Guru Prasad Murugan , Abiudh Durairaj R , Sharan Kishore R , Dr. Manjula Devi R , Dr. Jeyalakshmi Velusamy
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These materials act as an anode and a cathode, respectively, and develop opposite charges when brought into contact. Upon separation, the charged surfaces retain their individual charges, creating a potential difference between the materials. This difference generates an electrostatic field that drives the flow of electrons from one electrode to the other. As the electrons return, the field collapses, and the materials come back into contact, repeating the cycle. The device has been used to power a heart rate monitoring system. Experimental results demonstrate the output performance and long-term durability of the TENG device. Furthermore, future research, challenges and opportunities have been elaborated.</div></div>","PeriodicalId":100488,"journal":{"name":"e-Prime - Advances in Electrical Engineering, Electronics and Energy","volume":"10 ","pages":"Article 100811"},"PeriodicalIF":0.0000,"publicationDate":"2024-10-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Biomedical device powered by triboelectric nanogenerator\",\"authors\":\"Guru Prasad Murugan , Abiudh Durairaj R , Sharan Kishore R , Dr. Manjula Devi R , Dr. Jeyalakshmi Velusamy\",\"doi\":\"10.1016/j.prime.2024.100811\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>Biomedical devices play vital roles in health monitoring. Operability of these devices is hindered by their limited battery life. In vivo monitoring, diagnosis, and treatment have become challenging. The proposed Triboelectric Nanogenerator helps in overcoming the shackles of battery life. This article describes the process involved in the development of a healthcare device powered by triboelectric effect. In this work a contact-separation mode based triboelectric nanogenerator (TENG) has been used to power the device. TENG uses triboelectric phenomenon to transform mechanical energy into electrical energy. A contact-separation mode TENG operates through the interaction of two triboelectric materials. These materials act as an anode and a cathode, respectively, and develop opposite charges when brought into contact. Upon separation, the charged surfaces retain their individual charges, creating a potential difference between the materials. This difference generates an electrostatic field that drives the flow of electrons from one electrode to the other. As the electrons return, the field collapses, and the materials come back into contact, repeating the cycle. The device has been used to power a heart rate monitoring system. Experimental results demonstrate the output performance and long-term durability of the TENG device. 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引用次数: 0
摘要
生物医学设备在健康监测方面发挥着重要作用。由于电池寿命有限,这些设备的可操作性受到阻碍。体内监测、诊断和治疗已成为一项挑战。拟议的三电纳米发电机有助于克服电池寿命的桎梏。本文介绍了利用三电效应驱动医疗设备的开发过程。在这项工作中,基于接触分离模式的三电纳米发电机(TENG)被用来为设备供电。TENG 利用三电现象将机械能转化为电能。接触分离模式 TENG 通过两种三电材料的相互作用而工作。这些材料分别作为阳极和阴极,在接触时会产生相反的电荷。分离时,带电表面保留各自的电荷,在材料之间产生电位差。这种电位差会产生一个静电场,推动电子从一个电极流向另一个电极。当电子返回时,静电场崩溃,材料重新接触,重复循环。该装置已用于为心率监测系统供电。实验结果证明了 TENG 设备的输出性能和长期耐用性。此外,还阐述了未来的研究、挑战和机遇。
Biomedical device powered by triboelectric nanogenerator
Biomedical devices play vital roles in health monitoring. Operability of these devices is hindered by their limited battery life. In vivo monitoring, diagnosis, and treatment have become challenging. The proposed Triboelectric Nanogenerator helps in overcoming the shackles of battery life. This article describes the process involved in the development of a healthcare device powered by triboelectric effect. In this work a contact-separation mode based triboelectric nanogenerator (TENG) has been used to power the device. TENG uses triboelectric phenomenon to transform mechanical energy into electrical energy. A contact-separation mode TENG operates through the interaction of two triboelectric materials. These materials act as an anode and a cathode, respectively, and develop opposite charges when brought into contact. Upon separation, the charged surfaces retain their individual charges, creating a potential difference between the materials. This difference generates an electrostatic field that drives the flow of electrons from one electrode to the other. As the electrons return, the field collapses, and the materials come back into contact, repeating the cycle. The device has been used to power a heart rate monitoring system. Experimental results demonstrate the output performance and long-term durability of the TENG device. Furthermore, future research, challenges and opportunities have been elaborated.