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5,145 results for “CO₂”
Fig. 5 in A critically co-endangered feather louse Forficuloecus pezopori n. sp. (Phthiraptera: Philopteridae) detected through conservation intervention for the western ground parrot Pezoporus flaviventris (Psittaculidae)
Fig. 5. Forficuloecus pezopori Martin, Keatley & Ash n. sp., dorsal (left) and ventral perspective, A. female allotype posterior terminus with egg, B. female alloptype anterior dorsal plate, C. male holotype posterior terminus, D. male holotype terminal genitalia. Tergopleurites and sternopleurites labelled with Roman numerals. Abbreviations: a, basal apodeme; e, endomere; m, mesosomal plate; p, paramere; sgp, subgenital plate; svs, subvulvular sclerite; t, telomere. Scale bars: 200 μm.
Fig. 4 in A critically co-endangered feather louse Forficuloecus pezopori n. sp. (Phthiraptera: Philopteridae) detected through conservation intervention for the western ground parrot Pezoporus flaviventris (Psittaculidae)
Fig. 4. Forficuloecus pezopori Martin, Keatley & Ash n. sp. male holotype, ventral perspective, A. proleg, B. metaleg, C. mesoleg. Scale bar: 200 μm.
Fig. 1 in A critically co-endangered feather louse Forficuloecus pezopori n. sp. (Phthiraptera: Philopteridae) detected through conservation intervention for the western ground parrot Pezoporus flaviventris (Psittaculidae)
Fig. 1. Inferred phylogeny for species of Forficuloecus based on maximum likelihood analysis of COI mtDNA. Nodal support are from 400 bootstrap replicates. The scale-bar indicates the expected number of substitutions per site.
Fig. 3 in A critically co-endangered feather louse Forficuloecus pezopori n. sp. (Phthiraptera: Philopteridae) detected through conservation intervention for the western ground parrot Pezoporus flaviventris (Psittaculidae)
Fig. 3. Forficuloecus pezopori Martin, Keatley & Ash n. sp. head, female paratype, dorsal (left) and ventral perspective. Abbreviations: ads, anterodorsal seta; as, anterior seta; avs, anteroventral seta; dsms, dorsal submarginal seta; mts, marginal temple seta; os, ocular seta; pas, preantennal seta; pcs, preconal seta; pns, postnodal seta; pts, posterior temple seta; vsms, ventral submarginal seta. Scale bar: 200 μm.
Fig. 2 in A critically co-endangered feather louse Forficuloecus pezopori n. sp. (Phthiraptera: Philopteridae) detected through conservation intervention for the western ground parrot Pezoporus flaviventris (Psittaculidae)
Fig. 2. Forficuloecus pezopori Martin, Keatley & Ash n. sp. habitus, female allotype, dorsal (left) and ventral perspective. Some variably absent setae added from reference to paratypes. Tergites and sternites labelled with Roman numerals. Abreviations: ms, mesosternum; pn, pronotum; ps, prosternum; pt, pterothorax; ss, spiracular seta; sgp, subgenital plate. Scale bar: 250 μm.
