首页> 外文会议>SPIE Conference on Optical Sensing and Detection >LTCC based differential photo acoustic gas cell for ppm gas sensing
【24h】

LTCC based differential photo acoustic gas cell for ppm gas sensing

机译:基于LTCC的差分照片声学气体,用于PPM气体感应

获取原文

摘要

Silicon MEMS cantilever-based photoacoustic technology allows for the sensing of ultra low gas concentrations with very wide dynamic range. The sensitivity enhancement is achieved with a cantilever microphone system in which the cantilever displacement is probed with an optical interferometer providing a pico-meter resolution. In the gas sensor, the silicon cantilever microphone is placed in a two-chamber differential gas cell. By monitoring differential pressure changes between the two chambers, the differential cell operates as a differential infra-red detector for optical absorption signals through a measurement and reference path. The differential pressure signal is proportional to gas concentration in the optical measurement path. We have designed, implemented and tested a differential photo acoustic gas cell based on Low Temperature Co-fired Ceramic (LTCC) multilayer substrate technology. Standard LTCC technology enables implementation of 2.5D structures including holes, cavities and channels into the electronic substrate. The implemented differential photoacoustic gas cell structure includes two 10 mm long cylindrical cells, diameter of 2.4 mm. Reflectance measurements of the cell showed that reflectivity of the substrate material can be improved by a factor 15 - 90 in the 3 -8 μm spectral region using gold or silver paste coatings. A transparent window is required in the differential gas cell structure in order to probe the displacement of the silicon cantilever. The transparent sapphire window was sealed to the LTCC substrate using two methods: screen printed Au80/Sn20 solder paste and pre-attached glass solder paste (Diemat DM2700P/H848). Both methods were shown to provide hermetic sealing of sapphire windows to LTCC substrate. The measured He-leak rate for the 10 sealed test samples implemented using glass paste were less than 2.0 ×10~(-9) atm×cm~3/s, which meets the requirement for the leak rate according to MIL-STD 883. The achieved hermetic level suggests that the proof-of-principle packaging demonstrator paves the way for implementing a novel differential photoacoustic gas cell for a future miniature gas sensor module. The future module consisting of a sample gas cell and immersion lens IR-LEDs together with interferometric probing of the cantilever microphone is expected to be capable of measuring ultra low concentrations of a wide range of gases with their fundamental absorption bands at 3 - 7 μm wavelength, such as CO. CO_2 and CH_4.
机译:硅MEMS悬臂基光声技术允许在具有非常宽的动态范围内进行超低气体浓度的传感。利用悬臂麦克风系统实现灵敏度增强,其中悬臂位移被探测具有提供微微仪表分辨率的光学干涉仪。在气体传感器中,将硅悬臂麦克风置于双室差分气体电池中。通过监测两个腔室之间的差压变化,差动单元通过测量和参考路径作为光学吸收信号的差动红外检测器。差压信号与光学测量路径中的气体浓度成比例。我们已经设计,实施和测试了基于低温共烧陶瓷(LTCC)多层基板技术的差分照片声气电池。标准LTCC技术使得能够实现2.5D结构,包括孔,空腔和通道进入电子基板。实施的差动光声气体电池结构包括两个10mm长的圆柱形电池,直径为2.4mm。细胞的反射率测量表明,使用金或银浆料涂层的3-8μm光谱区域中可以通过3-8μm光谱区域的因子15-90改善基底材料的反射率。差动气体电池结构需要透明窗口,以便探测硅悬臂的位移。使用两种方法将透明的蓝宝石窗口密封到LTCC衬底:丝网印刷AU80 / SN20焊膏和预连接玻璃焊膏(Diemat DM2700P / H848)。显示两种方法都显示为LTCC基板提供了蓝宝石窗口的气密密封。使用玻璃浆料实现的10个密封试验样品的测量的HE泄漏率小于2.0×10〜(-9)ATM×cm〜3 / s,这符合根据MIL-STD 883的泄漏率的要求。实现的密封层面表明,原则上的包装示范器铺平了用于实现未来微型气体传感器模块的新型差动光声气体电池的方式。将未来模块组成的模块与悬臂式麦克风的干涉探测器一起组成的模块,该模块将能够测量具有3-7μm波长的基本吸收带的多种气体的超低浓度,例如co。co_2和ch_4。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号