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A CMOS wireless biomolecular sensing system-on-chip based on polysilicon nanowire technology

机译:基于多晶硅纳米线技术的CMOS无线生物分子片上系统

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As developments of modern societies, an on-field and personalized diagnosis has become important for disease prevention and proper treatment. To address this need, in this work, a polysilicon nanowire (poly-Si NW) based biosensor system-on-chip (bio-SSoC) is designed and fabricated by a 0.35 mμ 2-Poly-4-Metal (2P4M) complementary metal-oxide-semiconductor (CMOS) process provided by a commercialized semiconductor foundry. Because of the advantages of CMOS system-on-chip (SoC) technologies, the poly-Si NW biosensor is integrated with a chopper differential-difference amplifier (DDA) based analog-front-end (AFE), a successive approximation analog-to-digital converter (SAR ADC), and a microcontroller to have better sensing capabilities than a traditional Si NW discrete measuring system. In addition, an on-off key (OOK) wireless transceiver is also integrated to form a wireless bio-SSoC technology. This is pioneering work to harness the momentum of CMOS integrated technology into emerging bio-diagnosis technologies. This integrated technology is experimentally examined to have a label-free and low-concentration biomolecular detection for both Hepatitis B Virus DNA (10 fM) and cardiac troponin I protein (3.2 pM). Based on this work, the implemented wireless bio-SSoC has demonstrated a good biomolecular sensing characteristic and a potential for low-cost and mobile applications. As a consequence, this developed technology can be a promising candidate for on-field and personalized applications in biomedical diagnosis.
机译:随着现代社会的发展,对疾病的预防和适当治疗的现场和个性化诊断已变得很重要。为了满足这一需求,在这项工作中,基于0.35mμ的2-Poly-4-Metal(2P4M)互补金属设计并制造了基于多晶硅纳米线(poly-Si NW)的生物传感器片上系统(bio-SSoC)。由商业化的半导体铸造厂提供的氧化半导体工艺。由于CMOS片上系统(SoC)技术的优势,poly-Si NW生物传感器与基于斩波器差分差分放大器(DDA)的模拟前端(AFE)集成在一起,从而可以逐次逼近模数转换器。 -数字转换器(SAR ADC)和微控制器具有比传统的Si NW离散测量系统更好的感测能力。此外,还集成了开关钥匙(OOK)无线收发器,以形成无线bio-SSoC技术。这是一项开创性的工作,旨在将CMOS集成技术的势头用于新兴的生物诊断技术。经过实验检验,该集成技术可对乙型肝炎病毒DNA(10 fM)和心肌肌钙蛋白I蛋白(3.2 pM)进行无标记且低浓度的生物分子检测。基于这项工作,已实现的无线生物SSoC已证明具有良好的生物分子传感特性,并具有低成本和移动应用的潜力。因此,这项发达的技术可以成为生物医学诊断中现场和个性化应用的有前途的候选者。

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