神经形态工程学
材料科学
帧(网络)
GSM演进的增强数据速率
频道(广播)
情态动词
晶体管
电子工程
计算机体系结构
计算机科学
人工智能
人工神经网络
电气工程
电信
工程类
复合材料
电压
作者
Bo He,Bin Bao,Rodrigo Martins,Shouguo Wang,Gang He
标识
DOI:10.1002/adfm.202506332
摘要
Abstract The sustained advancement of neuromorphic electronics aims to design electronic systems that emulate biological neural networks, addressing the hardware computational demands of supercomputers and the development of multimodal edge devices in the context of artificial intelligence. However, a critical challenge in current neuromorphic devices replicating synaptic functions lies in their overreliance on non‐volatile conductance updates for simulating neuromorphic behaviors, which restricts higher‐order biomimetic capabilities and impedes modality expansion. Here, a transistor active‐layer architecture is proposed featuring a frame‐channel (FC) design, enabling full‐dimensional spontaneous interactive coupling between core materials and physical spatial signals. This innovation facilitates the first bio‐inspired inhibition‐integrated regulatory mechanism in optoelectronic synapses, demonstrating dual‐mode neuromorphic functionalities: tripartite synaptic modulation and lateral inhibition‐based visual processing. Importantly, the device can cross‐modally switch to an intelligent respiratory signal sensor, integrated with a lightweight algorithm to construct an efficient interactive edge system. This synergistic strategy, merging material architecture, neuromorphic dynamics, and algorithmic design, establishes a paradigm for developing smart functional electronics.
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