IEEE Trans Biomed Eng. 2020 Feb;67(2):614-623. doi: 10.1109/TBME.2019.2919192. Epub 2019 Jun 19.
Precision metabolomics and quantification for cost-effective rapid diagnosis of disease are the key goals in personalized medicine and point-of-care testing. At present, patients are subjected to multiple test procedures requiring large laboratory equipment. Microelectronics has already made modern computing and communications possible by integration of complex functions within a single chip. As More than Moore technology increases in importance, integrated circuits for densely patterned sensor chips have grown in significance. Here, we present a versatile single complementary metal-oxide-semiconductor chip forming a platform to address personalized needs through on-chip multimodal optical and electrochemical detection that will reduce the number of tests that patients must take. The chip integrates interleaved sensing subsystems for quadruple-mode colorimetric, chemiluminescent, surface plasmon resonance, and hydrogen ion measurements. These subsystems include a photodiode array and a single photon avalanche diode array with some elements functionalized to introduce a surface plasmon resonance mode. The chip also includes an array of ion sensitive field-effect transistors. The sensor arrays are distributed uniformly over an active area on the chip surface in a scalable and modular design. Bio-functionalization of the physical sensors yields a highly selective simultaneous multiple-assay platform in a disposable format. We demonstrate its versatile capabilities through quantified bio-assays performed on-chip for glucose, cholesterol, urea, and urate, each within their naturally occurring physiological range.
精准代谢组学和定量分析是实现疾病经济高效快速诊断的关键目标,也是个性化医疗和即时检测的关键目标。目前,患者需要接受多项需要大型实验室设备的检测程序。微电子学通过将复杂功能集成到单个芯片中,已经实现了现代计算和通信。随着超越摩尔技术的重要性不断增加,用于密集图案传感器芯片的集成电路的重要性也在不断增加。在这里,我们展示了一种通用的单互补金属氧化物半导体芯片,该芯片通过片上多模态光学和电化学检测来满足个性化需求,从而减少患者必须进行的测试次数。该芯片集成了用于四模式比色、化学发光、表面等离子体共振和氢离子测量的交错式传感子系统。这些子系统包括一个光电二极管阵列和一个单个光子雪崩二极管阵列,其中一些元素经过功能化处理以引入表面等离子体共振模式。该芯片还包括一个离子敏场效应晶体管阵列。传感器阵列以可扩展和模块化的设计均匀分布在芯片表面的活动区域上。物理传感器的生物功能化可实现具有高度选择性的同时进行多种分析的一次性平台。我们通过在芯片上进行的葡萄糖、胆固醇、尿素和尿酸的定量生物分析证明了其多功能性,这些分析都在其自然生理范围内进行。