Al-Co-Cu alloy - melt-spun ribbons and powder - SEM and TEM microstructure
<p>This set contains SEM and TEM images with EDS chemical composition data for Al-Co-Cu alloy in a melt-spun ribbon form, which was applied as a catalyst for the phenylacetylene hydrogenation reaction. </p> <p>The material preparation and microstructural analyses were performed at the Institute of Metallurgy and Materials Science of the Polish Academy of Sciences.</p> <p>The experimental procedure for material preparation, instrumentation, data collection and results analysis were described in the work: https://doi.org/10.1007/s43452-024-00904-x</p> <p> </p> <p>Preparation of materials: Amelia Zięba</p> <p>TEM images collection (FEI Tecnai G2, ThermoFisher Titan Themis G2 200 Probe Cs-Corrected): Amelia Zięba, Lidia Lityńska-Dobrzyńska</p> <p>SEM images acquisition (FEI E-SEM XL-30): Amelia Zięba</p> <p> </p> <p>Files description code:</p> <p>sem_rib_2000_1 - SEM BSE image of a melt-spun ribbon_magnification_image no</p> <p>sem_pwdr_1000_1 - SEM BSE image of pulverised melt-spun ribbons_magnification_image no</p> <p>sem_pwdr_ar_1000_1 - SEM BSE image of pulverised melt-spun ribbons recovered after use as a catalyst in the phenylacetylene hydrogenation reaction_magnification_image no</p> <p>tem_bf_1 - TEM bright field image of a melt-spun ribbon sample (FIB lamella)_image no</p> <p>tem_dyf_5 - selected area electron diffraction of a melt-spun ribbon sample - the number indicates a corresponding image number</p> <p>EDS-HAADF_img_1 - STEM image of a melt-spun ribbon sample (FIB lamella) with EDS corresponding maps and line analyses</p> <p>TEM_eds_point_analysis.txt - results of point analyses for EDS-HAADF_img_x series</p> <p>stem_pwdr_ar_1 - STEM images of powder recovered after reaction with EDS analysis results: eds_spec_stem_pwdr_ar_1</p> <p> </p> <p><em><strong>Acknowledgements</strong></em></p> <p><strong><em>The work was financially supported by the National Science Centre (NCN), Poland, project No. 2021/41/N/ST8/02533.</em></strong></p> <p> </p>
Fig. 5 in An Agricultural Detergent as Co-Adjuvant for Entomopathogenic Fungi and Chlorpyrifos to Control Pseudococcus viburni (Hemiptera: Pseudococcidae)
Fig. 5. Mortality (%) of Pseudococcus viburni females to (A) chlorpyrifos alone, and (B) mixed with a nonlethal concentration of TS-2035.
Fig. 4 in An Agricultural Detergent as Co-Adjuvant for Entomopathogenic Fungi and Chlorpyrifos to Control Pseudococcus viburni (Hemiptera: Pseudococcidae)
Fig. 4. Mycelium growth of (A-C) Beauveria bassiana, and (D-F) Metarhizium anisopliae on Pseudococcus viburni females at 24, 72, and 172 h afer exposure.
Fig. 3 in An Agricultural Detergent as Co-Adjuvant for Entomopathogenic Fungi and Chlorpyrifos to Control Pseudococcus viburni (Hemiptera: Pseudococcidae)
Fig. 3. Mortality (%) of Pseudococcus viburni females to (A) Metarhizium anisopliae alone, and (B) mixed with a nonlethal concentration of TS-2035.
Fig. 1 in An Agricultural Detergent as Co-Adjuvant for Entomopathogenic Fungi and Chlorpyrifos to Control Pseudococcus viburni (Hemiptera: Pseudococcidae)
Fig. 1. Mortality (%) of Pseudococcus viburni females afer exposure to several concentrations of TS-2035.
Fig. 2 in An Agricultural Detergent as Co-Adjuvant for Entomopathogenic Fungi and Chlorpyrifos to Control Pseudococcus viburni (Hemiptera: Pseudococcidae)
Fig. 2. Mortality (%) of Pseudococcus viburni females to (A) Beauveria bassiana alone, and (B) mixed with a nonlethal concentration of TS-2035.
