Smart resonant micro-sensor and micro-actuator: high-performance, wide range bi-axial magnetic sensitive/ insensitive micro-device for multifunctional sensing applications.

IF 9.9 1区 工程技术 Q1 INSTRUMENTS & INSTRUMENTATION
Hanin Amara, Nadeem Tariq Beigh, Nouha Alcheikh
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引用次数: 0

Abstract

With the rapid development of intelligent and autonomous systems, such as wearable health monitoring and advanced manufacturing robots, there is a growing demand for the development of advanced, miniaturized smart sensors and actuator systems. In this context, a single microdevice with hybrid functionality as both a sensor and actuator demonstrates excellent performance across diverse applications, holds significant promise. Herein, we present a proof-of-concept for a high-performance bi-directional Lorentz force magnetometer and actuator, implemented within a single microelectromechanical system (MEMS) device. Moreover, the device demonstrates insensitivity to magnetic fields, making it highly suitable for applications that require anti-crossing behavior in magnetic environments. The design is based on a clamped-guided curved microresonator connected to straight and V-shaped beams of micro-actuators. The operation of the proposed device relies on the flexibility to control the applied electrothermal excitation in different ways, offering smart thermal actuation and dynamic sensing mechanisms. Furthermore, the proposed technique allows tuning of the first symmetric mode, achieving either a high or low frequency shift based on input power levels. Hence, this study provides valuable insights for improving tunability in sensitivity and power for various actuation mechanisms. At atmospheric pressure and an input power of 19.5 mW, the device functions as a high-performance biaxial magnetic sensor with a sensitivity (S) of ~36.58% T-1, an excellent linearity in the medium-to-high magnetic field range of ±400 mT, and a minimum detectable field, Bmin of 0.83 µT Hz-1. In contrast, it can be tuned as a magnetic-field-insensitive actuator (S = 3.28% T-1) with a transversal displacement of ~4 µm, utilizing a negligible power of 43 mW. The diverse operation highlights its hybrid functionality as an actuator or high-performance sensor. These features, combined with the simplicity of fabrication and low cost, make the proposed microdevice highly promising for developing a three-axis magnetic sensor and actuator network system, as well as for various industrial applications.

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智能谐振微传感器和微执行器:高性能,宽范围双轴磁敏感/不敏感微器件,用于多功能传感应用。
随着可穿戴式健康监测和先进制造机器人等智能和自主系统的快速发展,对先进、小型化智能传感器和执行器系统的开发需求日益增长。在这种情况下,作为传感器和执行器的混合功能的单个微器件在不同的应用中表现出优异的性能,具有重要的前景。在此,我们提出了一种高性能双向洛伦兹力磁力计和致动器的概念验证,该磁力计和致动器在单个微机电系统(MEMS)器件中实现。此外,该器件对磁场不敏感,使其非常适合需要在磁性环境中抗交叉行为的应用。该设计基于一个夹紧引导的弯曲微谐振器,该微谐振器连接到微致动器的直线和v形光束。该装置的运行依赖于以不同方式控制所施加的电热激励的灵活性,提供智能热驱动和动态传感机制。此外,所提出的技术允许调谐第一对称模式,实现基于输入功率电平的高或低频率移位。因此,该研究为提高各种驱动机构的灵敏度和功率可调性提供了有价值的见解。在大气压和19.5 mW的输入功率下,该器件作为高性能双轴磁传感器,灵敏度(S)为~36.58% T-1,在±400 mT的中高磁场范围内具有良好的线性度,最小可探测场Bmin为0.83µT Hz-1。相比之下,它可以作为一个磁场不敏感的致动器(S = 3.28% T-1)进行调谐,横向位移为~4µm,利用可忽略不计的43 mW功率。多样化的操作凸显了其作为执行器或高性能传感器的混合功能。这些特点,加上制造简单和成本低,使得所提出的微器件在开发三轴磁传感器和执行器网络系统以及各种工业应用方面非常有前途。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Microsystems & Nanoengineering
Microsystems & Nanoengineering Materials Science-Materials Science (miscellaneous)
CiteScore
12.00
自引率
3.80%
发文量
123
审稿时长
20 weeks
期刊介绍: Microsystems & Nanoengineering is a comprehensive online journal that focuses on the field of Micro and Nano Electro Mechanical Systems (MEMS and NEMS). It provides a platform for researchers to share their original research findings and review articles in this area. The journal covers a wide range of topics, from fundamental research to practical applications. Published by Springer Nature, in collaboration with the Aerospace Information Research Institute, Chinese Academy of Sciences, and with the support of the State Key Laboratory of Transducer Technology, it is an esteemed publication in the field. As an open access journal, it offers free access to its content, allowing readers from around the world to benefit from the latest developments in MEMS and NEMS.
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