Electrochemical Biosensors - Sensor Principles and Architectures
Top Cited Papers
Open Access
- 7 March 2008
- Vol. 8 (3) , 1400-1458
- https://doi.org/10.3390/s80314000
Abstract
Quantification of biological or biochemical processes are of utmost importance for medical, biological and biotechnological applications. However, converting the biological information to an easily processed electronic signal is challenging due to the complexity of connecting an electronic device directly to a biological environment. Electrochemical biosensors provide an attractive means to analyze the content of a biological sample due to the direct conversion of a biological event to an electronic signal. Over the past decades several sensing concepts and related devices have been developed. In this review, the most common traditional techniques, such as cyclic voltammetry, chronoamperometry, chronopotentiometry, impedance spectroscopy, and various field-effect transistor based methods are presented along with selected promising novel approaches, such as nanowire or magnetic nanoparticle-based biosensing. Additional measurement techniques, which have been shown useful in combination with electrochemical detection, are also summarized, such as the electrochemical versions of surface plasmon resonance, optical waveguide lightmode spectroscopy, ellipsometry, quartz crystal microbalance, and scanning probe microscopy. The signal transduction and the general performance of electrochemical sensors are often determined by the surface architectures that connect the sensing element to the biological sample at the nanometer scale. The most common surface modification techniques, the various electrochemical transduction mechanisms, and the choice of the recognition receptor molecules all influence the ultimate sensitivity of the sensor. New nanotechnology-based approaches, such as the use of engineered ion-channels in lipid bilayers, the encapsulation of enzymes into vesicles, polymersomes, or polyelectrolyte capsules provide additional possibilities for signal amplification. In particular, this review highlights the importance of the precise control over the delicate interplay between surface nano-architectures, surface functionalization and the chosen sensor transducer principle, as well as the usefulness of complementary characterization tools to interpret and to optimize the sensor response.Keywords
This publication has 283 references indexed in Scilit:
- A disposable immunomagnetic electrochemical sensor based on functionalised magnetic beads on gold surface for the detection of atrazineElectrochimica Acta, 2006
- Structure and biosensor characteristics of complex between glucose oxidase and plasma-polymerized nanothin filmBiosensors and Bioelectronics, 2006
- Monitoring Chemical Reactions by Using Ion‐Channel‐Forming PeptidesChemBioChem, 2006
- Improving the performance of electrochemical microsensors based on enzymes entrapped in a redox hydrogelAnalytica Chimica Acta, 2005
- Channel Activity of a Viral Transmembrane Peptide in Micro-BLMs: Vpu1-32 from HIV-1Journal of the American Chemical Society, 2004
- Stabilization of enzymes in nanoporous materials for biosensor applicationsBiosensors and Bioelectronics, 2004
- Immunosensors—principles and applications to clinical chemistryClinica Chimica Acta; International Journal of Clinical Chemistry, 2001
- The Structure of the Potassium Channel: Molecular Basis of K + Conduction and SelectivityScience, 1998
- Conducting polymer-based biosensorsElectrochimica Acta, 1994
- Biochemically active sol-gel glasses: the trapping of enzymesMaterials Letters, 1990