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ADVANCED TRANSPARENT CONDUCTIVE OXIDE (IZO / ZnO / ZTO)
TCO PROCESS DEVELOPMENT
Developed and optimized transparent conductive oxide thin films for adaptive electro-optical devices through solution-processed fabrication, thermal annealing, and electrical performance engineering. The project focused on achieving high optical transparency, controlled sheet resistance, improved film uniformity, and stable voltage propagation characteristics required for next-generation photonic and electronic devices
>95%Optical transmittance target
>100 MOhm to kOhmResistance improvement direction
IZO / ZnO / ZTOMaterial system

Engineering Challenge
Transparent electrodes for liquid crystal devices must simultaneously provide low electrical resistance, high optical transmittance, and stable manufacturing performance. Early electrode structures exhibited conductivity limitations and significant process-to-process variation, making device performance inconsistent.
Process Development & Optimization
I investigated multilayer IZO/ZnO/ZTO architectures, optimized spin-coating and deposition conditions, and developed reduced-oxygen thermal annealing processes to improve carrier transport within the films. Electrical and optical characterization data were used to establish relationships between film structure, conductivity, and transparency while identifying a stable process window for repeatable fabrication.
Results & Impact
The optimized process significantly improved electrical conductivity while preserving excellent optical transmission. The work established a more robust transparent-electrode platform for liquid crystal devices and demonstrated practical experience in thin-film engineering, process optimization, materials characterization, and data-driven process development.
Skills Demonstrated
Thin-Film Process Development, Materials Engineering, Thermal Processing, Electrical Characterization, Optical Metrology, Process Optimization, Root Cause Analysis, Process Integration


