Faculty of Symbiotic Systems Sciences, Fukushima University, 1 Kanayagawa, Fukushima 960-1296, Japan.
Sensors (Basel). 2022 Jul 21;22(14):5447. doi: 10.3390/s22145447.
The development of auditory sensors and systems is essential in smart materials of robotics and is placed at the strategic category of mutual communication between humans and robots. We designed prototypes of the rubber-made equilibrium and auditory sensors, mimicking hair cells in the saccule and the cochlea at the vestibule of the human ear by utilizing our previously proposed technique of electrolytic polymerization on the hybrid fluid rubber (HF rubber). The fabricated artificial hair cells embedded with mimicked free nerve endings and Pacinian corpuscles, which are well-known receptors in the human skin and have already been elucidated effective in the previous study, have the intelligence of equilibrium and auditory sensing. Moreover, they have a voltage that is generated from built-in electricity caused by the ionized particles and molecules in the HF rubber due to piezoelectricity. We verified the equilibrium and auditory characteristics by measuring the changes in voltage with inclination, vibration over a wide frequency range, and sound waves. We elucidated experimentally that the intelligence has optimum morphological conditions. This work has the possibility of advancing the novel technology of state-of-the-art social robotics.
听觉传感器和系统的发展对于机器人的智能材料至关重要,处于人类与机器人之间相互通信的战略范畴。我们利用之前提出的混合流体橡胶(HF 橡胶)电解聚合技术,设计了橡胶平衡和听觉传感器原型,模拟了人耳前庭囊和耳蜗中的毛细胞。所制造的人工毛细胞嵌入了模拟的游离神经末梢和帕西尼小体,这些都是人皮肤中众所周知的受体,在之前的研究中已被证明有效,具有平衡和听觉感应的智能。此外,由于压电性,HF 橡胶中的离子化颗粒和分子会产生内置电流,从而产生电压。我们通过测量倾斜时电压的变化、宽频率范围内的振动以及声波来验证平衡和听觉特性。我们通过实验阐明了这种智能具有最佳的形态条件。这项工作有可能推进最先进的社交机器人的新技术。