LEADER 01122nam0-22004331i-450- 001 990000031360403321 005 20140926121933.0 035 $a000003136 035 $aFED01000003136 035 $a(Aleph)000003136FED01 035 $a000003136 100 $a20110202d1959----km-y0itay50------ba 101 0 $aeng 102 $aUS 105 $ay-------001yy 200 1 $aPlastic analysis of structures$fPhilip G. Hodge 210 $aNew York$cMcGraw-Hill$d1959 215 $aXIV, 364 p.$cill.$d24 cm 610 0 $aStrutture 610 0 $aDinamica 610 0 $aStress Waves. 610 0 $aVibrazioni 610 0 $aMeccanica 610 0 $aTeoria della plasticità 676 $a624.17 700 1$aHodge,$bPhilip Gibson$02364 801 0$aIT$bUNINA$gRICA$2UNIMARC 901 $aBK 912 $a990000031360403321 952 $a13 D 24 04$b23437$fFINBC 952 $a07 G-52$fDINSC 952 $a03 TP.0,22$b646$fIINTC 952 $a07 A-56$fDINSC 959 $aFINBC 959 $aDINSC 959 $aIINTC 959 $aDINSC 996 $aPlastic analysis of structures$9105650 997 $aUNINA LEADER 04000nam 2200961z- 450 001 9910566469703321 005 20220506 035 $a(CKB)5680000000037683 035 $a(oapen)https://directory.doabooks.org/handle/20.500.12854/81028 035 $a(oapen)doab81028 035 $a(oapen)81028 035 $a(EXLCZ)995680000000037683 100 $a20202205d2022 |y 0 101 0 $aeng 135 $aurmn|---annan 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aVisible Light Active Photocatalysts for Environmental Remediation and Organic Synthesis 210 $aBasel$cMDPI - Multidisciplinary Digital Publishing Institute$d2022 215 $a1 online resource (176 p.) 311 08$a3-0365-3648-5 311 08$a3-0365-3647-7 330 $aIn recent years, the formulation of innovative photocatalysts activated by visible or solar light has been attracting increasing attention because of their notable potential for environmental remediation and use in organic synthesis reactions. Generally, the strategies for the development of visible-light-active photocatalysts are mainly focused on enhancing degradation efficiency (in the case of environmental remediation) or increasing selectivity toward the desired product (in the case of organic synthesis). These goals can be achieved by doping the semiconductor lattice with metal and/or non-metal elements in order to reduce band gap energy, thereby providing the semiconductor with the ability to absorb light at a wavelength higher than the UV range. Other interesting options are the formulation of different types of heterojunctions (to increase visible absorption properties and to reduce the recombination rate of charge carriers) and the development of innovative catalytic materials with semiconducting properties. This reprint is focused on visible-light-active photocatalysts for environmental remediation and organic synthesis, featuring the state of the art as well as advances in this field. 606 $aHistory of engineering and technology$2bicssc 606 $aMaterials science$2bicssc 606 $aTechnology: general issues$2bicssc 610 $aacetaminophen 610 $aactivated carbon 610 $aAg/Cu2O 610 $aAg3PO4 610 $aazo dyes 610 $abacterial photoinactivation 610 $aBB41 dye 610 $abiomass 610 $aBox-Behnken design 610 $aC3N4 610 $acarbon composite nanofibers 610 $acobalt 610 $acomposite 610 $aCr(VI) reduction 610 $adecolorization 610 $adiamond nanocrystals 610 $aelectrospinning 610 $agreen chemistry 610 $aheterostructure 610 $ahydrophosphination 610 $aMoS2 610 $an/a 610 $ananocatalysis 610 $ananohybrid 610 $anitrobenzene 610 $aoptical properties 610 $aoxygen and argon gas flow rates 610 $apersulfate 610 $aphosphines 610 $aphotocatalysis 610 $aphotocatalyst 610 $aphotocatalytic activity 610 $aphotocatalytic oxidation 610 $aphotodegradation 610 $aRemazol Black 610 $aresponse surface method 610 $aRietveld method 610 $asillenite Bi12NiO19 610 $asulfate radical 610 $asulfur 610 $asunlight 610 $aTiO2 610 $aTiO2 thin film 610 $avisible light 610 $awaste 610 $awater pollution 610 $azirconium 615 7$aHistory of engineering and technology 615 7$aMaterials science 615 7$aTechnology: general issues 700 $aVaiano$b Vincenzo$4edt$0500487 702 $aVaiano$b Vincenzo$4oth 906 $aBOOK 912 $a9910566469703321 996 $aVisible Light Active Photocatalysts for Environmental Remediation and Organic Synthesis$93023573 997 $aUNINA