Junru Qu, Wentai Xia, Jifang Cao, Xueyang Li, Ran Cheng, Dong Liu, Bing Chen
Abstract In this work, the oxide-based programmable diodes (PDs) with structure of TiN/HfO 2 /Si/Al are fabricated, and its electron transport mechanisms are investigated. Electrical measurements results depicted that the conduction and rectification performance of oxide-based PDs are mainly controlled by the interface between oxygen vacancies (VOs) consisted filament and semiconductor electrode. The local density of state in filament and band-bending of the PDs are calculated by first-principal simulation. The electron transport in oxide PDs is dominated by Poole−Frenkel emission under forward bias, while under negative bias, the PDs behave like a reverse Schottky-diode. These mechanisms research is necessary for device optimization and circuit design of oxide-based PDs.