神经形态工程学
计算机科学
光子学
量子点
材料科学
数码产品
钙钛矿(结构)
制作
光电子学
纳米技术
人工智能
人工神经网络
电气工程
工程类
医学
病理
化学工程
替代医学
作者
Yung‐Chi Yao,Chia‐Jung Lee,Yongjun Chen,Jindi Feng,Hongseok Oh,C. S. Lue,Jinn‐Kong Sheu,Ya‐Ju Lee
标识
DOI:10.1002/advs.202409933
摘要
Abstract As the demand for the neuromorphic vision system in image recognition experiences rapid growth, it is imperative to develop advanced architectures capable of processing perceived data proximal to sensory terminals. This approach aims to reduce data movement between sensory and computing units, minimizing the need for data transfer and conversion at the sensor‐processor interface. Here, an optical neuromorphic synaptic (ONS) device is demonstrated by homogeneously integrating optical‐sensing and synaptic functionalities into a unified material platform, constructed exclusively by all‐inorganic perovskite CsPbBr 3 quantum dots (QDs). The dual functionality of each unit within the ONS device, which can be operated as either an optical sensor or a synaptic device depending on applied electrical polarity, provides significant advantages over previous heterogeneous integration methods, particularly regarding material selection, structural compatibility, and device fabrication complexity. The ONS device exhibits distinct wavelength responses essential for emulating colored image recognition capability inherent in the human visual system. Additionally, the seamless integration of electronics and photonics within a unified material system establishes a novel paradigm for optical retrieval, enabling real‐time perception of the encoded status of the ONS device. These findings represent substantial advancements in near‐sensor computing platforms and open a new horizon for all‐inorganic perovskite optoelectronic technologies.
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