计算机科学
触觉传感器
延迟(音频)
导电体
互连
低延迟(资本市场)
信号(编程语言)
神经形态工程学
信号处理
制作
接近传感器
巨量平行
控制系统
接口(物质)
卷积神经网络
共形映射
还原(数学)
材料科学
智能决策支持系统
耐久性
控制重构
纳米技术
嵌入式系统
密闭空间
纳米传感器
人工神经网络
纳米点
夹持器
智能传感器
方向(向量空间)
电子工程
作者
Yanhao Luo,Hongyu Chen,Lei Liu,Shifan Yu,Zijian Huang,Yu Hu,Chao Wei,Huasen Wang,Yuchen Lin,Wansheng Lin,Renjinxian Zou,Gantang Su,Ziquan Guo,Jianghui Zheng,Zhong Chen,Qingliang Liao,Yuanjin Zheng,Liao Xinqin
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-01-31
卷期号:20 (5): 4439-4454
被引量:2
标识
DOI:10.1021/acsnano.5c19078
摘要
Intelligent flexible tactile sensing systems offer immense potential for next-generation human-machine interaction. However, their widespread use is severely limited by data redundancy, mechanical instability, and limited on-device processing. Conventional architectures separating sensing and computing units introduce significant latency and reduce system robustness. Integrated approaches can alleviate these problems but often encounter interfacial incompatibility and low production yield. Here, we introduce a spray-heating continuous high-throughput fabrication (SH–CHTF) system. It achieves uniform, rapid production of an intelligent cut-and-paste (ICAP) tactile sensor at a rate of 680 cm 2 /h, over 240% faster than conventional methods. By computational fluid dynamics, the SH–CHTF system achieves precise control of multiwalled carbon nanotube conductive films, ensuring ideal electrical characteristics. The ICAP tactile sensor supports arbitrary cutting and replacement without recalibration. Moreover, it exhibits intrinsic signal filtering and logical processing functions. The performance benchmarks include small resistance variation (<0.17%) under repeated bending, fast response (<1.1 ms), and good durability exceeding 20,000 cycles. These characteristics allow conformal integration on complex surfaces and empower multichannel convolutional neural network-based gesture interactions. This work makes an advance in device-to-device manufacturing consistency, effectively overcoming the hurdles in reliable intelligent flexible electronics.
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