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1,196 results for “Minerals”
FIGURE 2 in Two new species of nematodes (Nematoda) from highly mineralized rivers of Lake El'ton basin, Russia
FIGURE 2. Mesodorylaimus rivalis sp. n. Holotype male and paratype female (microphotographs) A: Entire male; B: Entire female; C: Anterior body end of male; D: Anterior body end of female; E, F: Vulva region (arrows indicate position of papillae); G, H: Posterior body end of male; I, J: Posterior body end of female. (Scale bars: A, B = 250 µm; C, D, E, F = 10 µm; G, H, J = 50 µm; I = 20 µm).
FIGURE 1 in Two new species of nematodes (Nematoda) from highly mineralized rivers of Lake El'ton basin, Russia
FIGURE 1. Mesodorylaimus rivalis sp. n. Holotype male and paratype female. A: Entire male; B: Entire female; C: Male head; D: Vulva region; E: Posterior body end of male; F: Posterior body end of female. (Scale bars: A, B = 200 µm; C = 15 µm; D = 70 µm; E = 100 µm; F = 40 µm).
FIGURE 3 in Two new species of nematodes (Nematoda) from highly mineralized rivers of Lake El'ton basin, Russia
FIGURE 3. Allodiplogaster media sp. n. Holotype male and paratype female. A: Entire male; B: Entire female; C: Male head; D: Female head; E: Anterior body end of male; F: Male tail; G: Female tail. (Scale bars: A, B = 150 µm; C, D = 15 µm; E, G = 50 µm; F = 30 µm).
Compiled mineral uranium and thorium concentrations in serpentinites and iron oxides
<p>This dataset includes mineral (serpentine, carbonate, brucite, tremolite, perovskite, magnetite, hematite, goethite) uranium and thorium concentrations and the associated publication references.</p>
Data from: Biofertilizers from wastewater treatment as a potential source of mineral nutrients for growth of amaranth plants
<p>Exploring alternative fertilizers is crucial in agriculture due to the cost and environmental impact of inorganic options. This study investigated the potential of biofertilizers derived from sewage treatment on the growth and physiology of <em>Amaranthus cruentus</em> plants. Various treatments were compared, including control treatments with inorganic fertilizer and treatments with biofertilizers composed of microalgae, biosolids and reclaimed water. The following traits were investigated: photosynthetic pigments, gas exchange, growth, and leaf nutrient concentrations. Results show that the concentrations of N, P, Cu, Fe Zn and Na nutrients, in the dry microalgae and biosolids, were quite high for the needs of the plants. The wet microalgae presented high concentration of Cu, Fe and Zn nutrients while reclaimed water contained high concentration of N, K, Ca and S. Na and Zn nutrients increased in the leaf of plants treated with dry microalgae and biosolid, respectively. At the beginning of the flowering phase, total chlorophyll and carotenoids contents were lower for plants grown with wet microalgae while for plants grown with higher doses of biosolid or reclaimed water total chlorophyll was increased, and carotenoids were not affected. Lower photosynthetic pigments under wet microalgae resulted in lower photosynthetic rates. On the other hand, amendments with dry microalgae and biosolid increased photosynthetic rates with the biosolid being the most effective. Higher applications of biosolid, wet and dry microalgae produced a considerable increase in shoot biomass of amaranth, with the dry microalgae being the most effective. Additionally, reclaimed water obtained after tertiary treatment of sewage with microalgae and biosolids applied alone showed promising effects on plant growth. Overall, these findings suggest that organic fertilizers derived from sewage treatment have the potential to enhance plant growth and contribute to sustainable agricultural practices.</p>
Particulate and mineral-associated organic carbon storage
Open the record for dataset details and reuse information.
Supporting online material for Irradiation induced mineral changes of NWA10580 meteorite, Gyollai I. et al. 2024
<p>Online supporting material for the upcoming publication titled<span> Irradiation induced mineral changes of NWA10580 meteorite determined by infrared analysis by I. Gyollai et al. </span></p>
Translucent Event Logs based on the Sepsis Event Log and the Inductive Miner - infrequent
<p>The translucent events logs in this file are based on the Sepsis Event Log (https://data.4tu.nl/articles/dataset/Sepsis_Cases_-_Event_Log/12707639/1) published by Felix Mannhardt. The folders' name specify the threshold setting of the Inductive Miner - infrequent (0.4, 0.6, and 0.8). Details on the generation can be found in https://doi.org/10.1007/978-3-031-70396-6_9.</p>
Translucent Event Logs based on the Road Traffic Fine Management Event Log and the Inductive Miner - infrequent
