Silicon nanomembrane phototransistor flipped with multifunctional sensors toward smart digital dust.
Gongjin LiZhe MaChunyu YouGaoshan HuangEnming SongRuobing PanHong ZhuJiaqi XinBorui XuTaeyoon LeeZhenghua AnZengfeng DiYongFeng MeiPublished in: Science advances (2020)
The sensing module that converts physical or chemical stimuli into electrical signals is the core of future smart electronics in the post-Moore era. Challenges lie in the realization and integration of different detecting functions on a single chip. We propose a new design of on-chip construction for low-power consumption sensor, which is based on the optoelectronic detection mechanism with external stimuli and compatible with CMOS technology. A combination of flipped silicon nanomembrane phototransistors and stimuli-responsive materials presents low-power consumption (CMOS level) and demonstrates great functional expansibility of sensing targets, e.g., hydrogen concentration and relative humidity. With a device-first, wafer-compatible process introduced for large-scale silicon flexible electronics, our work shows great potential in the development of flexible and integrated smart sensing systems for the realization of Internet of Things applications.