34. Advances in Electroactive Liquid Crystal Elastomers for Intelligent Robotics and Electronics, K.R.Rathod, S.Chon, J.H.Hwang, S.H.Park, W. Lee, J.Choi, S.H.Kim, S.H.Ko, C.Choi, S.J.Kim, D.G.Kim, H.Lee*, K.G.Cho*,W.H.Yeo*, H.Kim*, Advanced Robotics Research, 2026, 2, e70128 [https://doi.org/10.1002/adrr.70128]
33. Regiorandom Polythiophenes for Fully Stretchable Electrochemical Transistors and Logic Circuits, D.H. Park, M.S. Kim, K.Y, Kim, J.H. Han, M.S. Kang, K.G. Cho*, K. H. Lee*, Advanced Functional Materials, 2026, 36, e27856 (IF=19.9) [https://doi.org/10.1002/adfm.202527856]
32. Sub-1V, Flexible, All-Polymer Complementary Logic Circuits Based on Electrolyte-Gated Transistors, S.J. Kim, D.H. Park, Y.N. Lee, M.S. Kim, K. Hong, K.G. Cho*, C.D. Frisbie*, K. H. Lee*, npj Flexible Electronics, 2026, 10, 44 (IF=15,5) [10.1016/j.cej.2026.173025]
31. Pressure-Sensitive Synaptic Transistors for Multifunctional Neuromorphic Processing, D.H. Park, M.S. Kim, K.G. Cho* and K. H. Lee*, Chemical Engineering Journal, 2026, 529, 173025 (IF=13.4) [10.1016/j.cej.2026.173025]
30. Oxidatively Stable Solid-State Ionogels for High-Voltage Lithium Metal Batteries, D.E. Kim, M. S. Kim, J. H. Kwon, J. Woo, K.G.Cho, K. H. Lee*, Journal of Enregy Storage, 2026, 146, 119870 (IF=9.8) [https://doi.org/10.1016/j.est.2025.119870]
29. Redox-Enhanced Ionogels for Stretchable High-Energy Density Electrochemical Capacitors, M.S.Kim, I.Heo, M.S.Kang, B.G.Jeon, K.G.Cho*, W.C.Yoo*, K.H.Lee*, Advanced Functional Materials, 2025, 35, 2421206 (IF=19.0) [https://doi.org/10.1002/adfm.202421206]
28. Band Filling, Electrochemical Reaction, and Re-Entrant Insulating Behavior in Electrolyte-Gated BBL Polymer Semiconductor Films, K.G.Cho, S.J.Kim, D.H.Park, M.S.Kim, K.Hong, K.H.Lee*, C.D.Frisbie*, ACS Applied Materials & Interfaces, 2025, 17, 15718–15727 (IF=8.2) [https://doi.org/10.1021/acsami.4c22852]
27. 3D printable double-network ionogels with a multi-angle zigzag pattern for enhanced linearity and sensitivity of stretchable ionic sensors, M.S.Kim, C.Y.Lee, D.H.Park, J.E.Lee, K.G.Cho*, S.Yang*, K.H.Lee*, Chemical Engineering Journal, 2025, 504, 158573 (IF=13.4) [10.1016/j.cej.2024.158573]
26. Tuning Gate Potential Profiles and Current-Voltage Characteristics of Polymer Electrolyte-Gated Transistors by Capacitance Engineering, K.G.Cho, K.H.Lee*, C.D.Frisbie*, ACS Applied Materials & Interfaces, 2024, 16, 19309–19317 (IF=8.3) [https://doi.org/10.1021/acsami.4c00079]
25. Highly Conductive and Mechanically Robust Composite Cathodes Based on 3D Interconnected Elastomeric Networks for Deformable Lithium-Ion Batteries , S.H.Park, Y.W.Lee, D.E.Kim, K.G.Cho, M.S.Kim, D.H. Park, J.Mun*, K.H.Lee*, EcoMat, 2024, 6(4) , e12443 (IF=14.6) [https://doi.org/10.1002/eom2.12443]
24. LEGO-like Assembly of Fibrous Modules for Display Textiles, S.Lee, W.S.Cho, K.G.Cho, J.-L.Lee, K.H.Lee*, K.Hong*, ACS Applied Materials & Interfaces, 2023, 15, 41688 (IF=9.5) [https://doi.org/10.1021/acsami.3c09659]
