Rapid and Sensitive Detection of Nanomolecules by an AC Electrothermal Flow Facilitated Impedance Immunosensor
Anil Koklu1, Jason Giuliani2, Carlos Monton3
1Biological and Environmental Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.
Insights
This study introduces a novel impedance sensing method using AC electrothermal flow (ACET) to accelerate analyte transport in immunosensors. This approach significantly enhances sensitivity and reduces detection times for biomolecules.
Area of Science:
- Biosensing
- Nanotechnology
- Electrochemistry
Background:
- Conventional immunosensors suffer from slow analyte diffusion, limiting sensitivity and detection speed.
- Passive diffusion hinders efficient binding reactions, leading to prolonged assay times and reduced performance.
- Overcoming diffusion limitations is crucial for developing rapid and sensitive biosensing platforms.
Purpose of the Study:
- To develop an efficient impedance sensing method overcoming sensitivity and diffusion limitations in immunosensors.
- To integrate AC electrothermal flow (ACET) with nanorod-covered electrodes for enhanced analyte transport.
- To demonstrate a rapid, sensitive, and real-time biomolecule detection platform.
Main Methods:
- Utilized nanorod-covered interdigitated electrodes and AC electrothermal flow (ACET) with impedance spectroscopy.
- Performed numerical simulations to analyze ACET flow effects on biosensor performance.
- Employed thermoreflectance imaging to determine optimal device operating conditions based on Joule heating.
- Quantified real-time impedance changes due to receptor-target molecule binding.
Main Results:
- ACET flow significantly accelerated analyte transport to nanorod electrodes within seconds.
- The impedance sensing method showed extremely fast response times, reaching saturation in under a minute.
- Achieved a reduced detection limit of 1 ng/mL, a substantial improvement over conventional methods.
- Demonstrated enhanced reaction times and sensitivity compared to traditional incubation methods.
Conclusions:
- The developed ACET-enhanced impedance sensing method overcomes key limitations of conventional immunosensors.
- This technology offers a promising and reliable platform for rapid, sensitive, and real-time biomolecule monitoring.
- Applicable to various biological samples including blood, urine, and saliva.
Abstract:
Conventional immunosensors typically rely on passive diffusion dominated transport of analytes for binding reaction and hence, it is limited by low sensitivity and long detection times. We report a simple and efficient impedance sensing method that can be utilized to overcome both sensitivity and diffusion limitations of immunosensors. This method incorporates the structural advantage of nanorod-covered interdigitated electrodes and the microstirring effect of AC electrothermal flow (ACET) with impedance spectroscopy. ACET flow induced by a biased AC electric field can rapidly convect the analyte onto nanorod structured electrodes within a few seconds and enriches the number of binding molecules because of the excessive effective surface area. We performed numerical simulations to investigate the effect of ACET flow on the biosensor performance. The results indicated that AC bias to the side electrodes could induce fast convective flow, which facilitates the transport of the target molecules to the binding region located in the middle as a floating electrode. The temperature rise due to the Joule heating effect was measured using a thermoreflectance imaging method to find the optimum device operation conditions. The change of impedance caused by the receptors-target molecules binding at the sample/electrode interface was experimentally measured and quantified in real-time using the impedance spectroscopy technique. We observed that the impedance sensing method exhibited extremely fast response compared with those under no bias conditions. The measured impedance change can reach saturation in a minute. Compared to the conventional incubation method, the ACET flow enhanced method is faster in its reaction time, and the detection limit can be reduced to 1 ng/mL. In this work, we demonstrate that this sensor technology is promising and reliable for rapid, sensitive, and real-time monitoring of biomolecules in biologically relevant media such as blood, urine, and saliva.
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