EBEC-MicroED: Static electron diffraction movies collected at different incident flux on a direct electron detector (DE Apollo) on crystals of (S,S) Jacobsen's salen ligand and Co(II) porphyrin, and diffraction tilt series recorded on the DE Apollo and CetaD detector for the same crystals of Jacobsen's Ligand
<p>This record contains static diffraction movies recorded from crystals of (S,S) Jacobsen's salen ligand, and crystals of Co(II) meso-tetraphenyl porphyrin, using a direct electron detector (DE Apollo) in counting mode. Data were acquired at varying different incident flux settings, referred to as "spotsize11" or "spot11" (0.01 electrons per square Angstoms per second), "spotsize10" or "spot10" (0.03 electrons per square Angstrom per second), "spotsize9" or "spot9" (0.045 electrons per square angstrom per second)", and "spotsize8" or "spot8" (0.084 electrons per sqaure Angstrom per second. For each compound these trials, the same crystal ("crystal1", "crystal2", etc.) was conserved across a dose series, and illuminated at each incident flux from lowest to highest in sequence.</p> <p>Additionally, this record contains diffraction tilt series acquired from crystals of (S,S) Jacobsen's ligand, first on the Ceta D and next on the DE Apollo, rotating at 2 degrees per second with an incident flux of either 0.01 or 0.045 electrons per square Angstrom per second.</p> <p>All data is saved in mrc file format, with the exception of movies from the Ceta D, which are saved in ser file format.</p>
Supplementary material for Shivaei & Boogaard (2024): The tight correlation of PAH and CO emission from z~0-4
<p>Supplementary figure for the paper Shivaei & Boogaard (2024). The figure includes the UV-to-IR full SED fits to HST, JWST/NIRCam and MIRI, Herschel/PACS, and ALMA Bands 6 and 3 photometry of the ASPECS CO sample presented in Table 2 of the paper. An example SED is shown in Figure 1 of Shivaei & Boogaard (2024) with a full caption.</p> <div> <p> </p> </div>
Fossil Fuel CO₂ Emissions for the OCO2 Model Intercomparison Project (MIP)
<p>These are fossil CO<sub>2</sub> fluxes updated through August 2024 for atmospheric CO<sub>2</sub> modeling. They were constructed primarily to be used for the OCO2 Model Intercomparison Project (MIP).</p> <ul> <li>For 2000-2022, they're based on <a href="https://db.cger.nies.go.jp/dataset/ODIAC/DL_odiac2023.html">ODIAC 2023</a>, which in turn uses BP's energy use statistics for 2021 and 2022.</li> <li>ODIAC monthly emissions have been disaggregated to hourly using the TIMES emission factors for day of week and time of day (<a href="https://urldefense.us/v3/__https://agupubs.onlinelibrary.wiley.com/doi/full/10.1029/2012JD018196__;!!PvBDto6Hs4WbVuu7!YsQP_T-Vf3Fv83toql-90HY0NO5e92fR0D9kAi10tTzUd0Ugum9d3CTUMBp22qA0M-vYoU_fvd4$">https://agupubs.onlinelibrary.wiley.com/doi/full/10.1029/2012JD018196</a>).</li> <li>For 2023 onwards, ODIAC's 2022 emissions have been scaled by the ratio of that month to 2022 emissions reported by <a href="https://www.nature.com/articles/s41597-020-00708-7">Carbon Monitor</a>, downloaded on October 15, 2024 from <a href="https://carbonmonitor.org">https://carbonmonitor.org/</a>. <ul> <li>ODIAC does not have sectoral decomposition to the degree provided by Carbon Monitor, so total ODIAC emissions for each region have been scaled by the total emission change between 2022 and each extended year reported by Carbon Monitor, i.e., power, ground transport, etc. have <strong>not</strong> been separately scaled.</li> <li>Carbon Monitor data are daily, but ODIAC emissions are monthly. So Carbon Monitor data have been aggregated to monthly totals before deriving scaling factors between 2022 and the extended years.</li> <li>Carbon Monitor reports international aviation emissions by country of origin, while ODIAC reports aviation emissions on a grid. Since there is no way to derive the points of emission for Carbon Monitor aviation emissions , all Carbon Monitor international aviation was aggregated to create a single number for each month, then that number was used to scale ODIAC's bunker fuel for each month in 2023-2024.</li> <li>CarbonMonitor data used for deriving 2023 and later emissions are now included in this dataset for convenience as netcdf files (converted from original CSV files).</li> </ul> </li> <li>Hourly global totals are given in the files as a check, in case you want to verify your units and file reading.</li> </ul> <p>These files can be downloaded from the browser, or from the command line following guides such as <a href="https://ict.ipbes.net/ipbes-ict-guide/data-and-knowledge-management/technical-guidelines/zenodo#b.-programmatically-using-r" target="_blank" rel="noopener">this</a>.</p>
Linked collectors and determiners for: First Velarifictorus (Orthoptera: Gryllidae, Gryllinae) cricket described from Borneo (Southeast Asia) and notes on a co-occurring congener.
Natural history specimen data linked to collectors and determiners held within, "First Velarifictorus (Orthoptera: Gryllidae, Gryllinae) cricket described from Borneo (Southeast Asia) and notes on a co-occurring congener". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/cf4799e8-030b-43a6-a445-5953b29b98d3">https://bionomia.net/dataset/cf4799e8-030b-43a6-a445-5953b29b98d3</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/cf4799e8-030b-43a6-a445-5953b29b98d3">https://gbif.org/dataset/cf4799e8-030b-43a6-a445-5953b29b98d3</a>. Formatted as a Frictionless Data package.
