School of Physical Science and Technology, Key Laboratory of Advanced Technology of Materials, Southwest Jiaotong University, Chengdu, Sichuan, 610031, China.
College of Artificial Intelligence, Brain-Inspired Computing & Intelligent Control of Chongqing Key Lab, Southwest University, Chongqing, 400715, China.
Small. 2024 Nov;20(45):e2402588. doi: 10.1002/smll.202402588. Epub 2024 Jul 26.
With the continuous advancement of wearable technology and advanced medical monitoring, there is an increasing demand for electronic devices that can adapt to complex environments and have high perceptual sensitivity. Here, a novel artificial injury perception device based on an Ag/HfO/ITO/PET flexible memristor is designed to address the limitations of current technologies in multimodal perception and environmental adaptability. The memristor exhibits excellent resistive switching (RS) performance and mechanical flexibility under different bending angles (BAs), temperatures, humid environment, and repetitive folding conditions. Further, the device demonstrates the multimodal perception and conversion capabilities toward voltage, mechanical, and thermal stimuli through current response tests under different conditions, enabling not only the simulation of artificial injury perception but also holds promise for monitoring and controlling the movement of robotic arms. Moreover, the logical operation capability of the memristor-based reconfigurable logic (MRL) gates is also demonstrated, proving the device has great potential applications with sensing, storage, and memory functions. Overall, this study not only provides a direction for the development of the next-generation flexible multimodal sensors, but also has significant implications for technological advancements in many fields such as robotic arms, electronic skin (e-skin), and medical monitoring.
随着可穿戴技术和先进医疗监测的不断进步,人们对能够适应复杂环境且具有高感知灵敏度的电子设备的需求日益增长。在这里,设计了一种基于 Ag/HfO/ITO/PET 柔性忆阻器的新型人工损伤感知设备,以解决当前技术在多模态感知和环境适应性方面的局限性。忆阻器在不同弯曲角度(BA)、温度、潮湿环境和重复折叠条件下表现出优异的电阻开关(RS)性能和机械灵活性。此外,该设备通过在不同条件下的电流响应测试,展示了对电压、机械和热刺激的多模态感知和转换能力,不仅能够模拟人工损伤感知,还为监测和控制机械臂的运动提供了可能。此外,还展示了基于忆阻器的可重构逻辑(MRL)门的逻辑运算能力,证明了该设备具有传感、存储和记忆功能的巨大潜在应用价值。总的来说,这项研究不仅为下一代柔性多模态传感器的发展提供了方向,而且对机械臂、电子皮肤(e-skin)和医疗监测等许多领域的技术进步也具有重要意义。