Tzu-Jie Lin, Sheng-Chung Chen, Yung-Ting Lee, Sheng-Lun Cheng, Robert Tseng, Sung-Tsun Wang, Yu-Cheng Chang, Yi-Yu Pan, Chan-Yuen Chang, Tsung-Te Chou, Chia Hsien Lin, Ching‐Shun Ku, Chun-Liang Lin, Po-Tsun Liu, Hyungjin Kim, Der‐Hsien Lien
High Resolution Image Download MS PowerPoint Slide Oxide semiconductors have gained substantial interest for their low-temperature processability, allowing for their integration as functional add-on device layers for advanced monolithic 3D integrated circuits (ICs). However, reliability issues, particularly under thermal, environmental, and electrical stresses, remain critical issues and require immediate solutions. This study investigates the instability of ultrathin In 2 O 3 transistors, revealing that threshold voltage ( V T ) drifts arise from interactions between surface-adsorbed oxygen and the In 2 O 3 channels. We show that the oxygen in the ambient atmosphere attached to the In 2 O 3 surface plays a crucial role in modulating In 2 O 3 conductivity, thereby governing V T . External perturbations such as ultraviolet (UV)/X-ray illumination, thermal annealing, and bias stress could alter this interaction of surface oxygen with ultrathin In 2 O 3, leading to a V T drift. Importantly, we propose a unified kinetic model that provides a generic physical description of V T instabilities induced by these commonly observed factors. By characterizing time-dependent V T instability, the model demonstrates that recovery dynamics exhibit identical behavior across all tested perturbations, indicating that the recovery process is independent of the initial stimulus. This study uncovers the surface oxygen as a critical factor affecting In 2 O 3 transistor reliability, offering insights for designing oxide-based devices for advanced electronic and optoelectronic devices.