<p>The translucent events logs in this file are based on the Road Traffic Fine Management Event Log (https://data.4tu.nl/articles/dataset/Road_Traffic_Fine_Management_Process/12683249) published by Massimiliano de Leoni and Felix Mannhardt. The folders' name specify the threshold setting of the Inductive Miner - infrequent (0.4, 0.6, and 0.8). Details on the generation can be found in https://doi.org/10.1007/978-3-031-70396-6_9.</p>
Alternative protein encapsulation with MOFs: overcoming the elusive mineralization of HKUST-1 in water
<p>Relevant data for publication with DOI: <a title="Link to landing page via DOI" href="https://doi.org/10.1039/D3CC04320G">10.1039/D3CC04320G</a></p>
Boosting Protein Encapsulation through Lewis-Acid-Mediated Metal–Organic Framework Mineralization: Toward Effective Intracellular Delivery
<p>Relevant data for publication with DOI:</p> <p><a title="DOI URL" href="https://doi.org/10.1021/acs.chemmater.2c01338">10.1021/acs.chemmater.2c01338</a></p>
Figures for Thesis: Viking Age Steatite in Sweden: Accessory Mineral Provenancing and the Biographical Approach
<p>These jpg images were created by the author as illustrations for the thesis. They are made available here, in their original file size, for readers of the thesis who would like to be able to zoom in to see details in one or more of the figures.</p>
Evento de Lançamento do Livro de Estudos Econômicos Setoriais: Indústria Extrativa Mineral, Petróleo e Gás, Comércio e Instituições de Ensino Superior
<p>Evento de Lançamento do Livro de Estudos Econômicos Setoriais: Indústria Extrativa Mineral, Petróleo e Gás, Comércio e Instituições de Ensino Superior na XIV edição da Semana de Ciência e Tecnologia realizada durante os dias 19 a 22 de outubro de 2021 na Universidade Presbiteriana Mackenzie.</p>
β-glucosidase activity data after interaction with different soil minerals
<p>β-glucosidase activity data after interaction with different soil minerals</p>
FIGURE 10 in Atacamaptilia ambrosiavora gen. et sp. nov. (Lepidoptera: Gracillariidae), a leaf miner of Ambrosia cumanensis (Asteraceae) in the Atacama Desert
FIGURE 10. Natural history Atacamaptilia ambrosiavora gen. et sp. nov. A. The host plant, Ambrosia cumanensis (Asteraceae) in a highly human-modified habitat in the type locality, the Azapa Valley, northern Chile. B–C. Mature leaf mines (white arrows) on the host plant, adaxial and abaxial, respectively. D. Young leaf mine (red arrow), square of C. E. Egg. F. Sap-feeding, dorsal. G. Tissue-feeding, laterodorsal. H. Tissue-feeding after color change previous to pupation, dorsal. Pupa, lateral. Scale bars 10, 10, 1, 0.1, 0.3, 1.4, 1.4 and 0.5 mm, respectively.
FIGURE 9 in Atacamaptilia ambrosiavora gen. et sp. nov. (Lepidoptera: Gracillariidae), a leaf miner of Ambrosia cumanensis (Asteraceae) in the Atacama Desert
FIGURE 9. Atacamaptilia ambrosiavora gen. et sp. nov., pupa. A–C. Ventral, dorsal and lateral. Scale bar 0.8 mm.
FIGURE 7 in Atacamaptilia ambrosiavora gen. et sp. nov. (Lepidoptera: Gracillariidae), a leaf miner of Ambrosia cumanensis (Asteraceae) in the Atacama Desert
FIGURE 7. Chaetotaxy of tissue-feeding Atacamaptilia ambrosiavora gen. et sp. nov. A. Head, frontal and lateral. B. Labrum, external and internal (epipharynx). C. Thorax and abdomen, lateral. Scale bars 0.01, 0.04 and 0.4 mm, respectively.
FIGURE 8 in Atacamaptilia ambrosiavora gen. et sp. nov. (Lepidoptera: Gracillariidae), a leaf miner of Ambrosia cumanensis (Asteraceae) in the Atacama Desert
FIGURE 8. Atacamaptilia ambrosiavora gen. et sp. nov., pupa scanning electron micrographs. A–C. Head, ventral, dorsal and lateral, respectively. D–E. Cocoon cutter, lateral and ventral, respectively. Frons and base of mouthparts, ventral. G. Mesothoracic seta, lateral. H. Spiracle A2, lateral. I Detail of transverse patch of spine-like projections of A3. J–K. Terminalia, dorsal and posterior, respectively. Spine of A10, square area of K. Scale bars 100, 100, 100, 10, 10, 50, 25, 10, 25, 50, 25, 10 and 5 μm, respectively.
FIGURE 5 in Atacamaptilia ambrosiavora gen. et sp. nov. (Lepidoptera: Gracillariidae), a leaf miner of Ambrosia cumanensis (Asteraceae) in the Atacama Desert
FIGURE 5. Scanning electron micrographs of tissue-feeding Atacamaptilia ambrosiavora gen. et sp. nov. A. Head, lateral. B. Head, dorsal. C. Head, ventral. D. Stemmata, lateral. E. Antenna, anterolateral. F. Labrum, frontal. G. Spinneret, anterolateral. H. Prothoracic leg, anterior. I. Tarsal claw, anterior. J. Abdominal ornamentation. K. Spiracle, A8, lateral. L. Crochets on proleg of A4, ventral. Anal shield and prolegs of A10, posterior. Scale bars 50, 50, 50, 10, 10, 10, 10, 25, 5, 5, 5, 10 and 50 μm, respectively.
FIGURE 6 in Atacamaptilia ambrosiavora gen. et sp. nov. (Lepidoptera: Gracillariidae), a leaf miner of Ambrosia cumanensis (Asteraceae) in the Atacama Desert
FIGURE 6. Chaetotaxy of sap-feeding Atacamaptilia ambrosiavora gen. et sp. nov. A. Head, frontal. B. Head, lateral. C. Larva, ventral. D. Larva, lateral. E. Larva, dorsal. Scale bars 0.1 and 0.2 mm, respectively.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
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.