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Chemistry integrated circuit: chemical system on a complementary metal oxide semiconductor integrated circuit

机译:化学集成电路:互补金属氧化物半导体集成电路上的化学系统

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摘要

By integrating chemical reactions on a large-scale integration (LSI) chip, new types of device can be created. For biomedical applications, monolithically integrated sensor arrays for potentiometric, amperometric and impedimetric sensing of biomolecules have been developed. The potentiometric sensor array detects pH and redox reaction as a statistical distribution of fluctuations in time and space. For the amperometric sensor array, a microelectrode structure for measuring multiple currents at high speed has been proposed. The impedimetric sensor array is designed to measure impedance up to 10 MHz. The multimodal sensor array will enable synthetic analysis and make it possible to standardize biosensor chips. Another approach is to create new functional devices by integrating molecular systems with LSI chips, for example image sensors that incorporate biological materials with a sensor array. The quantum yield of the photoelectric conversion of photosynthesis is 100%, which is extremely difficult to achieve by artificial means. In a recently developed process, a molecular wire is plugged directly into a biological photosynthetic system to efficiently conduct electrons to a gold electrode. A single photon can be detected at room temperature using such a system combined with a molecular single-electron transistor.
机译:通过在大规模集成(LSI)芯片上集成化学反应,可以创建新型设备。对于生物医学应用,已经开发出用于生物分子的电位,安培和阻抗检测的单片集成传感器阵列。电位传感器阵列将pH和氧化还原反应检测为时间和空间波动的统计分布。对于安培传感器阵列,已经提出了用于高速测量多个电流的微电极结构。阻抗传感器阵列旨在测量高达10 MHz的阻抗。多模式传感器阵列将使合成分析成为可能,并使标准化生物传感器芯片成为可能。另一种方法是通过将分子系统与LSI芯片集成来创建新的功能设备,例如将生物材料与传感器阵列结合在一起的图像传感器。光合作用的光电转换的量子产率为100%,这很难通过人工手段实现。在最近开发的过程中,将分子线直接插入生物光合作用系统中,以有效地将电子传导至金电极。使用这种与分子单电子晶体管结合的系统,可以在室温下检测单个光子。

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