量子点
钙钛矿(结构)
配体(生物化学)
材料科学
能源消耗
曲面(拓扑)
晶体管
纳米技术
量子
工程物理
光电子学
工程类
化学
电气工程
物理
化学工程
量子力学
数学
几何学
生物化学
受体
电压
作者
Wei‐Cheng Chen,Yan‐Cheng Lin,Zih-Syuan Syu,Yi-Ting Wu,Kai‐Wei Lin,Cheng‐Liang Liu,Chi‐Ching Kuo,Wen‐Chang Chen
标识
DOI:10.1016/j.cej.2024.152897
摘要
The escalating demand for high-speed transmission has prompted an exploration into the development of photonic synapses, offering a promising avenue for extending energy-efficient, low data latency in neurologically inspired robotics and neuromorphic network computation. However, the performance of n-type conjugated polymers (CPs)-based transistors with intrinsic stretchability as photonic synapse devices for neuromorphic simulation has been suboptimal. This study introduces a series of surface ligands for perovskite quantum dots (PeQDs) with varying chain lengths and bulkiness of quaternary ammonium bromide to adjust interactions with the n-type CPs, naphthalene-diimide-bithiophene (PNDI2T). The results demonstrate that didodecyldimethylammonium bromide (DDAB) reveals superior defect passivation and optimal ligand bulkiness, enhancing interaction and energy transmission between CPs and PeQDs. Through surface ligand engineering of PeQDs, the PNDI2T/DDAB-QD composite effectively emulates characteristics of photonic synapses under multiwavelength light stimuli and strain; it achieves outstanding performance metrics, comprising the fastest response time (1 ms), highest current contrast (3.2 × 106), paired-pulse facilitation (1.97), ultralow energy consumption (0.16 aJ), and human learning behaviors at an ultralow operating voltage of 50 mV under a 50 % tensile strain. Concisely, leveraging surface ligand engineering of PeQDs proposes a promising strategy for advancing neurologically soft optoelectronics and neuromorphic computation.
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