| Literature DB >> 30453536 |
Zakriya Mohammed1, Ibrahim Abe M Elfadel2, Mahmoud Rasras3.
Abstract
With the continuous advancements in microelectromechanical systems (MEMS) fabrication technology, inertial sensors like accelerometers and gyroscopes can be designed and manufactured with smaller footprint and lower power consumption. In the literature, there are several reported accelerometer designs based on MEMS technology and utilizing various transductions like capacitive, piezoelectric, optical, thermal, among several others. In particular, capacitive accelerometers are the most popular and highly researched due to several advantages like high sensitivity, low noise, low temperature sensitivity, linearity, and small footprint. Accelerometers can be designed to sense acceleration in all the three directions (X, Y, and Z-axis). Single-axis accelerometers are the most common and are often integrated orthogonally and combined as multiple-degree-of-freedom (MDoF) packages for sensing acceleration in the three directions. This type of MDoF increases the overall device footprint and cost. It also causes calibration errors and may require expensive compensations. Another type of MDoF accelerometers is based on monolithic integration and is proving to be effective in solving the footprint and calibration problems. There are mainly two classes of such monolithic MDoF accelerometers, depending on the number of proof masses used. The first class uses multiple proof masses with the main advantage being zero calibration issues. The second class uses a single proof mass, which results in compact device with a reduced noise floor. The latter class, however, suffers from high cross-axis sensitivity. It also requires very innovative layout designs, owing to the complicated mechanical structures and electrical contact placement. The performance complications due to nonlinearity, post fabrication process, and readout electronics affects both classes of accelerometers. In order to effectively compare them, we have used metrics such as sensitivity per unit area and noise-area product. This paper is devoted to an in-depth review of monolithic multi-axis capacitive MEMS accelerometers, including a detailed analysis of recent advancements aimed at solving their problems such as size, noise floor, cross-axis sensitivity, and process aware modeling.Entities:
Keywords: accelerometer; capacitive transduction; inertial sensors; micromachining; miniaturization; multi-axis sensing; three-axis accelerometer
Year: 2018 PMID: 30453536 PMCID: PMC6266379 DOI: 10.3390/mi9110602
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1Model of accelerometer.
Figure 2Advantages and disadvantages of various transduction schemes.
Figure 3Sensing scheme of (a) area change accelerometer (b) gap change accelerometer (c) equivalent circuit.
Figure 4Sensing scheme of (a) gap changeable fully differential accelerometer (b) equivalent circuit.
Figure 5Dual axis gap change differential accelerometer.
Figure 6Sensing scheme of (a) vertical Z-axis accelerometer (b) torsional Z-axis accelerometer.
Figure 7Layout of a torsional Z-axis accelerometer [31].
Performance summary of tri-axial multiple proof-mass accelerometers.
| Ref | Year | Author | Device Size (mm × mm) | Range (‘±g’) | Sensitivity X, Y, and Z |
| Nonlinearity X, Y, and Z | Cross-Axis Sensitivity X, Y, and Z |
|---|---|---|---|---|---|---|---|---|
| [ | 1999 | Lemkin, M. | 4 × 4 (including read out) | 1.9 | Digital Output (0.4 fF/bit) | 110, 160, 990 | - | - |
| [ | 1999 | Matsumoto, Y. | 5 × 5 | - | 25 fF/g, | <10% | ||
| [ | 2000 | Butefisch, S. | 9 × 9 | - | 210 mV/g | - | R2 = 0.997 | - |
| 990 mV/g | R2 = 0.99 | |||||||
| [ | 2005 | Rodjegard, H. | 2.5 × 2 | - | 1.27 fF/g, | - | - | 0.12 fF/g |
| [ | 2005 | Chae, J. | 7 × 9 | 1 | 6.8 pF/g, | 1.6, 1.6, 1.08 | - | - |
| [ | 2013 | Liu, Y.C. | 1.57 × 1.73 | 0.01~2 | 105 mV/g, | 400, 210, 940 | 1%, 0.5%, 2.4% | 3%, 2.3%, 8.8% |
| [ | 2015 | Tez, S. | 12 × 7 | 10 (X, Y) | - | 5.4, 5.5, 12.6 | 0.34%, 0.28%, 0.41% | <1% |
| [ | 2016 | Aydemir, A. | 11.8 × 4.8 | 4 | 70.2 mV/g, | 13.9, 13.2, 17.8 | 0.26%, 0.28%, 0.3% | <1% |
| 71 (X, Y) |
Performance summary of three-axis single proof-mass accelerometers.
