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用于生物医学仪器应用的微电子(互补金属氧化物半导体,CMOS)设计与验证的Excel方法。

Excel Methods to Design and Validate in Microelectronics (Complementary Metal-Oxide-Semiconductor, CMOS) for Biomedical Instrumentation Application.

作者信息

Dieck-Assad Graciano, Rodríguez-Delgado José Manuel, González Peña Omar Israel

机构信息

Tecnológico de Monterrey, School of Engineering and Science, Av. Eugenio Garza Sada Sur No. 2501, col. Tecnológico, Monterrey 64849, Mexico.

Tecnológico de Monterrey, Institute for the Future of Education, Av. Eugenio Garza Sada Sur No. 2501, col. Tecnológico, Monterrey 64849, Mexico.

出版信息

Sensors (Basel). 2021 Nov 11;21(22):7486. doi: 10.3390/s21227486.

Abstract

CMOS microelectronics design has evolved tremendously during the last two decades. The evolution of CMOS devices to short channel designs where the feature size is below 1000 nm brings a great deal of uncertainty in the way the microelectronics design cycle is completed. After the conceptual idea, developing a thinking model to understand the operation of the device requires a good "ballpark" evaluation of transistor sizes, decision making, and assumptions to fulfill the specifications. This design process has iterations to meet specifications that exceed in number of the available degrees of freedom to maneuver the design. Once the thinking model is developed, the simulation validation follows to test if the design has a good possibility of delivering a successful prototype. If the simulation provides a good match between specifications and results, then the layout is developed. This paper shows a useful open science strategy, using the Excel software, to develop CMOS microelectronics hand calculations to verify a design, before performing the computer simulation and layout of CMOS analog integrated circuits. The full methodology is described to develop designs of passive components, as well as CMOS amplifiers. The methods are used in teaching CMOS microelectronics to students of electronic engineering with industrial partner participation. This paper describes an exhaustive example of a low-voltage operational transconductance amplifier (OTA) design which is used to design an instrumentation amplifier. Finally, a test is performed using this instrumentation amplifier to implement a front-end signal conditioning device for CMOS-MEMS biomedical applications.

摘要

在过去二十年中,CMOS微电子设计取得了巨大的发展。CMOS器件向特征尺寸低于1000纳米的短沟道设计的演进,给微电子设计周期的完成方式带来了很大的不确定性。在形成概念想法之后,开发一个思维模型来理解器件的运行需要对晶体管尺寸进行良好的“大致”评估、决策以及做出假设以满足规格要求。这个设计过程需要多次迭代以满足规格要求,而这些迭代的次数超过了设计可操控的自由度数量。一旦开发出思维模型,就会进行仿真验证,以测试该设计是否有很大可能成功制造出原型。如果仿真结果在规格和结果之间提供了良好的匹配,那么就进行版图设计。本文展示了一种有用的开放科学策略,即使用Excel软件在进行CMOS模拟集成电路的计算机仿真和版图设计之前,开发CMOS微电子的手工计算来验证设计。文中描述了用于开发无源元件以及CMOS放大器设计的完整方法。这些方法在有工业合作伙伴参与的情况下,用于向电子工程专业的学生教授CMOS微电子课程。本文描述了一个低压运算跨导放大器(OTA)设计的详尽示例,该设计用于设计一个仪表放大器。最后,使用这个仪表放大器进行测试,以实现用于CMOS-MEMS生物医学应用的前端信号调理装置。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9aec/8618810/7073f5382445/sensors-21-07486-g0A1.jpg

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