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Hybrid Integration of an Active Pixel Sensor and Microfluidics for Cytometry on a Chip

机译:有源像素传感器和微流控芯片在细胞芯片上的混合集成

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Reported are motivations and approaches for the integration of custom sensors with microfluidic devices for cytometry on a chip and related fluid metering applications. To demonstrate, details of a digital 16-element mixed-signal CMOS active pixel optical sensor with adaptive spatial filtering is first described. The 0.18-mum CMOS fabricated sensor is then shown coupled to a microfluidic channel via a polymer encapsulated chip-on-board approach as well as a preferred flip-chip-on-glass hybrid integration approach. However, both approaches discussed possess attributes that are well suited for reliable high-volume production. Utilizing these two disparate assembly topologies, the intelligent sensor's general behavior, optical input dynamic range, and near-field sensitivity to polymer beads being transported in a microfluidic channel is explored. The findings suggest that discrete near-field sensor integration with microfluidics is a well-positioned integration approach for helping to obviate the need for precision analog-to-digital conversion, optical fiber microchannel coupling, and conventional microscopy for a set of relevant micro total analysis system applications. By opting instead for a hybrid multichip module approach to system integration, this study marks a slight departure in strategy relative to many common monolithic system-on-chip integration efforts
机译:报告了将定制传感器与微流控设备集成在一起以在芯片上进行细胞计数以及相关的流体计量应用的动机和方法。为了演示,首先描述具有自适应空间滤波的数字16元素混合信号CMOS有源像素光学传感器的细节。然后显示了0.18微米CMOS制造的传感器通过聚合物封装的板上芯片方法以及优选的玻璃倒装芯片混合集成方法耦合到微流体通道。但是,所讨论的两种方法都具有非常适合可靠的大批量生产的属性。利用这两种不同的组装拓扑,探索了智能传感器的一般行为,光学输入动态范围以及对在微流体通道中传输的聚合物珠粒的近场灵敏度。研究结果表明,离散近场传感器与微流体的集成是一种定位良好的集成方法,可帮助消除对一组相关的微总分析的精密模数转换,光纤微通道耦合和常规显微镜的需要系统应用程序。通过选择采用混合多芯片模块方法进行系统集成,相对于许多常见的单片系统级芯片集成工作,本研究标志着策略上的轻微偏离

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