Ashoori Ehsan, Goderis Derek, Inohara Anna, Mason Andrew J
Department of Electrical and Computer Engineering, Michigan State University, East Lansing, MI 48824, USA.
Sensors (Basel). 2024 May 1;24(9):2902. doi: 10.3390/s24092902.
Electrochemical measurements are vital to a wide range of applications such as air quality monitoring, biological testing, food industry, and more. Integrated circuits have been used to implement miniaturized and low-power electrochemical potentiostats that are suitable for wearable devices. However, employing modern integrated circuit technologies with low supply voltage precludes the utilization of electrochemical reactions that require a higher potential window. In this paper, we present a novel circuit architecture that utilizes dynamic voltage at the working electrode of an electrochemical cell to effectively enhance the supported voltage range compared to traditional designs, increasing the cell voltage range by 46% and 88% for positive and negative cell voltages, respectively. In return, this facilitates a wider range of bias voltages in an electrochemical cell, and, therefore, opens integrated microsystems to a broader class of electrochemical reactions. The circuit was implemented in 180 nm technology and consumes 2.047 mW of power. It supports a bias potential range of 1.1 V to -2.12 V and cell potential range of 2.41 V to -3.11 V that is nearly double the range in conventional designs.
电化学测量对于广泛的应用至关重要,如空气质量监测、生物测试、食品工业等。集成电路已被用于实现适用于可穿戴设备的小型化、低功耗电化学恒电位仪。然而,采用低电源电压的现代集成电路技术排除了对需要更高电位窗口的电化学反应的利用。在本文中,我们提出了一种新颖的电路架构,该架构利用电化学电池工作电极处的动态电压,与传统设计相比有效地扩大了支持的电压范围,正、负电池电压下的电池电压范围分别增加了46%和88%。作为回报,这有助于在电化学电池中实现更宽的偏置电压范围,因此为更广泛的一类电化学反应打开了集成微系统的大门。该电路采用180纳米技术实现,功耗为2.047毫瓦。它支持1.1伏至-2.12伏的偏置电位范围和2.41伏至-3.11伏的电池电位范围,几乎是传统设计范围的两倍。