23. Sub-Band Filling and Hole Transport in Polythiophene-Based Electrolyte-Gated Transistors: Effect of Side-Chain Length and Density, K.G.Cho, DZ Adrahtas, K.H.Lee*, CD Frisbie*, Advanced Functional Materials, 2023, 33, 2303700 (IF=19.0) [https://doi.org/10.1002/adfm.202303700]
22. Photopatternable and Self-Healable Ionogels for Organic Thin-film Transistors, S.Kim, J.Yeo, S.J.Kim, S.Park, K.G.Cho, K.Paeng*, K.H.Lee*, M.Kim*, Organic Electronics, 2023, 122, 106895 (IF=3.2) [https://doi.org/10.1016/j.orgel.2023.106895]
21. Tuning Threshold Voltage of Electrolyte-Gated Transistors by Binary Ion Doping, K.G.Cho, K.H.Seol, M.S.Kim, H.Hong*, K.H.Lee*, ACS Applied Materials & Interfaces, 2022, 14(44), 50004 (IF=10.3) [https://doi.org/10.1021/acsami.2c15229]
20. Copper Halide Anion Engineering for p-channel Electrolyte-Gated Transistors with Superior Operational Reliability, D.I.Lee, M.S.Kim, K.G.Cho, H.Hong*, K.H.Lee*, Journal of Materials Chemistry C, 2022, 10, 12829-12835 (IF=8.1) [https://doi.org/10.1039/d2tc02062a]
19. 3D printed solid-state composite electrodes and electrolytes for high-energy-density flexible microsupercapacitors, K.G.Cho, S.S.Jang, I.Heo, H.Kyung, W.C.Yoo*, K.H.Lee*, Journal of Energy Storage, 2022, 53, 105206 (IF=8.9) [https://doi.org/10.1016/j.est.2022.105206]
18. Coarsening-induced Hierarchically Interconnected Porous Carbon Polyhedrons for Stretchable Ionogel-based Supercapacitors, M.S.Kang#, I.Heo#, K.G.Cho#, H.Kyung, H.S.Kim, K.H.Lee*, W.C.Yoo*, Energy Storage Materials, 2022, 45, 380-388 (IF=20.8) [https://doi.org/10.1016/j.ensm.2021.12.001]
17. Self-Healable, Stretchable, and Nonvolatile Solid Polymer Electrolytes for Sustainable Energy Storage and Sensing Applications, D.H.Cho#, K.G.Cho#, S.An, M.S.Kim, H.W.Oh, J.Yeo, W.C.Yoo, K.Hong*, M.Kim*, K.H.Lee*, Energy Storage Materials, 2022, 45, 323-331 (IF=20.8) [https://doi.org/10.1016/j.ensm.2021.11.047]
16. Block Copolymer-based Supramolecular Ionogels for Accurate On-skin Motion Monitoring, K.G.Cho, S.An, D.H.Cho, J.H.Kim, J.Nam, M.Kim*, K.H.Lee*, Advanced Functional Materials, 2021, 31, 2102386 (IF=18.8, front cover) [https://doi.org/10.1002/adfm.202102386]
15. Ultra-Sensitive and Stretchable Ionic Skins for High-Precision Motion Monitoring, J.H.Kim, K.G.Cho, D.H.Cho, K.Hong*, K.H.Lee*, Advanced Functional Materials, 2021, 31(16), 2010199 (IF=18.8) [https://doi.org/10.1002/adfm.202010199]
14. High-mobility Low-hysteresis Electrolyte-gated Transistors with a DPP-Benzotriazole Copolymer Semiconductor, S.J.Lee#, K.G.Cho#, S.-H. Jung, S.Kim, J-K.Lee, K.H.Lee*, Macromolecular Research, 2020, 28, 683 (IF=3.7) [https://doi.org/10.1007/s13233-020-8120-2]
13. Tough and ionically conductive polymer electrolyte composites based on random copolymers with crystallizable side chain architecture, H.-Y.Yoo, D.Son, H.Kim, K.G.Gho, M.Kim, K.H.Lee*, S.Kim*, Organic Electronics, 2020, 84, 105788 (IF=3.3)[https://doi.org/10.1016/j.orgel.2020.105788]
12. Optimizing Electrochemically Active Surfaces of Carbonaceous Electrodes for Ionogel Based Supercapacitors, K.G.Cho, H.S.Kim,S.S.Jang, M.S.Kang, K.H.Lee*, W.C.Yoo* Advanced Functional Materials, 2020, 30(30), 2002053 (IF=16.8, front cover) [https://doi.org/10.1002/adfm.202002053]
