LEADER 04910nam 2200565 a 450 001 9910784806703321 005 20230607221519.0 010 $a981-277-840-3 035 $a(CKB)1000000000407622 035 $a(StDuBDS)AH24684815 035 $a(SSID)ssj0000211777 035 $a(PQKBManifestationID)11174594 035 $a(PQKBTitleCode)TC0000211777 035 $a(PQKBWorkID)10135823 035 $a(PQKB)11175594 035 $a(MiAaPQ)EBC1681264 035 $a(WSP)00004783 035 $a(Au-PeEL)EBL1681264 035 $a(CaPaEBR)ebr10201251 035 $a(CaONFJC)MIL505463 035 $a(OCoLC)879025085 035 $a(EXLCZ)991000000000407622 100 $a20020722d2002 uy 0 101 0 $aeng 135 $aur||||||||||| 181 $ctxt 182 $cc 183 $acr 200 10$aNonadiabatic transition$b[electronic resource] $econcepts, basic theories and applications /$fby Hiroki Nakamura 210 $aRiver Edge, NJ $cWorld Scientific$dc2002 215 $a1 online resource (xi, 376 p. ) $cill 300 $aBibliographic Level Mode of Issuance: Monograph 311 $a981-02-4719-2 320 $aIncludes bibliographical references (p. 361-370) and index. 327 $ach. 1. Introduction: what is "nonadiabatic transition"? -- ch. 2. Multi-disciplinarity. 2.1. Physics. 2.2. Chemistry. 2.3. Biology. 2.4. Economics -- ch. 3. Historical survey of theoretical studies. 3.1. Landau-Zener-Stueckelberg theory. 3.2. Rosen-Zener-Demkov theory. 3.3. Nikitin's exponential model. 3.4. Nonadiabatic transition due to Coriolis coupling and dynamical state representation -- ch. 4. Background mathematics. 4.1. Wentzel-Kramers-Brillouin semiclassical theory. 4.2. Stokes phenomenon -- ch. 5. Basic two-state theory for time-independent processes. 5.1. Exact solutions of the linear curve crossing problems. 5.2. Complete semiclassical solutions of general curve crossing problems. 5.3. Non-curve-crossing case. 5.4. Exponential potential model. 5.5. Mathematical implications -- ch. 6. Basic two-state theory for time-dependent processes. 6.1. Exact solution of quadratic potential problem. 6.2. Semiclassical solution in general case. 6.3. Other exactly solvable models -- ch. 7. Two-state problems. 7.1. Diagrammatic technique. 7.2. Inelastic scattering. 7.3. Elastic scattering with resonances and predissociation. 7.4. Perturbed bound states. 7.5. Time-dependent periodic crossing problems -- ch. 8. Effects of dissipation and fluctuation -- ch. 9. Multi-channel problems. 9.1. Exactly solvable models. 9.2. Semiclassical theory of time-independent multi-channel problems. 9.3. Time-dependent problems -- ch. 10. Multi-dimensional problems. 10.1. Classification of surface crossing. 10.2. Reduction to one-dimensional multi-channel problem. 10.3. Semiclassical propagation method -- ch. 11. Complete reflection and bound states in the continuum. 11.1. One NT-type crossing case. 11.2. Diabatically avoided crossing (DAC) case. 11.3. Two NT-type crossings case -- ch. 12. New mechanism of molecular switching. 12.1. Basic idea. 12.2. One-dimensional model. 12.3. Two-dimensional model. 12.4. Numerical examples -- ch. 13. Control of nonadiabatic processes by an external field. 13.1. Control of nonadiabatic transitions by periodically sweeping external field. 13.2. Basic theory. 13.3. Numerical examples. 13.4. Laser control of photodissociation with use of the complete reflection phenomenon -- ch. 14. Conclusions: future perspectives. 330 $aAn exploration of the concepts, basic theories and applications of nonadiabatic transition. Nonadiabatic transition is a multidisciplinary concept and phenomenon, constituting a fundamental mechanism of state and phase changes in various dynamical processes of physics, chemistry and biology. 