Search results for "SPACE"
showing 10 items of 21658 documents
CCDC 957913: Experimental Crystal Structure Determination
2014
Related Article: I. S. Morgan, A. Peuronen, M. M. Hanninen, R. Clerac, H. M. Tuononen|2014|Inorg.Chem.|53|33|doi:10.1021/ic402954p
CCDC 2121374: Experimental Crystal Structure Determination
2022
Related Article: Liāna Orola, Anatoly Mishnev, Dmitrijs Stepanovs, Agris Bērziņš|2022|ChemRxiv|||doi:10.26434/chemrxiv-2022-rb0xk
CCDC 2222724: Experimental Crystal Structure Determination
2022
Related Article: Lia̅na Orola, Anatoly Mishnev, Dmitrijs Stepanovs, Agris Be̅rziņš|2022|Cryst.Growth Des.|23|873|doi:10.1021/acs.cgd.2c01114
CCDC 922708: Experimental Crystal Structure Determination
2022
Related Article: Liāna Orola, Anatoly Mishnev, Dmitrijs Stepanovs, Agris Bērziņš|2022|ChemRxiv|||doi:10.26434/chemrxiv-2022-rb0xk
CCDC 922164: Experimental Crystal Structure Determination
2022
Related Article: Liāna Orola, Anatoly Mishnev, Dmitrijs Stepanovs, Agris Bērziņš|2022|ChemRxiv|||doi:10.26434/chemrxiv-2022-rb0xk
CCDC 1830058: Experimental Crystal Structure Determination
2019
Related Article: Jian Yang, Yoann Rousselin, Léo Bucher, Nicolas Desbois, Frédéric Bolze, Hai-Jun Xu, Claude P. Gros|2018|ChemPlusChem|83|838|doi:10.1002/cplu.201800361
CCDC 1411816: Experimental Crystal Structure Determination
2016
Related Article: Samvel N. Sirakanyan, Domenico Spinelli, Athina Geronikaki, Viktor G. Kartsev, Henrik A. Panosyan, Armen G. Ayvazyan, Rafael A. Tamazyan, Vincenzo Frenna, Anush A. Hovakimyan|2016|Tetrahedron|72|1919|doi:10.1016/j.tet.2016.02.048
Multitemporal unmixing of MERIS FR data
2007
CCDC 853880: Experimental Crystal Structure Determination
2012
Related Article: L.Kaufmann, E.V.Dzyuba, F.Malberg, N.L.Low, M.Groschke, B.Brusilowskij, J.Huuskonen, K.Rissanen, B.Kirchner, C.A.Schalley|2012|Org.Biomol.Chem.|10|5954|doi:10.1039/c2ob25196e
Compensation of Oxygen Transmittance Effects for Proximal Sensing Retrieval of Canopy–Leaving Sun–Induced Chlorophyll Fluorescence
2018
Estimates of Sun–Induced vegetation chlorophyll Fluorescence (SIF) using remote sensing techniques are commonly determined by exploiting solar and/or telluric absorption features. When SIF is retrieved in the strong oxygen (O 2 ) absorption features, atmospheric effects must always be compensated. Whereas correction of atmospheric effects is a standard airborne or satellite data processing step, there is no consensus regarding whether it is required for SIF proximal–sensing measurements nor what is the best strategy to be followed. Thus, by using simulated data, this work provides a comprehensive analysis about how atmospheric effects impact SIF estimations on proximal sensing, regarding: (…