| Literature DB >> 35334646 |
Yumo Duan1,2, Anxiang Zhong1,2, Yulan Lu1,2, Jian Chen1,2, Deyong Chen1,2, Junbo Wang1,2.
Abstract
This paper presented an electrochemical seismic micro sensor based on an integrated structure of four centrosymmetric electrodes. In this integrative structure, cathodes were not only distributed on wafer surfaces but also on the inner walls of the flow holes of the wafer, which increased the effective cathode areas and improved the sensitivity of the sensor. Numerical simulations were conducted to validate the feasibility of the integrated structure of four centrosymmetric electrodes in monitoring seismic vibrations where variations in the arrangements of the flow holes and anode width were investigated. The integrated structure of the four centrosymmetric micro electrodes was fabricated based on Micro-Electro-Mechanical Systems (MEMS) without the requirement of manual alignments. Experimental characterizations revealed that: (1) the maximum sensitivity of the electrochemical seismic sensor based on the integrated structure of four centrosymmetric electrodes was two orders of magnitude higher than that of the commercial counterpart of CME6011 and three times higher than the electrochemical seismic sensor based on the integrated structure of four planar micro electrodes; (2) the electrochemical seismic sensor based on the integrated structure of four centrosymmetric micro electrodes demonstrated comparable and even lower noise levels in comparison to CME6011. Thus, the electrochemical seismic micro sensor developed in this study may function as an enabling tool in future applications of seismic monitoring and geophysical explorations.Entities:
Keywords: MEMS; centrosymmetric four electrodes; electrochemical seismometer
Year: 2022 PMID: 35334646 PMCID: PMC8954670 DOI: 10.3390/mi13030354
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1(a,b) Structure of the MEMS-based electrochemical seismometer which was mainly composed of an integrative structure with four centrosymmetric electrodes; (c) The working principle of the seismometer which characterized the outside vibration by the concentration gradient of .
Figure 2Simulation models: (a) Simulation model of the vibration link which took the volume force as the input and the liquid velocity at the midpoint of the channel edge as the output. (b) Simulation model of the electrochemical link which took the linear velocity of the end face of the channel as the input and the differential current of the two cathodes as the output. (c) Two arrangements of flow holes with the seven-hole structure on the top and the nineteen-hole structure at the bottom.
Figure 3Simulation results: (a) output current vs. input velocity of the electrochemical seismic sensors based on the integrated structure of four centrosymmetric micro electrodes vs. four planar micro electrodes. Amplitude frequency responses of the electrochemical seismic sensors based on the integrated structure of four centrosymmetric micro electrodes with variations in arrangements of flow holes (b) and anode width (c).
Figure 4(a–h) Fabrication process of the integrative structure with four centrosymmetric micro electrodes. (i,j) Microscopic observation of flow holes on anode and cathode.
Figure 5Prototyping images of the fabricated integrative structure of four centrosymmetric micro electrodes (a) which was assembled to form an electrochemical seismic micro sensor (b).
Figure 6Characterization results: (a) amplitude frequency response and (b) noise spectrum densities of the electrochemical seismic sensor based on the integrated structure of four centrosymmetric micro electrodes, in comparison to the commercial counterpart of CME6011 and the electrochemical seismic sensor based on the integrative structure of four planar micro electrodes. (c) amplitude frequency response of two electrochemical seismic sensors based on the integrated structure of four centrosymmetric micro electrodes.
Figure 7Random vibration response of the electrochemical seismic sensors based on the integrative structure of four centrosymmetric micro electrodes and the commercial counterpart of CME6011 before (a) and after (b) normalization.