Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
834
datasets available to search
ShareScore release 0.9.0
Dataset results
834 results for “split”
Split-beam echosounder data from keel-mounted EK60 during PolarFront 2022-05 cruise
<p>Cruise report:</p> <blockquote>Hull-mounted EK60 The keel-mounted Simrad EK60® split-beam echosounder continuously recorded hydroacoustic data at 18, 38, and 120 kHz. The ping rate was set to 1.5 seconds and pulse length to 1,024 µs. The echosounder was calibrated annually using the standard sphere method (Demer et al., 2015). A Seabird 911 Plus CTD® recorded temperature and conductivity regularly throughout the transects from which we could derive profiles of temperature and salinity, sound speed (Mackenzie, 1981), and the coefficient of absorption at each frequency (François and Garrison, 1982).</blockquote>
Ultra-stable self-standing Au nanowires/TiO2 nanoporous membrane system for high-performance photoelectrochemical water splitting cells - Dataset
<p>Dataset of results presented in <em><strong>Mater. Horiz.</strong></em>, 2022,<strong>9</strong>, 2797-2808: Ultra-stable self-standing Au nanowires/TiO<sub>2</sub> nanoporous membrane system for high-performance photoelectrochemical water splitting cells.</p> <p>E. W. would like to acknowledge Alexander von Humboldt Foundation, Bonn, Germany, for funding the postdoctoral fellowship, and the Polish National Agency For Academic Exchange, Polish Returns Programme (Project no. BPN/PPO/ 2021/1/00002), and the National Science Centre, Poland (Project no. 2022/01/1/ST5/00019) for financial support of the project. G. S. would like to acknowledge the National Science Centre, Poland (Project no. 2016/23/B/ST5/00790). The authors thank C. Erdmann for performing the transmission electron microscopy measurements.</p>
Describing ion transport and water splitting in an electrodialysis stack with bipolar membranes by a 2-D model: Experimental validation
<p>Electrodialysis with bipolar membranes (EDBM) has drawn attention motivated by their application in gener- ating reagents from salts. Due to the water splitting (WS) occurring at the junction of the bipolar membranes (BPMs), where the anion and cation layers are in strict contact, H+ and OH- are released from the BPM producing acid and alkali on the respective compartment. Considering this application, the interest of this work is to provide further understanding of the mechanisms of WS and transport of species in EDBM. This work develops and utilizes, for the first time, an experimentally validated two-dimensional (2-D) computational model, in which the Navier-Stokes and Nernst-Planck equations are coupled with the description of WS given by the Second Wien effect. In addition, a 1-D geometry is also proposed to perform a comparison between electroneutrality and Poisson charge conservation. The model is computationally solved using COMSOL Multiphysics. According to simulations, electroneutrality is valid for 2-D geometries. Moreover, the semipermeable characteristics of the membranes are assessed by means of evidencing a polarization effect resulting in a double-electric layer. The model proposed predicts a significant proton leakage, and facilitates the study of WS within the BPMs.</p>
FIGURE 16 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 16 Uropod: A. Iberobathynella andalusica; B. I. burgalensis; C. I. cornejoensis; D. I. lamasonensis; E. I. pedroi; F. Texanobathynella bowmani; G. I. paragracilipes; H. Guadalopebathynella puchi; I. Paraiberobathynella notenboomi; J. Hexaiberobathynella mateusi; K. Californibathynella californica; L. Montanabathynella pecosensis; M. Parabathynella motasi.
FIGURE 15 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 15 Male Th VIII: A. Iberobathynella burgalensis; B. I. lamasonensis; C. I. cornejoensis; D. I. andalusica; E. I. pedroi; F. Californibathynella californica; G. I. paragracilipes; H. Hexaiberobathynella hortezuelensis; I. Paraiberobathynella notenboomi; J. Guadalopebathynella puchi; K. Texanobathynella bowmani. L. Montanabathynella pecosensis; M. Parabathynella motasi. Abbreviations: Bsp, basipod; D.lb, dentate lobe; Endp, endopod; Exp, exopod; I.lb, inner lobe; O.lb, outer lobe.
FIGURE 13 Thoracopod I in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 13 Thoracopod I: A. Iberobathynella lamasonensis; B. I. cornejoensis; C. Iberobathynella burgalensis; D. I. andalusica; E. I. paragracilipes; F. Hexaiberobathynella hortezuelensis; G. Paraiberobathynella notenboomi; H. I. pedroi; I. Guadalopebathynella puchi; J. Californibathynella californica; K. Texanobathynella aaronswinki; L. Montanabathynella pecosensis; M. Parabathynella motasi.
FIGURE 12 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 12 Maxilla (MxII): A. Iberobathynella burgalensis; B. I. cornejoensis; C. I. lamasonensis; D. I. andalusica; E. I. paragracilipes; F. Hexaiberobathynella hortezuelensis; G. Paraiberobathynella notenboomi; H. Guadalopebathynella puchi; I. Californibathynella californica; J. Texanobathynella aaronswinki; K. Montanabathynella pecosensis; L. Parabathynella motasi.
FIGURE 10 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 10 Mandible (Md): A. Iberobathynella cornejoensis; B. I. lamasonensis; E. I. pedroi; D. I. andalusica; E. I. burgalensis; F. I. paragracilipes; G. Paraiberobathynella notenboomi; H. Hexaiberobathynella hortezuelensis; I. Guadalopebathynella puchi; J. Californibathynella californica; K. Texanobathynella bowmani; L. Texanobathynella aaronswinki; M. Montanabathynella pecosensis; N. Parabathynella motasi.
