Kumar Mohit, Kim Hong-Sik, Kim Joondong
Photoelectric and Energy Device Application Lab (PEDAL), Multidisciplinary Core Institute for Future Energies (MCIFE), Incheon National University, 119 Academy Rd. Yeonsu, Incheon, 22012, Republic of Korea.
Department of Electrical Engineering, Incheon National University, 119 Academy Rd. Yeonsu, Incheon, 22012, Republic of Korea.
Adv Mater. 2019 May;31(19):e1900021. doi: 10.1002/adma.201900021. Epub 2019 Mar 29.
A nociceptor is an essential element in the human body, alerting us to potential damage from extremes in temperature, pressure, etc. Realizing nociceptive behavior in an electronics device remains a central issue for researchers, designing neuromorphic devices. This study proposes and demonstrates an all-oxide-based highly transparent ultraviolet-triggered artificial nociceptor, which responds in a very similar way to the human eye. The device shows a high transmittance (>65%) and very low absorbance in the visible region. The current-voltage characteristics show loop opening, which is attributed to the charge trapping/detrapping. Further, the ultraviolet-stimuli-induced versatile criteria of a nociceptor such as a threshold, relaxation, allodynia, and hyperalgesia are demonstrated under self-biased condition, providing an energy-efficient approach for the neuromorphic device operation. The reported optically controlled features open a new avenue for the development of transparent optoelectronic nociceptors, artificial eyes, and memory storage applications.
伤害感受器是人体中的一个基本要素,它会提醒我们注意温度、压力等极端情况可能造成的损害。在设计神经形态设备时,在电子设备中实现伤害感受行为仍然是研究人员面临的核心问题。本研究提出并展示了一种基于全氧化物的高透明紫外触发人工伤害感受器,其响应方式与人类眼睛非常相似。该器件在可见光区域具有高透射率(>65%)和极低的吸收率。电流-电压特性呈现出回线开启现象,这归因于电荷俘获/脱俘获。此外,在自偏置条件下展示了紫外刺激诱导的伤害感受器的多种特性,如阈值、弛豫、异常性疼痛和痛觉过敏,为神经形态设备的运行提供了一种节能方法。所报道的光控特性为透明光电伤害感受器、人造眼睛和存储器存储应用的发展开辟了一条新途径。