Instituto de Microelectrónica de Barcelona, IMB-CNM (CSIC), Campus UAB, E-08193 Cerdanyola, Spain.
Sensors (Basel). 2010;10(4):4071-82. doi: 10.3390/s100404071. Epub 2010 Apr 21.
We report on the design and characterization of the building blocks of a single-chip wireless chemical sensor fabricated with a commercial complementary metal-oxide-silicon (CMOS) technology, which includes two types of transducers for impedimetric measurements (4-electrode array and two interdigitated electrodes), instrumentation circuits, and a metal coil and circuits for inductive power and data transfer. The electrodes have been formed with a polycrystalline silicon layer of the technology by a simple post-process that does not require additional deposition or lithography steps, but just etching steps. A linear response to both conductivity and permittivity of solutions has been obtained. Wireless communication of the sensor chip with a readout unit has been demonstrated. The design of the chip was prepared for individual block characterization and not for full system characterization. The integration of chemical transducers within monolithic wireless platforms will lead to smaller, cheaper, and more reliable chemical microsensors, and will open up the door to numerous new applications where liquid mediums that are enclosed in sealed receptacles have to be measured.
我们报告了使用商业互补金属氧化物半导体 (CMOS) 技术制造的单片无线化学传感器的构建块的设计和特性,其中包括两种用于阻抗测量的换能器(四电极阵列和两个叉指电极)、仪器仪表电路,以及用于感应功率和数据传输的金属线圈和电路。这些电极是通过技术中的多晶硅层形成的,采用了一种简单的后处理工艺,不需要额外的沉积或光刻步骤,只需进行刻蚀步骤。已经获得了对溶液电导率和介电常数的线性响应。已经证明了传感器芯片与读取单元的无线通信。芯片的设计是为了进行单个模块的特性化,而不是进行完整系统的特性化。化学换能器在单片无线平台中的集成将导致更小、更便宜、更可靠的化学微传感器,并为许多新的应用打开大门,这些应用需要测量密封容器中包含的液体介质。