FIGURE 9 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 9 Antenna (AII) A-L: A. Iberobathynella lamasonensis; B. I. burgalensis; C. I. andalusica; D. I. paragracilipes; E. Guadalopebathynella puchi; F. Californibathynella californica; G. Hexaiberobathynella hortezuelensis; H. Paraiberobathynella notenboomi; I. Texanobathynella aaronswinki; J. I. pedroi; K. Montanabathynella pecosensis; L. Parabathynella motasi. Labrum M-X: M. I. burgalensis; N. I. andalusica; O. I. cornejoensis; P. I. pedroi; Q. I. paragracilipes; R. Hexaiberobathynella hortezuelensis; S. Guadalopebathynella puchi; T. Californibathynella californica; U. Paraiberobathynella notenboomi; V. Texanobathynella aaronswinki; W. Montanabathynella pecosensis; X. Parabathynella motasi.
FIGURE 7 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 7 Ancestral State Reconstruction of: (A) Number of segments of AII (Ch.28); (B) Number of segments of exopod of ThII-III (Ch. 12) and (C) Number of segments of exopod of ThI (Ch. 9). Support for each node is provided by the size of circles indicating the posterior probabilities (PP). Coloured box depicted the state of the character.
FIGURE 8 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 8 Ancestral State Reconstruction of (A) Cuticle of female Th VIII (Ch.16) and (B) Number of segments female ThVIII. Support for each node is provided by the size of circles indicating the posterior probabilities (PP). Coloured box depicted the state of the character.
FIGURE 6 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 6 Phylogenetic tree from the combined analyses (morphological and molecular dataset). Support for each node is provided by the posterior probabilities (PP).
FIGURE 5 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 5 Bayesian phylogenetic tree based on the morphological dataset. Support for each node is provided by the posterior probabilities (PP).
FIGURE 4 Temporal estimates derived from a in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 4 Temporal estimates derived from a relaxed molecular clock analysis. Divergence times are depicted in the coalescence-based MCC tree. Units of X-axis address Mya and blue bars at nodes indicate the 95% highest posterior density intervals (HPD).
FIGURE 3 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 3 Bayesian phylogenetic tree based on COI sequences (507 bp) of Parabathynellidae species. Support for each node is provided by the posterior probabilities (PP) and ultrafast bootstrap support values (uBS) with black and grey boxes.
FIGURE 2 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 2 Bayesian phylogenetic tree based on the concatenated dataset [COI and 18S (2209 bp)] of Parabathynellidae species. Support for each node is provided by the posterior probabilities (PP) and ultrafast bootstrap support values (uBS) with black and grey boxes. Habitat: C = cave; R = river; S = spring; W = well. Spain provinces: BI = Vizcaya; BU = Burgos; CO = Córdoba; LU = Lugo; MA = Málaga; Ma: Morocco; MU = Murcia; O = Asturias; S = Cantabria; SE = Sevilla. Tx = Texas. SI = Slovenia.
FIGURE 17 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 17 Furcal rami: A. Iberobathynella cornejoensis; B. I. lamasonensis; C. I. andalusica; D. I. burgalensis; E. I. paragracilipes; F. I. pedroi; G. Guadalopebathynella puchi; H. Hexaiberobathynella mateusi; I. Paraiberobathynella notenboomi; J. Californibathynella californica; K. Texanobathynella bowmani; L. T. aaronswinki; M. Montanabathynella pecosensis; N. Parabathynella motasi.
FIGURE 14 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 14 Female Th VIII: A. Iberobathynella asturiensis; B. I. parasturiensis; C. I. cavadoensis; D. I. ortizi; E. I. rouchi; F. I. imuniensis; G. I. serbani; H. I. guarenensis; I. I. lamasonensis; J. I. cornejoensis; K. I. pedroi; L. I. espaniensis; M. I. cantabriensis; N. I. magna; O. I. burgalensis; P. I. andalusica; Q. I. paragracilipes; R. I. lusitanica; S. I. valbonensis; T. I. barcelensis; U. Hexaiberobathynella hortezuelensis; V. Hi. mateusi; W.Guadalopebathynella puchi; X. Californibathynella californica; Y. Paraiberobathynella fagei; Z. P. notenboomi; AA. Texanobathynella sachi; BB. Texanobathynella aaronswinki; CC. Montanabathynella salish; DD. M. pecosensis; EE. Parabathynella motasi.
FIGURE 1 in Split distribution, biogeography and morphological and genetic diversity of the Iberobathynellini Tribe in the family Parabathynellidae (Crustacea, Malacostraca, Bathynellacea)
FIGURE 1 World distribution map of species and populations of the "Iberobathynellini tribe" and those of Montanabathynella and Parabathynella.
Fig. 5. Split support spectrum for the 18S in Reconstruction of Evolutionary History of Pleurostomatid Ciliates (Ciliophora, Litostomatea, Haptoria): Interplay of Morphology and Molecules
Fig. 5. Split support spectrum for the 18S rRNA gene alignment used to construct the phylogenetic network in Fig. 4. Column height represents the number of clade-supporting positions, i.e., putative primary homologies. Column parts above the y-axis represent the in-group partition, while those below the axis correspond to the out-group partition.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.