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Optimization of CMOS-ISFET-Based Biomolecular Sensing: Analysis and Demonstration in DNA Detection

机译:基于CMOS-ISFET的生物分子传感的优化:DNA检测中的分析和演示

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Ion-sensitive field-effect transistors (ISFETs) have been used to detect a variety of biomolecules whose charges alter the current or threshold voltage of the transistor. ISFETs can be built into large-scale arrays by CMOS compatible technology, offering the promise of highly parallel, all-electrical biomolecule sensing in a true chip-scale construct. Although CMOS-ISFET-based biomolecule detection has been amply demonstrated, a comprehensive optimization study of its sensitivity based on the device design, which would aid the development of large-scale arrays, remains lacking. Here, we present a systematic optimization strategy for CMOS-ISFET-based biomolecule sensing, using real-time DNA hybridization detection as an example. We analytically show that biasing the ISFETs close to the threshold is optimal, whereas minimizing the channel-to-sensing area ratio is beneficial but with limited sensitivity enhancement due to the double-layer capacitance of the sensing area. We then experimentally confirm our strategy with 26 ISFETs of varying sizes and biases from two CMOS chips, which detect the same 200-nM target DNA with different hybridization signals. The measured data correlate well to the presented theory. Our results are generally applicable to detecting other types of biomolecules, and may help in developing large-scale arrays of electrical biomolecular sensors.
机译:离子敏感场效应晶体管(ISFET)已用于检测其电荷会改变晶体管的电流或阈值电压的各种生物分子。可以通过CMOS兼容技术将ISFET内置到大规模阵列中,从而在真正的芯片规模结构中提供高度并行的全电生物分子传感技术。尽管已经充分证明了基于CMOS-ISFET的生物分子检测,但仍缺乏基于器件设计的灵敏度综合性优化研究,这将有助于大规模阵列的开发。在此,我们以实时DNA杂交检测为例,提出了基于CMOS-ISFET的生物分子传感的系统优化策略。我们的分析表明,将ISFET偏置到接近阈值是最佳的,而最小化通道与感测面积之比是有益的,但由于感测区域的双层电容,其灵敏度增强有限。然后,我们用来自两个CMOS芯片的26个大小不同和偏置不同的ISFET实验性地确定了我们的策略,该芯片检测具有不同杂交信号的相同200nM靶DNA。实测数据与提出的理论很好地相关。我们的结果通常可用于检测其他类型的生物分子,并可能有助于开发大规模的生物分子电子传感器阵列。

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