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一种集成了可打印有机传感器的用于室内环境监测的自维持无线多传感器平台。

A Self-Sustained Wireless Multi-Sensor Platform Integrated with Printable Organic Sensors for Indoor Environmental Monitoring.

作者信息

Wu Chun-Chang, Chuang Wen-Yu, Wu Ching-Da, Su Yu-Cheng, Huang Yung-Yang, Huang Yang-Jing, Peng Sheng-Yu, Yu Shih-An, Lin Chih-Ting, Lu Shey-Shi

机构信息

Graduate Institute of Electronics Engineering, National Taiwan University, Taipei 10617, Taiwan.

Department of Electrical Engineering, National Taiwan University of Science and Technology, Taipei 10617, Taiwan.

出版信息

Sensors (Basel). 2017 Mar 29;17(4):715. doi: 10.3390/s17040715.

Abstract

A self-sustained multi-sensor platform for indoor environmental monitoring is proposed in this paper. To reduce the cost and power consumption of the sensing platform, in the developed platform, organic materials of PEDOT:PSS and PEDOT:PSS/EB-PANI are used as the sensing films for humidity and CO₂ detection, respectively. Different from traditional gas sensors, these organic sensing films can operate at room temperature without heating processes or infrared transceivers so that the power consumption of the developed humidity and the CO₂ sensors can be as low as 10 μW and 5 μW, respectively. To cooperate with these low-power sensors, a Complementary Metal-Oxide-Semiconductor (CMOS) system-on-chip (SoC) is designed to amplify and to read out multiple sensor signals with low power consumption. The developed SoC includes an analog-front-end interface circuit (AFE), an analog-to-digital convertor (ADC), a digital controller and a power management unit (PMU). Scheduled by the digital controller, the sensing circuits are power gated with a small duty-cycle to reduce the average power consumption to 3.2 μW. The designed PMU converts the power scavenged from a dye sensitized solar cell (DSSC) module into required supply voltages for SoC circuits operation under typical indoor illuminance conditions. To our knowledge, this is the first multiple environmental parameters (Temperature/CO₂/Humidity) sensing platform that demonstrates a true self-powering functionality for long-term operations.

摘要

本文提出了一种用于室内环境监测的自持式多传感器平台。为降低传感平台的成本和功耗,在已开发的平台中,分别使用聚(3,4-乙撑二氧噻吩):聚苯乙烯磺酸盐(PEDOT:PSS)和PEDOT:PSS/EB-聚苯胺(PEDOT:PSS/EB-PANI)有机材料作为湿度和二氧化碳检测的传感薄膜。与传统气体传感器不同,这些有机传感薄膜可在室温下运行,无需加热过程或红外收发器,因此所开发的湿度和二氧化碳传感器的功耗可分别低至10微瓦和5微瓦。为配合这些低功耗传感器,设计了一种互补金属氧化物半导体(CMOS)片上系统(SoC),以低功耗放大和读出多个传感器信号。所开发的SoC包括一个模拟前端接口电路(AFE)、一个模数转换器(ADC)、一个数字控制器和一个电源管理单元(PMU)。在数字控制器的调度下,传感电路以小占空比进行电源门控,以将平均功耗降低至3.2微瓦。所设计的PMU将从染料敏化太阳能电池(DSSC)模块获取的能量转换为SoC电路在典型室内光照条件下运行所需的电源电压。据我们所知,这是首个展示真正自供电功能以实现长期运行的多环境参数(温度/二氧化碳/湿度)传感平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bca4/5421675/9e253082dcc4/sensors-17-00715-g001.jpg

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