Porous silicon optical filters in gas sensing applications
Jalkanen, Tero (2012-11-03)
Porous silicon optical filters in gas sensing applications
Jalkanen, Tero
(03.11.2012)
Turun yliopisto Annales Universitatis Turkuensis A I 448
Julkaisun pysyvä osoite on:
https://urn.fi/URN:ISBN:978-951-29-5186-4
https://urn.fi/URN:ISBN:978-951-29-5186-4
Kuvaus
Siirretty Doriasta
Tiivistelmä
In this thesis, the gas sensing properties of porous silicon-based thin-film
optical filters are explored. The effects of surface chemistry on the adsorption
and desorption of various gases are studied in detail. Special emphasis
is placed on investigating thermal carbonization as a stabilization method
for optical sensing applications. Moreover, the possibility of utilizing the
increased electrical conductivity of thermally carbonized porous silicon for
implementing a multiparametric gas sensor, which would enable simultaneous
monitoring of electrical and optical parameters, is investigated. In addition,
different porous silicon-based optical filter-structures are prepared,
and their properties in sensing applications are evaluated and compared.
First and foremost, thermal carbonization is established as a viable
method to stabilize porous silicon optical filters for chemical sensing applications.
Furthermore, a multiparametric sensor, which can be used for
increasing selectivity in gas sensing, is also demonstrated. Methods to improve
spectral quality in multistopband mesoporous silicon rugate filters
are studied, and structural effects to gas sorption kinetics are evaluated.
Finally, the stability of thermally carbonized optical filters in basic environments
is found to be superior in comparison to other surface chemistries
currently available for porous silicon. The results presented in this thesis
are of particular interest for developing novel reliable sensing systems based
on porous silicon, e.g., label-free optical biosensors.
optical filters are explored. The effects of surface chemistry on the adsorption
and desorption of various gases are studied in detail. Special emphasis
is placed on investigating thermal carbonization as a stabilization method
for optical sensing applications. Moreover, the possibility of utilizing the
increased electrical conductivity of thermally carbonized porous silicon for
implementing a multiparametric gas sensor, which would enable simultaneous
monitoring of electrical and optical parameters, is investigated. In addition,
different porous silicon-based optical filter-structures are prepared,
and their properties in sensing applications are evaluated and compared.
First and foremost, thermal carbonization is established as a viable
method to stabilize porous silicon optical filters for chemical sensing applications.
Furthermore, a multiparametric sensor, which can be used for
increasing selectivity in gas sensing, is also demonstrated. Methods to improve
spectral quality in multistopband mesoporous silicon rugate filters
are studied, and structural effects to gas sorption kinetics are evaluated.
Finally, the stability of thermally carbonized optical filters in basic environments
is found to be superior in comparison to other surface chemistries
currently available for porous silicon. The results presented in this thesis
are of particular interest for developing novel reliable sensing systems based
on porous silicon, e.g., label-free optical biosensors.
Kokoelmat
- Väitöskirjat [2888]