21.1 Nanowatt circuit interface to whole-cell bacterial sensors

P. Nadeau, M. Mimee, Sean Carim, T. Lu, A. Chandrakasan
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引用次数: 18

Abstract

Genetically engineered, re-programmable bacterial cells are fast emerging as a platform for small molecule detection in challenging environments [1]. A key barrier to widespread deployment of autonomous bacterial sensors is the detection of low-level bioluminescence, which is typically quantified with power-hungry (watt-level) detection hardware such as Photo Multiplier Tubes (PMT). Prior work has reported successful integrated mW-level detection of bioluminescence by using PN / PIN photodiodes with OTA-based [2] and active-pixel-sensor circuits [3,4]. Our goal was to develop an even lower power readout to enable harvesting as a viable source of energy for a future batteryless autonomous biological sensor node, with applications in distributed remote environmental sensing, or in vivo biochemical sensing.
21.1纳瓦电路接口到全细胞细菌传感器
基因工程、可重新编程的细菌细胞正迅速成为在具有挑战性的环境中进行小分子检测的平台[1]。自主细菌传感器广泛部署的一个关键障碍是检测低水平的生物发光,这通常是用耗电(瓦级)检测硬件(如光倍增管(PMT))来量化的。先前的研究报道了利用基于ota的PN / PIN光电二极管[2]和有源像素传感器电路[3,4]成功集成了毫瓦级生物发光检测。我们的目标是开发一种更低功耗的读数,使其能够作为未来无电池自主生物传感器节点的可行能源,应用于分布式远程环境传感或体内生化传感。
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