Dwivedi Apoorva, Khanna Gargi
Electronics and Communications Engineering Department, NIT Hamirpur, Hamirpur 177005, Himachal Pradesh, India, Phone: +91-7831059900, Fax: 01972-223834.
Electronics and Communications Engineering Department, NIT Hamirpur, Hamirpur 177005, Himachal Pradesh, India.
Biomed Tech (Berl). 2018 Nov 27;63(6):699-708. doi: 10.1515/bmt-2016-0181.
The present work attempts to enhance the sensitivity of a folded beam microelectromechanical systems (MEMS) capacitive accelerometer by optimising the device geometry. The accelerometer is intended to serve as a microphone in the fully implantable hearing application which can be surgically implanted in the middle ear bone structure. For the efficient design of the accelerometer as a fully implantable biomedical device, the design parameters such as size, weight and resonant frequency have been considered. The geometrical parameters are varied to obtain the optimum sensitivity considering the design constraints and the stability of the structure. The optimised design is simulated and verified using COMSOL MULTIPHYSICS 4.2. The stability of the device is ensured using eigenfrequency analysis. Optimised results of the device geometry are presented and discussed. The accelerometer has a sensing area of 1 mm2 and attains a nominal capacitance of 5.3 pF and an optimum sensitivity of 6.89 fF.
本工作试图通过优化器件几何结构来提高折叠梁微机电系统(MEMS)电容式加速度计的灵敏度。该加速度计旨在用作完全可植入式听力应用中的麦克风,可通过手术植入中耳骨结构。为了将加速度计高效设计为完全可植入式生物医学设备,已考虑了诸如尺寸、重量和谐振频率等设计参数。考虑到设计约束和结构稳定性,改变几何参数以获得最佳灵敏度。使用COMSOL MULTIPHYSICS 4.2对优化设计进行了模拟和验证。通过特征频率分析确保了器件的稳定性。给出并讨论了器件几何结构的优化结果。该加速度计的传感面积为1平方毫米,标称电容为5.3皮法,最佳灵敏度为6.89飞法。