures and warpage mitigation in ultra-thin semiconductor packages through tailored cure cycles.

carbon nanotubesout-of-oven curingnanoporous networkscomposite manufacturingthermal actuation

Research Overview

Papers
50
Total Citations
587
Papers (5y)
31
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
31total
2022
2023
2024
2025
2026
Citations per year (5y)
140total
20222023202420252026

Selected Papers

15
1
Article|96 citations·2015
Aligned Carbon Nanotube Film Enables Thermally Induced State Transformations in Layered Polymeric Materials
Jeonyoon Lee, Itai Y. Stein, Seth S. Kessler, Brian L. Wardle
SJR Q1ACS Applied Materials & InterfacesOA

The energy losses and geometric constraints associated with conventional curing techniques of polymeric systems motivate the study of a highly scalable out-of-oven curing method using a nanostructured resistive heater comprised of aligned carbon nanotubes (A-CNT). The experimental results indicate that, when compared to conventional oven based techniques, the use of an "out-of-oven" A-CNT integrated heater leads to orders of magnitude reductions in the energy required to process polymeric layere

Materials ChemistryMaterials Science
2
Article|93 citations·2015
Impact of carbon nanotube length on electron transport in aligned carbon nanotube networks
Jeonyoon Lee, Itai Y. Stein, Mackenzie E. Devoe, Diana J. Lewis, Noa Lachman, Seth S. Kessler, Samuel T. Buschhorn, Brian L. Wardle
SJR Q1Applied Physics LettersOA

Here, we quantify the electron transport properties of aligned carbon nanotube (CNT) networks as a function of the CNT length, where the electrical conductivities may be tuned by up to 10× with anisotropies exceeding 40%. Testing at elevated temperatures demonstrates that the aligned CNT networks have a negative temperature coefficient of resistance, and application of the fluctuation induced tunneling model leads to an activation energy of ≈14 meV for electron tunneling at the CNT-CNT junctions

Materials ChemistryMaterials Science
3
Article|89 citations·2018
Advanced carbon fiber composite out-of-autoclave laminate manufacture via nanostructured out-of-oven conductive curing
Jeonyoon Lee, Xinchen Ni, Frederick Daso, Xianghui Xiao, D. C. King, José Sánchez Gómez, Tamara Blanco Varela, Seth S. Kessler, Brian L. Wardle
SJR Q1Composites Science and TechnologyOA
Polymers and PlasticsMaterials Science
4
Article|36 citations·2020
Void‐Free Layered Polymeric Architectures via Capillary‐Action of Nanoporous Films
Jeonyoon Lee, Seth S. Kessler, Brian L. Wardle
SJR Q1Advanced Materials InterfacesOA

Abstract Here, a nanomaterial with morphology‐controlled nanoscale capillaries is utilized to overcome manufacturing challenges in layered polymeric architectures. It is demonstrated that the capillary pressure from a nanoporous film replaces the need for applied pressure to manufacture void‐free layered polymeric architectures. Manufacturing of aerospace‐grade advanced carbon fiber composites is performed for the first time without utilizing pressure from an autoclave. Combined with a conductiv

Mechanical EngineeringEngineering
5
Article|32 citations·2021
In situ synchrotron computed tomography study of nanoscale interlaminar reinforcement and thin-ply effects on damage progression in composite laminates
Xinchen Ni, Reed Kopp, Estelle Kalfon‐Cohen, Carolina Furtado, Jeonyoon Lee, Albertino Arteiro, Gregor Borstnar, Mark Mavrogordato, Lukas Helfen, Ian Sinclair, S.M. Spearing, P.P. Camanho
SJR Q1Composites Part B EngineeringOA
Mechanics of MaterialsEngineering
6
Article|31 citations·2020
New interlaminar features and void distributions in advanced aerospace-grade composites revealed via automated algorithms using micro-computed tomography
Nathan K. Fritz, Reed Kopp, Abigail K. Nason, Xinchen Ni, Jeonyoon Lee, Itai Y. Stein, Estelle Kalfon‐Cohen, Ian Sinclair, S.M. Spearing, P.P. Camanho, Brian L. Wardle
SJR Q1Composites Science and TechnologyOA
Mechanics of MaterialsEngineering
7
Article|25 citations·2024
Interlaminar reinforcement of carbon fiber reinforced polyimide composites using vertically aligned carbon nanotubes
Carina Xiaochen Li, Estelle Kalfon‐Cohen, Jeonyoon Lee, Carolina Furtado, Palak B. Patel, Reed Kopp, Travis J. Hank, Jim Magato, Mike Kinsella, Seth S. Kessler, Brian L. Wardle
SJR Q1Composites Part B Engineering
Materials ChemistryMaterials Science
8
Article|25 citations·2023
Consolidation of aerospace-grade high-temperature thermoplastic carbon fiber composites via nano-engineered electrothermal heating
Xiaochen Li, Frederick Daso, Jeonyoon Lee, Joe Spangler, Jean-Philippe Canart, Mike Kinsella, Brian L. Wardle
SJR Q1Composites Part B Engineering
Materials ChemistryMaterials Science
9
Article|24 citations·2024
Manufacturing Autoclave-Grade Thermoset Carbon Fiber-Reinforced Polymer Aerospace Composites without an Autoclave Using Nanoporous Materials
Carina Xiaochen Li, Travis J. Hank, Estelle Kalfon‐Cohen, Carolina Furtado, Jeonyoon Lee, Shannon Cassady, Joshua Tucker, Seth S. Kessler, Brian L. Wardle
SJR Q1ACS Applied Materials & Interfaces

