Perovskite-Doped Modulated Color-Selective Photosynaptic Transistors for Target Object Recognition.
Wenxiao ZhaoZexi LinHao ChenSheng XuEnguo ChenTailiang GuoYun YeHuipeng ChenPublished in: Nano letters (2024)
The processing of multicolor noisy images in visual neuromorphic devices requires selective absorption at specific wavelengths; however, it is difficult to achieve this because the spectral absorption range of the device is affected by the type of material. Surprisingly, the absorption range of perovskite materials can be adjusted by doping. Herein, a CdCl 2 co-doped CsPbBr 3 nanocrystal-based photosensitive synaptic transistor (PST) is reported. By decreasing the doping concentration, the response of the PST to short-wavelength light is gradually enhanced, and even weak light of 40 μW·cm -2 can be detected. Benefiting from the excellent color selectivity of the PST device, the device array is applied to feature extraction of target blue items and removal of red and green noise, which results in the recognition accuracy of 95% for the noisy MNIST data set. This work provides new ideas for the application of novel transistors integrating sensors and storage computing.
Keyphrases
- quantum dots
- deep learning
- optical coherence tomography
- room temperature
- highly efficient
- high efficiency
- working memory
- electronic health record
- convolutional neural network
- air pollution
- high throughput
- big data
- visible light
- metal organic framework
- magnetic resonance imaging
- computed tomography
- magnetic resonance
- dual energy
- light emitting