Dielectrophoresis‐Assisted Integration of 1024 Carbon Nanotube Sensors into a CMOS Microsystem
Technology
LG-CNTFET
Chemistry, Multidisciplinary
Materials Science
FIELD-EFFECT-TRANSISTOR
Materials Science, Multidisciplinary
Condensed Matter
02 engineering and technology
09 Engineering
Physics, Applied
Physical
Nanoscience & Nanotechnology
dielectrophoresis
Multidisciplinary
Science & Technology
02 Physical Sciences
carbon nanotubes
Chemistry, Physical
Physics
CMOS
620
Chemistry
Physics, Condensed Matter
Applied
Physical Sciences
Science & Technology - Other Topics
03 Chemical Sciences
0210 nano-technology
nanosensors
DOI:
10.1002/adma.201606852
Publication Date:
2017-03-15T12:57:13Z
AUTHORS (5)
ABSTRACT
Carbon‐nanotube (CNT)‐based sensors offer the potential to detect single‐molecule events and picomolar analyte concentrations. An important step toward applications of such nanosensors is their integration in large arrays. The availability of large arrays would enable multiplexed and parallel sensing, and the simultaneously obtained sensor signals would facilitate statistical analysis. A reliable method to fabricate an array of 1024 CNT‐based sensors on a fully processed complementary‐metal‐oxide‐semiconductor microsystem is presented. A high‐yield process for the deposition of CNTs from a suspension by means of liquid‐coupled floating‐electrode dielectrophoresis (DEP), which yielded 80% of the sensor devices featuring between one and five CNTs, is developed. The mechanism of floating‐electrode DEP on full arrays and individual devices to understand its self‐limiting behavior is studied. The resistance distributions across the array of CNT devices with respect to different DEP parameters are characterized. The CNT devices are then operated as liquid‐gated CNT field‐effect‐transistors (LG‐CNTFET) in liquid environment. Current dependency to the gate voltage of up to two orders of magnitude is recorded. Finally, the sensors are validated by studying the pH dependency of the LG‐CNTFET conductance and it is demonstrated that 73% of the CNT sensors of a given microsystem show a resistance decrease upon increasing the pH value.
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