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Fabrication of Flexible Image Sensor Based on Lateral NIPIN Phototransistors
Published on: June 23, 2018
High-linearity all-2D heterojunction-based neuromorphic image-sensing transistor array with a sandwiched tunneling
Yiming Yuan1,2,3, Yinxing Zhang1,2,3, Jie Wang1,2
1Institute of Photoelectronic Thin Film Devices and Technology, College of Electronic Information and Optical Engineering, School of Materials Science and Engineering, Nankai University, Tianjin, China.
None:
Neuromorphic visual systems have attracted tremendous attention for their in-sensor image sensing and information preprocessing paradigm that replicates human visual system. However, current neuromorphic visual devices employed in these systems still confront challenges on lateral conductivity, air-stability, and photo-response linearity. Here, we demonstrate a neuromorphic image-sensing transistor array based on a tri-layer van der Waals heterostructure composed of MoS2, (BA)2PbI4 and graphdiyne (GDY). The top MoS2 layer with high intrinsic mobility serves as carrier-transport channel, while encapsulating the 2D perovskite to shield it from ambient air. The sandwiched 2D-(BA)2PbI4 nanosheet converts light into electricity, and functions as a photo-tunable tunneling junction, facilitating unidirectional tunneling of photo-generated carriers toward the underlying GDY layer. GDY, featuring well-distributed alkyne bonds, enables uniform interaction and storage of charges. The device demonstrates long-term air-stability (>10 weeks), highly competitive linearity in synaptic transistor weight modulation (αP = 0.006, αD = 0.025), and remarkably low energy consumption (~41.8 aJ per synaptic event) among 2D heterojunction synaptic transistors. Furthermore, a hardware-level neuromorphic kernel constructed using a synaptic array of these heterostructure devices realizes spatiotemporal neuromorphic in-sensor dynamic image processing and trajectory detection for object movement. This work provides hardware architecture for the next-generation neuromorphic vision.
