Search results for "METHANE"

showing 10 items of 1763 documents

CCDC 1985141: Experimental Crystal Structure Determination

2020

Related Article: Adrien T. Normand, E. Daiann Sosa Carrizo, Corentin Magnoux, Esteban Lobato, Hélène Cattey, Philippe Richard, Stéphane Brandès, Charles H. Devillers, Anthony Romieu, Pierre Le Gendre, Paul Fleurat-Lessard|2021|Chemical Science|12|253|doi:10.1039/D0SC04736H

trichloro-(1133-tetraphenyl-13-bis(phenylimino)-13-triphosphan-2-yl)-zirconium(iv) dichloromethane solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1873282: Experimental Crystal Structure Determination

2018

Related Article: Maciej Bujak, Hans-Georg Stammler, Sebastian Blomeyer, Norbert W. Mitzel|2019|Chem.Commun.|55|175|doi:10.1039/C8CC08980A

trifluoro(iodo)methaneSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 189163: Experimental Crystal Structure Determination

2002

Related Article: C.Boskovic, A.Sieber, G.Chaboussant, H.U.Gudel, J.Ensling, W.Wernsdorfer, A.Neels, G.Labat, H.Stoeckli-Evans, S.Janssen|2004|Inorg.Chem.|43|5053|doi:10.1021/ic049600f

tris((mu~2~-Acetato)-(mu~2~-N-(2-hydroxyethyl)salicylidenealdiminato)-iron(iii)) dichloromethane solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 996582: Experimental Crystal Structure Determination

2014

Related Article: Matteo Atzori, Flavia Pop, Pascale Auban-Senzier, Carlos J. Gómez-García , Enric Canadell, Flavia Artizzu, Angela Serpe, Paola Deplano, Narcis Avarvari, and Maria Laura Mercuri|2014|Inorg.Chem.|53|7028|doi:10.1021/ic501001r

tris(2-(56-Dihydro[13]dithiolo[45-b][14]dithiin-2-ylidene)-56-dihydro[13]dithiolo[45-b][14]dithiin-1-ium) tris(36-dichloro-45-dioxocyclohexa-26-diene-12-diolato)-iron(iii) dichloromethane solvate monohydrateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 268245: Experimental Crystal Structure Determination

2005

Related Article: V.Rudzevich, D.Schollmeyer, D.Braekers, J.F.Desreux, R.Diss, G.Wipff, V.Bohmer|2005|J.Org.Chem.|70|6027|doi:10.1021/jo050717a

tris(2-allyloxy-5-nitrophenyl)methaneSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1551425: Experimental Crystal Structure Determination

2018

Related Article: Eleni C. Mazarakioti, Sofia Tzani, Vassilis Psycharis, Michael Pissas, Yiannis Sanakis, Catherine P. Raptopoulou|2017|Curr.Inorg.Chem.|7|66|doi:10.2174/1877944107666170914113838

tris(mu-1-[{[1-hydroxy-2-(hydroxymethyl)-3-oxidopropan-2-yl]imino}methyl]naphthalen-2-olato)-tris(mu-benzoato)-tri-iron(iii) dichloromethane solvate hydrateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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Benthic foodweb structure in a large shallow lake studied by stable isotope analysis

2014

The benthic foodweb structure of Lake Võrtsjärv, a large (270 km2), shallow, and turbid Estonian lake, was evaluated based on C and N stable-isotope signatures (δ13C, δ15N). Variation in δ13C between sampling sites was not related to site proximity to the littoral zone or the more vegetated southern part of the lake, but rather appeared to be influenced by in-situ site peculiarities. δ13C was stable temporally and between functional feeding groups, a result implying that the whole benthic food web of the lake relies largely on the same C source admixture, essentially particulate organic matter (POM). Thus, the foodweb composition of Lake Võrtsjärv is remarkably homogeneous given the lake’s …

trophic levelsEcologyδ13CEcologyta1172macroinvertebratesδ15Nbenthic food websAquatic ScienceFood webOceanographyBenthic zonemethane-oxidizing bacteriacarbon sourceLittoral zoneEnvironmental sciencecarbon and nitrogen stable isotopesLake VõrtsjärvEcology Evolution Behavior and SystematicsIsotope analysisInvertebrateTrophic levelFreshwater Science
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Evaluation of biogas production and usage potential

2016

The aim of the research is the development of theoretical and methodical bases for determining the feasibility of plant raw materials growing for its further bioconversion into energy resources and tec hnological materials to maximize profit from business activities. Monograph, statistics, modelling and abstract logical methods have been used during the research. Directions of biogas usage have been examined. Biogas yields from different crops have been analyzed. It has been determined that high methane yields can be provided from root crops, grain crops, and several green forage plants. So, forage beet and maize can provide more than 5,500 m3 of biogas per hectare. Attention is paid to the…

upgrading of biogasobjective functionefficiencymethaneenergy resourcesbiogascropbiogas planteconomic and mathematical modelmotor fuelEcological Chemistry and Engineering. S = Chemia i Inżynieria Ekologiczna. S
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Biogas production from high-yielding energy crops in boreal conditions

2013

uusiutuvat energialähteetmaissigrassbiokaasumetaanintuottopotentiaalimaizeyieldmetaanikuiva-ainesatobiogas productionkaasuntuotantonovel energy cropsnurmikasvitsatoco-digestionspecific methane yieldenergiakasvitenergiatase
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Towards a new protocol for field measurements of greenhouse gases from wastewater treatment plant

2016

Emissions into the atmosphere of greenhouse gases (GHGs), i.e., carbon dioxide, methane and nitrous oxide from wastewater treatment plants are of increasing concern in the water industry. In order to produce useful and comparable information for monitoring, assessing and reporting GHG emissions from wastewater treatment plants, there is a crescent need for a general accepted methodology. This paper aims at proposing the first protocol for monitoring and accounting GHG emissions from wastewater treatment plants taking into account both direct and internal indirect emissions focusing on sections known to be major responsible of GHG emissions i.e. oxidation tanks and sludge digestion. The main…

wastewater treatmentnitrous oxideSettore ICAR/03 - Ingegneria Sanitaria-Ambientalewastewater treatment; greenhouse gases; nitrous oxide; methane; off-gasmethaneoff-gasgreenhouse gase
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