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Micro packaged MEMS pressure sensor for intracranial pressure measurement

Xiong Liu1, , Yan Yao1, Jiahao Ma1, Yanhang Zhang2, Qian Wang2, Zhaohua Zhang1 and Tianling Ren2

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 Corresponding author: Xiong Liu, Email: hunan70011@126.com

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Abstract: This paper presents a micro packaged MEMS pressure sensor for intracranial pressure measurement which belongs to BioMEMS. It can be used in lumbar puncture surgery to measure intracranial pressure. Miniaturization is key for lumbar puncture surgery because the sensor must be small enough to allow it be placed in the reagent chamber of the lumbar puncture needle. The size of the sensor is decided by the size of the sensor chip and package. Our sensor chip is based on silicon piezoresistive effect and the size is 400 × 400 μm2. It is much smaller than the reported polymer intracranial pressure sensors such as liquid crystal polymer sensors. In terms of package, the traditional dual in-line package obviously could not match the size need, the minimal size of recently reported MEMS-based intracranial pressure sensors after packaging is 10 × 10 mm2. In this work, we are the first to introduce a quad flat no-lead package as the package form of piezoresistive intracranial pressure sensors, the whole size of the sensor is minimized to only 3 × 3 mm2. Considering the liquid measurement environment, the sensor is gummed and waterproof performance is tested; the sensitivity of the sensor is 0.9 × 10-2 mV/kPa.

Key words: intracranial pressure measurementlumbar puncture surgeryBioMEMSquad flat no-lead packagewaterproof test



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Fig. 1.  The schematic of a lumbar puncture.

Fig. 2.  The schematic of the piezoresistive MEMS pressure sensor and Wheatstone bridge.

Fig. 3.  The fabricated piezoresistive MEMS pressure sensor chip.

Fig. 4.  The structure of the QFN package.

Fig. 5.  The contrast of DIP package and QFN package. The black one is the QFN packaged sensor,the white one is the DIP packaged sensor.

Fig. 6.  The sensor is gummed by silicone Gel330.

Fig. 7.  QFN package shell. The diameter of the circular hole is 1.5~mm.

Fig. 8.  Waterproof test.

Fig. 9.  Sensitivity of the sensor samples.

Fig. 10.  The simulation structure of the sensor.

Table 1.   Simulation sensitivity of the sensor with silicone gummed.

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    Received: 17 November 2014 Revised: Online: Published: 01 June 2015

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      Xiong Liu, Yan Yao, Jiahao Ma, Yanhang Zhang, Qian Wang, Zhaohua Zhang, Tianling Ren. Micro packaged MEMS pressure sensor for intracranial pressure measurement[J]. Journal of Semiconductors, 2015, 36(6): 064009. doi: 10.1088/1674-4926/36/6/064009 X Liu, Y Yao, J H Ma, Y H Zhang, Q Wang, Z H Zhang, T L Ren. Micro packaged MEMS pressure sensor for intracranial pressure measurement[J]. J. Semicond., 2015, 36(6): 064009. doi: 10.1088/1674-4926/36/6/064009.Export: BibTex EndNote
      Citation:
      Xiong Liu, Yan Yao, Jiahao Ma, Yanhang Zhang, Qian Wang, Zhaohua Zhang, Tianling Ren. Micro packaged MEMS pressure sensor for intracranial pressure measurement[J]. Journal of Semiconductors, 2015, 36(6): 064009. doi: 10.1088/1674-4926/36/6/064009

      X Liu, Y Yao, J H Ma, Y H Zhang, Q Wang, Z H Zhang, T L Ren. Micro packaged MEMS pressure sensor for intracranial pressure measurement[J]. J. Semicond., 2015, 36(6): 064009. doi: 10.1088/1674-4926/36/6/064009.
      Export: BibTex EndNote

      Micro packaged MEMS pressure sensor for intracranial pressure measurement

      doi: 10.1088/1674-4926/36/6/064009
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      Project supported by the National Natural Science Foundation of China (Nos. 61025021, 61434001), and the 'Thousands Talents' Program for Pioneer Researchers and Its Innovation Team, China.

      More Information
      • Corresponding author: Email: hunan70011@126.com
      • Received Date: 2014-11-17
      • Accepted Date: 2015-01-07
      • Published Date: 2015-01-25

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