Composite laminates utilizing autoclave-grade carbon fiber-reinforced plastic (CFRP) prepreg were manufactured using a polymer nanoporous network (NPN) interlayer that generates capillary pressure in lieu of pressure from an autoclave. The polymer nanofiber NPN film is integrated into the interlaminar region and is shown to eliminate voids in a vacuum-bag-only (VBO) curing process. After a preliminary investigation of the effect of NPN thickness on the interlaminar region and performance, an 8 μ

Mechanical EngineeringEngineering
10
Article|19 citations·2014
Actuation of Bistable Laminates by Conductive Polymer Nanocomposites for use in Thermal-Mechanical Aerosurface De-icing Systems
Christopher J. Brampton, Chris Bowen, Samuel T. Buschhorn, Jeonyoon Lee, Simon Pickering, Brian L. Wardle, Hyunsun A. Kim
55th AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics, and Materials Conference

This paper considers a novel electro-thermal system combining aligned carbon nanotubes (A-CNT) as a resistive heater and bistable laminates. The use of A-CNT heaters to actuate bistable laminates is characterized in terms of steady-state shape as a function of applied voltage to the heating element and the transient response of the laminate to heating. Snap-through from one stable state to another was successfully achieved with a linear relationshiop between laminate curvature and applied voltag

Aerospace EngineeringEngineering
11
Article|17 citations·2023
Electronic Packaging Enhancement Engineered by Reducing the Bonding Temperature via Modified Cure Cycles
Seong Yeon Park, Seung Yoon On, Junmo Kim, Jeonyoon Lee, Taek‐Soo Kim, Brian L. Wardle, Seong Su Kim
SJR Q1ACS Applied Materials & InterfacesOA

Semiconductor packaging continues to reduce in thickness following the overall thinning of electronic devices such as smartphones and tablets. As the package becomes thinner, the warpage of the semiconductor package becomes more important due to the reduced bending stiffness and driven by thermal residual stresses and thermal expansion mismatch during the epoxy molding compound (EMC) curing to create the package. To address this packaging reliability issue, in this study, we developed a modified

Electrical and Electronic EngineeringEngineering
12
Article|16 citations·2021
Thermal properties of single-walled carbon nanotube forests with various volume fractions
JinHyeok Cha, Kei Hasegawa, Jeonyoon Lee, Itai Y. Stein, Asuka Miura, Suguru Noda, Junichiro Shiomi, Shohei Chiashi, Brian L. Wardle, Shigeo Maruyama
SJR Q1International Journal of Heat and Mass Transfer
Materials ChemistryMaterials Science
13
Article|16 citations·2022
High-Volume-Fraction Textured Carbon Nanotube–Bis(maleimide) and −Epoxy Matrix Polymer Nanocomposites: Implications for High-Performance Structural Composites
Ashley L. Kaiser, Cécile A. C. Chazot, Luiz H. Acauan, Isabel V. Albelo, Jeonyoon Lee, Jeffrey L. Gair, A. John Hart, Itai Y. Stein, Brian L. Wardle
SJR Q1ACS Applied Nano Materials

Polymer matrix nanocomposites (PNCs) incorporating high volume fractions (Vf in excess of 10 vol %) of aligned carbon nanotubes (A-CNTs) are promising for high-performance structural composite applications leveraging texture for multifunctionality and performance-to-weight ratios. However, to enable the manufacturing of scalable structures using A-CNT PNCs, nanoscale confinement and interfacial effects due to high A-CNT content in aerospace-grade polymer matrices need to be better understood. He

Materials ChemistryMaterials Science
14
Article|10 citations·2019
NanoengineeredIn SituCure Status Monitoring Technique Based on Carbon Nanotube Network
Jeonyoon Lee, Brian L. Wardle
AIAA Scitech 2019 Forum
Materials ChemistryMaterials Science
15
Article|5 citations·2015
OUT-OF-OVEN CURING OF POLYMERIC COMPOSITES VIA RESISTIVE MICROHEATERS COMPRISED OF ALIGNED CARBON NANOTUBE NETWORKS
Jeonyoon Lee, Itai Y. Stein, E.F. Antunes, Brian L. Wardle, Seth S. Kessler
DSpace@MIT (Massachusetts Institute of Technology)OA

The broader adoption of composite materials in next-generation aerospace architectures is currently limited by the geometrical constraints and high energy costs of traditional manufacturing techniques of PMCs such as autoclave and vacuum-bag-only oven curing techniques. Here, an in situ curing technique for PMCs using a resistive heating film comprised of an aligned carbon nanotube (A-CNT) network is presented. A carbon fiber reinforced plastic (CFRP) prepreg system is effectively cured via a si

Biomedical EngineeringEngineering

Research Areas

Materials ChemistryMechanical EngineeringElectrical and Electronic EngineeringMechanics of MaterialsBiomedical EngineeringPolymers and Plastics

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