Linked collectors and determiners for: Validation of the status of a species with high CO 1 and low nuclear genetic divergences: the scab mite Caparinia ictonyctis stat. res. (Acariformes: Psoroptidae) parasitizing the African hedgehog Atelerix albiventris.
Natural history specimen data linked to collectors and determiners held within, "Validation of the status of a species with high CO 1 and low nuclear genetic divergences: the scab mite Caparinia ictonyctis stat. res. (Acariformes: Psoroptidae) parasitizing the African hedgehog Atelerix albiventris". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/3f253e3e-777e-465d-841d-a67e3b645d1a">https://bionomia.net/dataset/3f253e3e-777e-465d-841d-a67e3b645d1a</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/3f253e3e-777e-465d-841d-a67e3b645d1a">https://gbif.org/dataset/3f253e3e-777e-465d-841d-a67e3b645d1a</a>. Formatted as a Frictionless Data package.
Linked collectors and determiners for: UT-CO Freshwater Mollusks Survey.
Natural history specimen data linked to collectors and determiners held within, "UT-CO Freshwater Mollusks Survey". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/63f086f6-1ce8-4338-a25d-7d298cfa2789">https://bionomia.net/dataset/63f086f6-1ce8-4338-a25d-7d298cfa2789</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/63f086f6-1ce8-4338-a25d-7d298cfa2789">https://gbif.org/dataset/63f086f6-1ce8-4338-a25d-7d298cfa2789</a>. Formatted as a Frictionless Data package.
Experimental dataset for Browning et al. "Nutrient co-limitation in the subtropical Northwest Pacific"
<p>Experimental dataset for Browning et al. "Nutrient co-limitation in the subtropical Northwest Pacific". Limnology and Oceanography Letters (2021).</p>
Dataset for article: Co-evolutionary landscape at the interface and non-interface regions of protein-protein interaction complexes
<p>Proteins involved in interactions throughout the course of evolution tend to co-evolve and compensatory changes may occur in interacting proteins to maintain or refine such interactions. However, certain residue pair alterations may prove to be detrimental for functional interactions. Hence, determining co-evolutionary pairings that could be structurally or functionally relevant for maintaining the conservation of an inter-protein interaction is important. Inter-protein co-evolution analysis in several complexes utilizing multiple existing methodologies suggested that co-evolutionary pairings can occur in spatially proximal and distant regions in inter-protein interactions. Subsequently, the Co-Var (<b>Co</b>rrelated <b>Var</b>iation) method based on mutual information and Bhattacharyya coefficient was developed, validated, and found to perform relatively better than CAPS and EV-complex. Interestingly, while applying the Co-Var measure and EV-complex program on a set of protein-protein interaction complexes, co-evolutionary pairings were obtained in interface and non-interface regions in protein complexes. The Co-Var approach involves determining high degree co-evolutionary pairings that include multiple co-evolutionary connections between particular co-evolved residue positions in one protein with multiple residue positions in the binding partner. Detailed analyses of high degree co-evolutionary pairings in protein-protein complexes involved in cancer metastasis suggested that most of the residue positions forming such co-evolutionary connections mainly occurred within functional domains of constituent proteins and substitution mutations were also common among these positions. The physiological relevance of these predictions suggests that Co-Var can predict residues that could be crucial for preserving functional protein-protein interactions. Finally, <b>Co-Var </b>web server (<a href="http://www.hpppi.iicb.res.in/ishi/covar/index.html">http://www.hpppi.iicb.res.in/ishi/covar/index.html</a>) that implements this methodology identifies co-evolutionary pairings in intra and inter-protein interactions.</p>
Mobile co-manipulation data
<p>Data acquired during large part co-manipulation processes. Specifically, trajectory percentage and trajectory deviation.</p> <p>Notation of files (i.e. "u2_AB_500.csv"):</p> <ul> <li><strong>User:</strong> u2 would be the second subject of the experiment.</li> <li><strong>Path:</strong> Two options, AB (station A to station B) and BA (station B to A).</li> <li><strong>Maximum allowed distance:</strong> Value which defined the width of the lane.</li> </ul>
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.