330 $bNonadiabatic transition is a highly multidisciplinary concept and phenomenon, constituting a fundamental mechanism of state and phase changes in various dynamical processes of physics, chemistry and biology, such as molecular dynamics, energy relaxation, chemical reaction, and electron and proton transfer. Control of molecular processes by laser fields is also an example of time-dependent nonadiabatic transition. Thus, nonadiabatic transition represents one of the very basic mechanisms of the mutability of the world. This work has been written because the complete analytical solutions to the basic problem have recently been formulated by the author. 606 $aCharge exchange 606 $aPhase transformations (Statistical physics) 615 0$aCharge exchange. 615 0$aPhase transformations (Statistical physics) 676 $a530.4/74 700 $aNakamura$b Hiroki$01532839 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910784806703321 996 $aNonadiabatic transition$93779354 997 $aUNINA LEADER 01357nam 2200409 450 001 9910813056003321 005 20230807203032.0 010 $a3-7369-8085-X 035 $a(CKB)4340000000197762 035 $a(MiAaPQ)EBC5019790 035 $a(EXLCZ)994340000000197762 100 $a20170928h20152015 uy 0 101 0 $aeng 135 $aurcnu|||||||| 181 $2rdacontent 182 $2rdamedia 183 $2rdacarrier 200 10$aDevelopment of functionalized derivatives for the application in a novel bioorthogonal ligation strategy and for the design of IHF mimicking peptides /$fCornelia Hannah Panse 205 $a1. Auflage. 210 1$aGo?ttingen, [Germany] :$cCuvillier Verlag,$d2015. 210 4$dİ2015 215 $a1 online resource (281 pages) 311 $a3-7369-9085-5 320 $aIncludes bibliographical references. 606 $aProteins 606 $aProtein folding 615 0$aProteins. 615 0$aProtein folding. 676 $a547.75 700 $aPanse$b Cornelia Hannah$01593401 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910813056003321 996 $aDevelopment of functionalized derivatives for the application in a novel bioorthogonal ligation strategy and for the design of IHF mimicking peptides$93913509 997 $aUNINA LEADER 02136nam 22004813a 450 001 9910476767603321 005 20230822153830.0 010 $a9781789858648 010 $a178985864X 024 8 $ahttp://dx.doi.org/10.5772/intechopen.82587 035 $a(CKB)5490000000052518 035 $a(ScCtBLL)39e73843-4ab5-4327-a9d1-2356d1af018e 035 $a(oapen)https://directory.doabooks.org/handle/20.500.12854/33314 035 $a(MiAaPQ)EBC30390214 035 $a(Au-PeEL)EBL30390214 035 $a(Perlego)2026686 035 $a(oapen)doab33314 035 $a(EXLCZ)995490000000052518 100 $a20211214i20202020 uu 101 0 $aeng 135 $auru|||||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 00$aAdvances in Membrane Technologies$fAmira Abdelrasoul 205 $a1st ed. 210 $d2020 210 1$a[s.l.] :$cIntechOpen,$d2020. 215 $a1 online resource (1 p.) 330 $aMembrane technologies are currently the most effective and sustainable methods utilized in diversified water filtration, wastewater treatment, as well as industrial and sustainable energy applications. This book covers essential subsections of membrane separation and bioseparation processes from the perspectives of technical innovation, novelty, and sustainability. The book offers a comprehensive overview of the latest improvements and concerns with respect to membrane fouling remediation techniques, issues of bioincompatibility for biomedical applications, and various subareas of membrane separation processes, which will be an efficient resource for engineers. 606 $aTechnology & Engineering / Environmental / Waste Management$2bisacsh 606 $aTechnology 615 7$aTechnology & Engineering / Environmental / Waste Management 615 0$aTechnology. 676 $a628.164 700 $aAbdelrasoul$b Amira$4edt$01263130 702 $aAbdelrasoul$b Amira 801 0$bScCtBLL 801 1$bScCtBLL 906 $aBOOK 912 $a9910476767603321 996 $aAdvances in Membrane Technologies$93386891 997 $aUNINA