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</script>We have developed a hybrid platform that combines two well-known biosensing technologies based on quite different transducer principles: surface plasmon resonance and nanomechanical sensing. The new system allows the simultaneous and real-time detection of two independent parameters, refractive index change (Δn), and surface stress change (Δσ) when a biomolecular interaction takes place. Both parameters have a direct relation with the mass coverage of the sensor surface. The core of the platform is a common fluid cell, where the solution arrives to both sensor areas at the same time and under the same conditions (temperature, velocity, diffusion, etc.).The main objective of this integration is to achieve a better understanding of the physical behaviour of the transducers during sensing, increasing the information obtained in real time in one single experiment. The potential of the hybrid platform is demonstrated by the detection of DNA hybridization.
Transducers, DNA, Single-Stranded, Nanotechnology, Nucleic Acid Hybridization, Optical Devices, Microfluidic Analytical Techniques, Surface Plasmon Resonance, 3325 Tecnología de las telecomunicaciones, Mechanical Phenomena
Transducers, DNA, Single-Stranded, Nanotechnology, Nucleic Acid Hybridization, Optical Devices, Microfluidic Analytical Techniques, Surface Plasmon Resonance, 3325 Tecnología de las telecomunicaciones, Mechanical Phenomena
| citations This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | 6 | |
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| impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network. | Average |
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| downloads | 76 |

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