LEADER 03631oam 2200481 450 001 9910483846203321 005 20210710150028.0 010 $a3-030-65505-9 024 7 $a10.1007/978-3-030-65505-1 035 $a(CKB)4100000011763237 035 $a(DE-He213)978-3-030-65505-1 035 $a(MiAaPQ)EBC6480215 035 $a(PPN)253855756 035 $a(EXLCZ)994100000011763237 100 $a20210710d2021 uy 0 101 0 $aeng 135 $aurnn|008mamaa 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aMathematical modeling of biosensors /$fRomas Baronas, Feliksas Ivanauskas, Juozas Kulys 205 $aSecond edition. 210 1$aCham, Switzerland :$cSpringer,$d[2021] 210 4$d©2021 215 $a1 online resource (XVII, 456 p. 152 illus., 12 illus. in color.) 225 1 $aSpringer Series on Chemical Sensors and Biosensors, Methods and Applications,$x1612-7617 ;$v9 311 $a3-030-65504-0 327 $aIntroduction to Modeling of Biosensors -- Effects of Diffusion Limitations on the Response and Sensitivity of Biosensors -- Biosensors Utilizing Consecutive and Parallel Substrates Conversion -- Biosensors Response Amplification with Cyclic Substrates Conversion -- Biosensors Utilizing Synergistic Substrates Conversion -- Biosensors Acting in Injection Mode -- Chemically Modified Enzyme and Biomimetic Catalysts Electrodes -- Biosensors with Porous and Perforated Membranes -- Biosensors Utilizing Non Michaelis-Menten Kinetics -- Biosensors Based on Microreactors -- Modeling Carbon Nanotube Based Biosensors -- Modeling Biosensors Utilizing Microbial Cells -- Application of Mathematical Modeling to Optimal Design of Biosensors. 330 $aThis newly designed and enlarged edition offers an up-to-date presentation of biosensor development and modeling from both a chemical and a mathematical point of view. An entire new chapter in particular is dedicated to optimal design of biosensors. Two more new chapters discuss biosensors which utilize microbial cells and are based on carbon nanotubes respectively. All the other chapters have been revised and updated. The book contains unique modeling methods for amperometric, potentiometric and optical biosensors based mainly on biocatalysts . It examines processes that occur in the sensors' layers and at their interface, and it provides analytical and numerical methods to solve equations of conjugated enzymatic (chemical) and diffusion processes. The action of single enzyme as well as polyenzyme biosensors and biosensors based on chemically modified electrodes is studied. The modeling of biosensors that contain perforated membranes and multipart mass transport profiles is critically investigated. Furthermore, it is fully described how signals can be biochemically amplified, how cascades of enzymatic substrate conversion are triggered, and how signals are processed via a chemometric approach and artificial neuronal networks. The results of digital modeling are compared with both proximal analytical solutions and experimental data. . 410 0$aSpringer Series on Chemical Sensors and Biosensors, Methods and Applications,$x1612-7617 ;$v9 606 $aBiomedical engineering 615 0$aBiomedical engineering. 676 $a610.28 700 $aBaronas$b Romas$01226012 702 $aIvanauskas$b Feliksas 702 $aKulys$b Juozas 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bUtOrBLW 906 $aBOOK 912 $a9910483846203321 996 $aMathematical modeling of biosensors$92846510 997 $aUNINA