Department of Materials Science and Engineering, Korea University
145 Anam-ro, Seongbuk-gu, Seoul, 02841, Republic of Korea
Tel : +82-2-3290-3647
Fax : +82-2-928-3584
E-mail : sooyoungkim@korea.ac.kr
Google Scholar : https://scholar.google.com/citations?user=7kWEjDAAAAAJ&hl=ko&oi=ao
Researcher ID : http://www.researcherid.com/rid/B-4373-2015
ORCID: https://orcid.org/0000-0002-0685-7991
95. 03 ~ 01. 08 : B. S. Mater. Sci. & Eng. (POSTECH)
01. 09 ~ 03. 02 : M. S. Mater. Sci. & Eng. (POSTECH)
03. 03 ~ 07. 02 : Ph. D. Mater. Sci. & Eng. (POSTECH)
07. 03 ~ 07. 09 : Postdoctoral Research Associate (POSTECH)
07. 10 ~ 09. 02 : Postdoctoral Research Associate (Georgia Tech)
09. 03 ~ 19. 08 : Professor (Chung-Ang University)
15. 09 ~ 16. 08 : Visiting Scholar (University of Chicago)
18. 01 ~ present : Alumni and Member of Young Korean Academy of Science and Technology https://youtu.be/7XmvgkjjI4E
19. 09 ~ present : Professor (Korea University)
2019 ~ present: Korean Journal of Metals and Materials (Editor)
2018 ~ present: Materials (Editorial Board Member)
2017 ~ present: Electronic Materials Letters (Board of directors)
2019 ~ present: Materials Today Advances (Editorial Board Members)
2024 ~ present: NPG Asia Materials (Editorial Board Member)
2024 ~ present: Energy Materials (Associated Editor)
2025 ~ present: Transactions on Electrical and Electronic Materials (Editor-in-Chief)
Research for two-dimensional materials (graphene, MoS2, WS2, MOF and so on)
- Fundamental study and application to catalysts
Research for organo/inorgano halide perovskite semiconductor
- Organic light emitting diodes, organic solar cells, and perovskite solar cells
30. “Crystallographically vacancy-induced MOF nanosheet as rational single-atom support for accelerating CO2 electroreduction to CO”, Carbon Energy , vol. 6, p.e510 (1-14) (2024)
29. “Perovskite light-emitting diode display based on MoS2 backplane TFT”, Advanced Materials, vol. 36, p.2309531 (1-8) (2024)
28. “Recent advances in wide bandgap perovskite solar cells: Focus on lead-free materials for tandem structures”, Small Methods, vol.8, p.2300207 (1-26) (2024)
27. “Rationally designed graphene channels for real-time sodium ion detection for electronic tongue”, Infomat, vol. 5, p.e12427 (1-16) (2023)
26. “Transition metal ions doping on ZIF-8 for enhancing the electrochemical CO2 reduction reaction”, Advanced Materials, vol. 35, p.2208224 (1-9) (2023)
25. “Recent advances in electrochemical, photochemical, and photoelectrochemical reduction of CO2 to C2+ products”, Small, vol. 19, p.2205765 (1-30) (2023)
24. “Controlling threshold and resistive switch functionalities in Ag-incorporated organometallic halide perovskites for memristive crossbar array”, Advanced Functional Materials, vol. 33, p.2211358 (1-11) (2023)
23. “Memristive devices based on two-dimensional transition metal chalcogenides for neuromorphic computing”, Nano-Micro Letters, vol. 14, p.58 (1-30) (2022)
22. “Low-crystalline AuCuIn catalyst for gaseous CO2 electrolyzer”, Advanced Science, vol. 9, p.2104908 (1-13) (2022)
21. “2-Dimensional metal organic frameworks and covalent organic frameworks for electrocatalysis: Distinct merits by the reduced dimension”, Advanced Energy Materials, vol. 12, p.2003990 (1-32) (2022).
20. “Enhanced optical properties and stability of CsPbBr3 nanocrystals through nickel doping”, Advanced Functional Materials, vol. 31, p.2102770 (1-9) (2021).
19. “Tailoring the structure of low-dimensional halide perovskite through a room temperature solution process: Role of ligands”, Small Methods, vol. 5, p.2100054 (1-11) (2021).
18. “Graphene-based catalysts for electrochemical carbon dioxide reduction”, Carbon Energy, vol. 2, p.158-175 (2020).
17. “Mico-nanoporous MoO2@CoMo heterostructure catalyst for hydrogen evolution reaction”, Applied Catalysis B: Environmental, vol. 270, p.118895 (1-10) (2020).
16. “Full-color active-matrix organic light-emitting diode display on human skin based on a large-area MoS2 backplane ”, Science Advances, vol. 6, eabb5898 (1-6) (2020).
15. “Graphene-mediated enhanced Raman scattering and coherent light lasing from CsPbI3 perovskite nanorods”, Nano Energy, vol. 70, p.104497 (1-8) (2020).
14. “Chemoresistive materials for electronic nose: progress, perspectives, and challenges”, InfoMat, vol. 1, p.289-316 (2019).
13. “Dual-phase all-inorganic cesium halide perovskites for conducting-bridge memory-based artificial synapses”, Advanced Functional Materials, vol. 29, p.1906686 (2019).
12. “Organic-inorganic hybrid halide perovskites for memories, transistors, and artificial synapses”, Advanced Materials, vol. 30, p.1704002 (2018).
11.“Recent advances toward high-efficiency halide perovskite light-emitting diodes: Review and perspective”, Small Methods, vol. 2, p.1700419 (2018).
10. “Flexible active-matrix organic light-emitting diode display enabled by MoS2 thin-film transistor”, Science Advances, vol. 4, p.eaas8721 (2018).
9. “Air-stable cesium lead iodide perovskite for ultra-low operating voltage resistive switching”, Advanced Functional Materials, vol. 28, p.1705783 (2018).
8. “Halide perovskites for applications beyond photovoltaics”, Small Methods, vol. 2, p.1700310 (2018).
7. “Polarized light-emitting diodes based on patterned MoS2 nanosheet hole transport layer”, Advanced Materials, vol. 29, p.1702598 (2017).
6. “Wafer-scale transferable molybdenum disulfide thin-film catalysts for photoelectrochemical hydrogen production”, Energy and Environmental Science, vol. 9, p. 2240 ~ 2248 (2016).
5. “Inhibition of ion migration for reliable operation of organolead halide perovskite-based metal/semiconductor/metal broadband photodetectors”, Advanced Functional Materials, vol. 26, p.4213-4222 (2016).
4. “Performances of liquid-exfoliated transition metal dichalcogenides as hole injection layers in organic light-emitting diodes”, Advanced Functional Materials, vol. 25, p.4512 ~ 4519 (2015).
3. "Synthesis of atomically thin transition metal disulfides for charge transport layers in optoelectronic devices", ACS Nano, vol. 9, p.4146 ~ 4155 (2015).
2. "Increased work function in few-layer graphene sheets via metal chloride doping", Advanced Functional Materials, vol. 22, p. 4724 ~ 4731 (2012).
1. "Nanoscale tunable reduction of graphene oxide for graphene electronics", Science, vol. 328, p.1373 ~ 1376 (2010).