Adsorption-desorption noise in plasmonic chemical/biological sensors for multiple analyte environment
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2010
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We investigated intrinsic noise in plasmonic sensors caused by adsorption and desorption of gaseous analytes on the sensor surface. We analyzed a general situation when there is a larger number of different analyte species. We applied our model to calculate various analyte mixtures, including some environmental pollutants, toxic and dangerous substances. The spectral density of mean square refractive index fluctuations follows a dependence similar to that of generation-recombination noise in photodetectors, flat at lower frequencies and sharply decreasing at higher. Some of the calculated noise levels are well within the detection range of conventional surface plasmon resonance sensors. An AD noise peak is observed in temperature dependence of mean square refractive index fluctuations, thus sensor operating temperature may be optimized to obtain larger signal to noise ratio. A significant property of AD noise is its rise with the decreasing plasmon sensor area, which means that it will... be even more pronounced in modern nanoplasmonic devices. Our consideration is valid both for conventional surface plasmon resonance devices and for general nanoplasmonic devices.
Izvor:
Microsystem Technologies-Micro-And Nanosystems-Information Storage and Processing Systems, 2010, 16, 5, 735-743Izdavač:
- Springer Heidelberg, Heidelberg
Finansiranje / projekti:
DOI: 10.1007/s00542-010-1043-7
ISSN: 0946-7076
WoS: 000275990300009
Scopus: 2-s2.0-77952423042
Institucija/grupa
IHTMTY - JOUR AU - Jakšić, Olga AU - Jakšić, Zoran AU - Matovic, Jovan PY - 2010 UR - https://cer.ihtm.bg.ac.rs/handle/123456789/649 AB - We investigated intrinsic noise in plasmonic sensors caused by adsorption and desorption of gaseous analytes on the sensor surface. We analyzed a general situation when there is a larger number of different analyte species. We applied our model to calculate various analyte mixtures, including some environmental pollutants, toxic and dangerous substances. The spectral density of mean square refractive index fluctuations follows a dependence similar to that of generation-recombination noise in photodetectors, flat at lower frequencies and sharply decreasing at higher. Some of the calculated noise levels are well within the detection range of conventional surface plasmon resonance sensors. An AD noise peak is observed in temperature dependence of mean square refractive index fluctuations, thus sensor operating temperature may be optimized to obtain larger signal to noise ratio. A significant property of AD noise is its rise with the decreasing plasmon sensor area, which means that it will be even more pronounced in modern nanoplasmonic devices. Our consideration is valid both for conventional surface plasmon resonance devices and for general nanoplasmonic devices. PB - Springer Heidelberg, Heidelberg T2 - Microsystem Technologies-Micro-And Nanosystems-Information Storage and Processing Systems T1 - Adsorption-desorption noise in plasmonic chemical/biological sensors for multiple analyte environment VL - 16 IS - 5 SP - 735 EP - 743 DO - 10.1007/s00542-010-1043-7 ER -
@article{ author = "Jakšić, Olga and Jakšić, Zoran and Matovic, Jovan", year = "2010", abstract = "We investigated intrinsic noise in plasmonic sensors caused by adsorption and desorption of gaseous analytes on the sensor surface. We analyzed a general situation when there is a larger number of different analyte species. We applied our model to calculate various analyte mixtures, including some environmental pollutants, toxic and dangerous substances. The spectral density of mean square refractive index fluctuations follows a dependence similar to that of generation-recombination noise in photodetectors, flat at lower frequencies and sharply decreasing at higher. Some of the calculated noise levels are well within the detection range of conventional surface plasmon resonance sensors. An AD noise peak is observed in temperature dependence of mean square refractive index fluctuations, thus sensor operating temperature may be optimized to obtain larger signal to noise ratio. A significant property of AD noise is its rise with the decreasing plasmon sensor area, which means that it will be even more pronounced in modern nanoplasmonic devices. Our consideration is valid both for conventional surface plasmon resonance devices and for general nanoplasmonic devices.", publisher = "Springer Heidelberg, Heidelberg", journal = "Microsystem Technologies-Micro-And Nanosystems-Information Storage and Processing Systems", title = "Adsorption-desorption noise in plasmonic chemical/biological sensors for multiple analyte environment", volume = "16", number = "5", pages = "735-743", doi = "10.1007/s00542-010-1043-7" }
Jakšić, O., Jakšić, Z.,& Matovic, J.. (2010). Adsorption-desorption noise in plasmonic chemical/biological sensors for multiple analyte environment. in Microsystem Technologies-Micro-And Nanosystems-Information Storage and Processing Systems Springer Heidelberg, Heidelberg., 16(5), 735-743. https://doi.org/10.1007/s00542-010-1043-7
Jakšić O, Jakšić Z, Matovic J. Adsorption-desorption noise in plasmonic chemical/biological sensors for multiple analyte environment. in Microsystem Technologies-Micro-And Nanosystems-Information Storage and Processing Systems. 2010;16(5):735-743. doi:10.1007/s00542-010-1043-7 .
Jakšić, Olga, Jakšić, Zoran, Matovic, Jovan, "Adsorption-desorption noise in plasmonic chemical/biological sensors for multiple analyte environment" in Microsystem Technologies-Micro-And Nanosystems-Information Storage and Processing Systems, 16, no. 5 (2010):735-743, https://doi.org/10.1007/s00542-010-1043-7 . .