| Ref | Year | Author | Device Size (mm × mm) | Range (‘±g’) | Sensitivity X, Y, and Z |
| Nonlinearity X, Y, and Z | Cross-Axis Sensitivity X, Y, and Z |
|---|---|---|---|---|---|---|---|---|
| [ | 1996 | Mineta, T. | 10 × 10 | - | - | - | - | 10% |
| [ | 1997 | Lemkin, M.A. | 4 × 4 (including read out) | 11-X-axis, | 0.24 fF/g, | 730, 730, 760 | - | 1.58% (calculated) |
| [ | 2001 | Li, G. | 1.8 × 1.8 (only proof mass) | - | 30 mV/g, | - | - | <5% |
| [ | 2003 | Xie, H. | 1 × 1 (including readout) | - | - | 50 (estimated) | - | - |
| [ | 2008 | Qu, H. | 4 × 4 (including readout) | 1 | 520 mV/g, | 12, 14, 110 | - | 2.38%, 2.26%, |
| [ | 2009 | Hollocher, D. | 4 × 4 (including read out) | 3 | 300 mV/g | 150, 150, 300 | 0.3% | 1% |
| [ | 2010 | Sun, C.M. | 1.78 × 1.78 (including read out) | 0.8~6 | 0.53 mV/g, | 120,000, | 2.64%, | <7.46%, |
| [ | 2010 | Hsu, Y.W. | 1.3 × 1.28 | 1 | 1.44 mV/g, | 138, | 0.52%, | 0.28%, |
| [ | 2012 | Tsai, M.H. | 0.4 × 0.4 (only proof mass) | 0~1 | 14.7 mV/g, | 2100, | 3.2%, | 6.6%, |
| [ | 2013 | Lo, S.C. | 1.7 × 1.7 (only proof mass) | 0.1~3 | 4.31 mV/g, | - | 2.72%, | 6.8%, |
| [ | 2014 | Serrano, D.E. | 0.45 × 0.45 (only proof mass) | 6 | 6 mV/g, | 13, | 0.5%, | 3% (maximum) |
Comparison of accelerometers.
| Multiple Proof-Mass Accelerometers | Single Proof-Mass Accelerometers | ||||||
|---|---|---|---|---|---|---|---|
| Ref | Year | Sensitivity/Area (mV/mm2) |
| Ref | Year | Sensitivity/Area (mV/mm2) |
|
| [ | 1999 | - | 15,840 | [ | 1997 | 0.0513 | 12,160 |
| [ | 1999 | 3.42 | - | [ | 2001 | 9.259 | - |
| [ | 2000 | 2.59 | - | [ | 2003 | - | 50 |
| [ | 2005 | 0.56 | - | [ | 2008 | 20 | 1760 |
| [ | 2005 | 157 | 100 | [ | 2009 | 18 | 4800 |
| [ | 2013 | 21.35 | 2553 | [ | 2010 | 0.06 | 1,131,118 |
| [ | 2015 | - | 1058 | [ | 2010 | 0.745 | 264 |
| [ | 2016 | 0.381 | 1008 | [ | 2012 | 91.25 | 336 |
| - | - | - | - | [ | 2013 | 1.204 | - |
| - | - | - | - | [ | 2014 | 24 | 6 |