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Micro and Nano Interdigitated Electrode Array (IDEA)-Based MEMS/NEMS as Electrochemical Transducers: A Review

期刊

NANOMATERIALS
卷 12, 期 23, 页码 -

出版社

MDPI
DOI: 10.3390/nano12234171

关键词

interdigitated electrode array; carbon MEMS; cyclic voltammetry; electrochemical analysis; nanocomposites; nanoparticles; electrochemical transducer; biosensor

资金

  1. Ministry of Science and Technology (MOSTI)
  2. Ministry of Higher Education (MOHE)
  3. Universiti Malaya
  4. [MOSTI002B-2022TED1]
  5. [TU003-2019]
  6. [IIRG007A-19HWB]

向作者/读者索取更多资源

This paper reviews the use of mu/n-IDEA configurations as working electrodes in four-electrode electrochemical sensors, focusing on the two-dimensional and three-dimensional IDEA configurations and methods to expand the surface area. Compared to traditional electrochemical sensors, IDEAs show improved performance and face several challenges in future development.
Micro and nano interdigitated electrode array (mu/n-IDEA) configurations are prominent working electrodes in the fabrication of electrochemical sensors/biosensors, as their design benefits sensor achievement. This paper reviews mu/n-IDEA as working electrodes in four-electrode electrochemical sensors in terms of two-dimensional (2D) planar IDEA and three-dimensional (3D) IDEA configurations using carbon or metal as the starting materials. In this regard, the enhancement of IDEAs-based biosensors focuses on controlling the width and gap measurements between the adjacent fingers and increases the IDEA's height. Several distinctive methods used to expand the surface area of 3D IDEAs, such as a unique 3D IDEA design, integration of mesh, microchannel, vertically aligned carbon nanotubes (VACNT), and nanoparticles, are demonstrated and discussed. More notably, the conventional four-electrode system, consisting of reference and counter electrodes will be compared to the highly novel two-electrode system that adopts IDEA's shape. Compared to the 2D planar IDEA, the expansion of the surface area in 3D IDEAs demonstrated significant changes in the performance of electrochemical sensors. Furthermore, the challenges faced by current IDEAs-based electrochemical biosensors and their potential solutions for future directions are presented herein.

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