Dae‐Hyun Cho
Engineering · The Ohio State University
Publications
81
Citations
2,830
Est. group size
—
Recurring co-author estimate
Active years
52
Publishing since 1974
Dae-Hyun Cho works on manufacturing and materials engineering, focusing on techniques like electrohydrodynamic jet printing (a method for precisely depositing tiny droplets of fluid to create fine patterns) to build small-scale devices such as flexible sensors, energy harvesters, and batteries. Much of the research combines advanced printing methods with functional materials to create energy-harvesting devices (like triboelectric and piezoelectric nanogenerators that convert motion or vibration into electricity), supercapacitors, and lubrication/wear-resistant coatings. This work sits at the intersection of mechanical engineering, materials science, and manufacturing process development.
Publication output has grown modestly over the last decade, rising from a few papers per year in 2017-2018 to a peak of 7 papers in both 2023 and 2024.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Micro-supercapacitors of exceptionally high capacitance fabricated using intrinsically stable MXene inks via electrohydrodynamic jet printing
Materials Science and Engineering R Reports · 2025
- In Situ Synthesis of Core–Shell Structured Perovskite Nanofibers for Stretchable Color-Conversion Film
ACS Applied Nano Materials · 2025
- High‐Precision Drop‐on‐Demand Printing of Charged Droplets on Nonplanar Surfaces with Machine Learning
Advanced Intelligent Systems · 2025
- Strain-induced electrification-based flexible nanogenerator for efficient harvesting from ultralow-frequency vibration energy at 0.5–0.01 Hz
Energy & Environmental Science · 2024
- Multi-energy harvesting: Integrating contact-mode and slide-mode triboelectric nanogenerators, and solar technologies for efficient power generation in small electronic
Energy Reports · 2024
- High‐Precision Drop‐on‐Demand Printing of Charged Droplets on Nonplanar Surfaces with Machine Learning
Advanced Intelligent Systems · 2024
- Stretchable Coaxial Gel Polymer Electrolyte Based on a Styrene–Ethylene–Butylene–Styrene Block Copolymer Nanofiber for Stretchable Lithium-Ion Batteries
ACS Applied Polymer Materials · 2024
- Void-less metallization of high aspect ratio through glass via using electrohydrodynamic drop-on-demand printing
Journal of Manufacturing Processes · 2024
- High-Resolution Total Internal Reflection-Based Structural Coloration by Electrohydrodynamic Jet Printing of Transparent Polyethylene Glycol Microdomes
ACS Macro Letters · 2024
- Low profile wind savonius turbine triboelectric nanogenerator for powering small electronics
Sensors and Actuators A Physical · 2023
- Eco-friendly mass production of MoS2 flakes in pure water for performance enhancement of triboelectric nanogenerator
Applied Surface Science · 2023
- Effect of magnetic field intensity on friction and wear of TiN- and TiCN-coated neodymium magnets
Wear · 2023
- Hexagonal boron nitride nanosheets eco-friendly dispersed in pure water for lubrication in fretting contacts between steel pairs
Wear · 2023
- Drop-on-Demand Electrohydrodynamic Jet Printing of Microlens Array on Flexible Substrates
ACS Applied Polymer Materials · 2023
- Electric field and viscous fluid polarity effects on capillary-driven flow dynamics between parallel plates
Heliyon · 2023
- Wear×3
- Applied Surface Science×2
- Advanced Intelligent Systems×2
- ACS Applied Polymer Materials×2
- Advanced Materials Interfaces×2
- Kil Ho Lee
Engineering · The Ohio State University
- Michael T. Harris
Engineering · Purdue University West Lafayette
- Faiz Khan
Engineering · The Ohio State University
- Jinwook Baek
Materials Science · Purdue University West Lafayette
- Rahul Franklin
Materials Science · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 19, 2026.
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