11. Thermostable Ion Gels for High-Temperature Operation of Electrolyte-Gated Transistors, K.G.Cho, Y.G.Cho, J.H.Kim, H.-Y.Yoo, K.Hong* K.H.Lee* ACS Applied Materials & Interfaces, 2020, 12 (13), 15464-15471 (IF=8.8) [https://doi.org/10.1021/acsami.9b23358]
10. Light-emitting Devices Based on Electrochemiluminescence Gels, K.G.Cho, J.I. Lee, S. Lee, K.Hong*, M.S.Kang*, K.H.Lee*, Advanced Functional Materials, 2020, 30(33), 1907936 (IF=16.8) [https://doi.org/10.1002/adfm.201907936]
9. Printable Carbon Nanotube-based Elastic Conductors for Fully-printed Sub-1V Stretchable Electrolyte-Gated Transistors and Inverters, K.G.Cho, Y.G.Kwon, S.S.Jang, K.H.Seol, J.H.Park, K.Hong*, K.H.Lee*, Journal of Materials Chemistry C, 2020, 8, 3639-3645 (IF=7.1, inside front cover) [https://doi.org/10.1039/c9tc06347a]
8. Ultrahigh-Mobility and Solution-Processed Inorganic P-Channel Thin-Film Transistors Based on a Transition-Metal Halide Semiconductor, H.J.Lee, S.Lee, Y.Ji, K.G.Cho, K.S.Choi, C.Jeon, K.H.Lee*, K.Hong*, ACS Applied Materials & Interfaces, 2019, 11 (43), 40243-40251 (IF=8.5) [https://doi.org/10.1021/acsami.9b12654]
7. High-Performance P-Type Copper(I) Thiocyanate Thin Film Transistors Processed from Solution at Low Temperature, Y.Ji, H.J.Lee, S.Lee, K.G.Cho, K.H.Lee*, and K.Hong*, Advanced Materials Interfaces, 2019, 6 (19), 1900883 (IF=4.7) [https://doi.org/10.1002/admi.201900883]
6. Low voltage, high gain electrolyte-gated complementary inverters based on transfer-printed block copolymer ion gels, D. Lee#, K.G.Cho#, K.H.Seol, S.Lee, S.-H.Choi, K.H.Lee*, Organic Electronics, 2019, 71, 266~271 (IF=3.5) [https://doi.org/10.1016/j.orgel.2019.05.026]
5. Highly conductive and mechanically robust nanocomposite polymer electrolytes for solid-state electrochemical thin-film devices, S.J.Lee, H.M.Yang, K.G.Cho, K.H.Seol, S.Kim, K.Hong*, K.H.Lee*, Organic Electronics, 2019, 65, 426-433 (IF=3.5) [https://doi.org/10.1016/j.orgel.2018.11.044]
4. Sub-2 V, Transfer-Stamped Organic/Inorganic Complementary Inverters Based on Electrolyte-Gated Transistors , K.G.Cho, H.J.Kim, H.M.Yang, K.H.Seol, S.J.Lee, K.H.Lee*, ACS Applied Materials & Interfaces, 2018, 10 (47), 40672-40680 (IF=8.2, front cover) [https://doi.org/10.1021/acsami.8b13140]
3. Highly conductive, binary ionic liquid–solvent mixture ion gels for effective switching of electrolyte-gated transistors, K.H.Seol, S.J. Lee, K.G.Cho, K.Hong*, K.H.Lee*, Journal of Materials Chemistry C, 2018, 6(41), 10987-10993 (IF=5.9, front cover) [https://doi.org/10.1039/c8tc03076f ]
2. Solution-Processed Perovskite Gate insulators for Sub-2 V Electrolyte Gated Transistors, K. Hong, J.M. Kim, K.G.Cho, W.-S. Choi, J.Y. Park, J. Ham, J-L. Lee* and K.H. Lee*, The Journal of Physical Chemistry C, 2018, 122, 10522-10558 (IF=4.5) [https://doi.org/10.1021/acs.jpcc.8b03601]
1. Light emitting fabrics based on luminophore dye-doped ion gel electrolyte microfibers, K.Hong, K.G.Cho, D.C.Lim, J.Y.Lee, and K.H.Lee*, Dyes and Pigments, 2018, 154, 188-193. (IF=3.9) [10.1016/j.dyepig.2018.02.052]