• Title/Summary/Keyword: electrochemical etching stop

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Establishment of Optimal {100} Si Etching Condition for $N_2H_4-H_2O$ Solutions and Application to Electrochemica Etching ($N_2H_4-H_2O$용액의 {100} Si에 대한 최적식각조건의 설정과 전기화학적 식각에의 응용)

  • 주병권;이윤호;김병곤;오명환
    • Journal of the Korean Institute of Telematics and Electronics
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    • v.26 no.11
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    • pp.1686-1690
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    • 1989
  • Using the anisotropic etching characteristics of N2H4-H2O solutions, Si diaphragm was fabricated for the integrated sensors. The optimal composition and temperature of the etching solution in (100) Si etching process was established to be 50mol% N2H4 in H2O at 105\ulcorner\ulcorner for both higher etch rate (=2.6\ulcorner/min) and better surface quality of etched (100) planes. Based on the above optimal etching condition, the electrochemical etch-stop technique was employed to form n-type Si diaphragm having a thickness of 20\ulcorner and the thickness of diapragm could exactly be controlled to 20\ulcorner\ulcorner.

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Fabrication of SOI Structures with Buried Cavities for Microsystems SDB and Electrochemical Etch-stop (SDB와 전기화학적 식각정지에 의한 마이크로 시스템용 매몰 공동을 갖는 SOI 구조의 제조)

  • Chung, Gwiy-Sang;Kang, Kyung-Doo;Choi, Sung-Kyu
    • Journal of Sensor Science and Technology
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    • v.11 no.1
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    • pp.54-59
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    • 2002
  • This paper describes a new process technique for batch process of SOI(Si-on-Insulator) structures with buried cavities for MEMS(Micro Electro Mechanical System) applications by SDB(Si-wafer Direct Bonding) technology and electrochemical etch-stop. A low-cost electrochemical etch-stop method is used to control accurately the thickness of SOI. The cavities were made on the upper handling wafer by Si anisotropic etching. Two wafers are bonded with an intermediate insulating oxide layer. After high-temperature annealing($1000^{\circ}C$, 60 min), the SDB SOI structure with buried cavities was thinned by electrochemical etch-stop. The surface of the fabricated SDB SOI structure have more roughness that of lapping and polishing by mechanical method. This SDB SOI structure with buried cavities will provide a powerful and versatile substrate for novel microsensors arid microactuators.

Fabrication or Si Diaphragm using Optimal Etching Condition of $N_2H_4-H_2O$ Solution ($N_2H_4-H_2O$ 용액의 최적 시작 조건을 이용한 Si diaphragm의 제작)

  • Ju, B.K.;Lee, Y.H.;Kim, H.G.;Oh, M.H.
    • Proceedings of the KIEE Conference
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    • 1989.07a
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    • pp.295-298
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    • 1989
  • Using the anisotropic etching characteristics or $N_2H_4-H_2O$ solution, Si diaphragm was fabricated for the integrated sensor. The optimal composition and temperature of the solution in Si etching process was established to be 50mol% $N_2H_4$ in water at $105{\pm}2^{\circ}C$ for both higher etch rate(=$2.6{\mu}m/min$) and better surface quality of etched {100} planes. Under the optimal etching condition, the electrochemical etch stop technique was employed to form Si diaphragm for pressure sensor and diaphragm thickness was exactly controlled to $20{\pm}2{\mu}m$.

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A Study on Water-Proof Characteristics of a Stainless Steel Mesh by Electrochemical Etching Process (전기화학 에칭 공정을 이용한 스테인리스 스틸 메쉬의 방수 특성 연구)

  • Lee, Chan;Kim, Ji Min;Kim, Hyungmo
    • Tribology and Lubricants
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    • v.37 no.5
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    • pp.189-194
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    • 2021
  • A straightforward, yet effective surface modification method of stainless steel mesh and its interesting anti-wetting characteristics are reported in this study. The stainless steel mesh is electrochemically etched, and the specimen has both micro and nano-scale structures on its surface. This process transforms the two types of mesh specimens known as the regular and dense specimens into hydrophobic specimens without applying any hydrophobic chemical coating process. The fundamental wettability of the modified mesh is analyzed through a dedicatedly designed experiment to investigate the waterproof characteristics, for instance, the penetration threshold. The waterproof characteristics are evaluated in a manner that the modified mesh resists as high as approximately 2.7 times the pressure compared with the bare mesh, i.e., the non-modified mesh. The results show that the penetration threshold depends primarily on the advancing contact angles, and the penetration stop behaviors are affected by the contact angle hysteresis on the surfaces. The findings further confirm that the inexpensive waterproof meshes created using the proposed straightforward electrochemical etching process are effective and can be adapted along with appropriate designs for various practical applications, such as underwater devices, passive valves, and transducers. In general, , additional chemical coatings are applied using hydrophobic materials on the surfaces for the applications that require water-repelling capabilities. Although these chemical coatings can often cause aging, the process proposed in this study is not only cost-effective, but also durable implying that it does not lose its waterproof properties over time.

Silicon Capacitive Pressure Sensor for Low Pressure Measurements (저 압력 측정을 위한 실리콘 용량형 압력센서)

  • Seo, Hee-Don;Lee, Youn-Hee;Park, Jong-Dae;Choi, Se-Gon
    • Journal of Sensor Science and Technology
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    • v.2 no.1
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    • pp.19-27
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    • 1993
  • Capacitive pressure sensor for low pressure measurements has been fabricated by using $n^{+}$ epitaxial layer electrochemical etching stop and glass-to-silicon electrostatic bonding technique. The sensor had hybrid configuration of a sensor chip, which consists of sensor capacitor and reference capacitor, and two output signal detection IC chips. A fabricated sensor, with a $1.0{\times}1.0 mm^{2}$ square size and a $10{\mu}m$ thick flat diaphragm, showed a 7.1 pF zero pressure capacitance, and 5.2 % F.S, sensitivity in 10 KPa pressure range. By using a capacitance to voltage converter, the thermal zero shift of 0.051 %F.S./$^{\circ}C$ and the thermal sensitivity shift of 0.12 %F.S./$^{\circ}C$ for temperature range of $5{\sim}45^{\circ}C$ were obtained.

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