• DocumentCode
    738291
  • Title

    A Dual-Mode Large-Arrayed CMOS ISFET Sensor for Accurate and High-Throughput pH Sensing in Biomedical Diagnosis

  • Author

    Xiwei Huang ; Hao Yu ; Xu Liu ; Yu Jiang ; Mei Yan ; Dongping Wu

  • Author_Institution
    Sch. of Electron. & Inf., Hangzhou Dianzi Univ., Hangzhou, China
  • Volume
    62
  • Issue
    9
  • fYear
    2015
  • Firstpage
    2224
  • Lastpage
    2233
  • Abstract
    Goal: The existing ISFET-based DNA sequencing detects hydrogen ions released during the polymerization of DNA strands on microbeads, which are scattered into microwell array above the ISFET sensor with unknown distribution. However, false pH detection happens at empty microwells due to crosstalk from neighboring microbeads. In this paper, a dual-mode CMOS ISFET sensor is proposed to have accurate pH detection toward DNA sequencing. Methods: Dual-mode sensing, optical and chemical modes, is realized by integrating a CMOS image sensor (CIS) with ISFET pH sensor, and is fabricated in a standard 0.18-μm CIS process. With accurate determination of microbead physical locations with CIS pixel by contact imaging, the dual-mode sensor can correlate local pH for one DNA slice at one location-determined microbead, which can result in improved pH detection accuracy. Moreover, toward a high-throughput DNA sequencing, a correlated-double-sampling readout that supports large array for both modes is deployed to reduce pixel-to-pixel nonuniformity such as threshold voltage mismatch. Results: The proposed CMOS dual-mode sensor is experimentally examined to show a well correlated pH map and optical image for microbeads with a pH sensitivity of 26.2 mV/pH, a fixed pattern noise (FPN) reduction from 4% to 0.3%, and a readout speed of 1200 frames/s. Conclusion: A dual-mode CMOS ISFET sensor with suppressed FPN for accurate large-arrayed pH sensing is proposed and demonstrated with state-of-the-art measured results toward accurate and high-throughput DNA sequencing. Significance: The developed dual-mode CMOS ISFET sensor has great potential for future personal genome diagnostics with high accuracy and low cost.
  • Keywords
    CMOS image sensors; DNA; biochemistry; biomedical equipment; biomedical optical imaging; biosensors; chemical sensors; ion sensitive field effect transistors; microsensors; molecular biophysics; molecular configurations; pH; pH measurement; polymerisation; CIS pixel; CMOS image sensor; DNA strands; ISFET pH sensor; ISFET-based DNA sequencing; biomedical diagnosis; chemical modes; contact imaging; correlated-double-sampling readout; dual-mode large-arrayed CMOS ISFET sensor; dual-mode sensing; false pH detection; fixed pattern noise reduction; high-throughput pH sensing; hydrogen ions; location-determined microbead; microbead physical locations; microwell array; neighboring microbeads; optical modes; personal genome diagnostics; pixel-to-pixel nonuniformity; polymerization; size 0.18 mum; standard CIS process; threshold voltage mismatch; Arrays; CMOS integrated circuits; Capacitors; DNA; Imaging; Optical switches; Sequential analysis; CMOS image sensor; CMOS image sensor (CIS); Correlated double sampling; DNA sequencing; ISFET; contact imaging; correlated double sampling; ion-sensitive field-effect transistor (ISFET); pH detection;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2015.2419233
  • Filename
    7078866