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89 results for “chlorine”

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zenodo32/100

Occurrence data on chlorinated paraffins in feed and food

<p>This Annex is an excel file which presents tables on chlorinated paraffins on&nbsp;occurrence data in food and dietary exposure assessment for humans.</p>

opencc-by-4.0Mar 2020View details →
zenodo32/100

Data for: Torii et al., Influence of amino acid substitutions in capsid proteins of coxsackievirus B5 on free chlorine and thermal inactivation

<p>This folder contains the experimental data for the figures shown in the main manuscript.</p>

opencc-by-4.0Nov 2023View details →
zenodo32/100

Dataset and model codes for "Large daytime molecular chlorine missing source at a suburban site in East China"

<p>This dataset is for measurements of trace gases (Cl<sub>2</sub>, ClNO<sub>2</sub>, N<sub>2</sub>O<sub>5</sub>, HONO, NO<sub>2</sub>, NO, O<sub>3</sub>, NH<sub>3</sub>, SO<sub>2</sub>, CO, VOCs), aerosols (Cl<sup>&minus;</sup>, NO<sub>3</sub><sup>&minus;</sup>, SO<sub>4</sub><sup>2&minus;</sup>, NH<sub>4</sub><sup>+</sup>, organics), and meteorological parameters (<em>T</em>, RH, <em>j</em><sub>NO2</sub>) at a suburban site (32.12&deg;N, 118.95&deg;E) in Nanjing, China during April 13-20, 2018.</p>

opencc-by-4.0Jan 2022View details →
zenodo32/100

Source data for the paper A laser-assisted chlorination process for reversible writing of doping patterns in graphene

<p>Source Data supporting the plots within the&nbsp;paper &quot;A laser-assisted chlorination process for reversible writing of doping patterns in graphene.&quot;&nbsp;</p> <p>Including Source Data for Figures 1-4 in the main text, and Supplementary Figures&nbsp;S1, S3-12, S14, S17.&nbsp;</p>

opencc-by-4.0Jun 2022View details →
zenodo32/100

Source data for the paper A laser-assisted chlorination process for reversible writing of doping patterns in graphene

<p>Source Data supporting the plots within the&nbsp;paper &quot;A laser-assisted chlorination process for reversible writing of doping patterns in graphene.&quot;&nbsp;</p> <p>Including Source Data for Figures 1-4 in the main text, and Supplementary Figures&nbsp;S1, S3-12, S14, S17.&nbsp;</p>

opencc-by-4.0Jun 2022View details →
zenodo32/100

Source data for the paper "A laser-assisted chlorination process for reversible writing of doping patterns in graphene"

<p>Source Data supporting the plots within the&nbsp;paper &quot;A laser-assisted chlorination process for reversible writing of doping patterns in graphene.&quot;&nbsp;</p> <p>Including Source Data for Figures 1-4 in the main text, and Supplementary Figures&nbsp;S1, S3-12, S14, S17.&nbsp;</p>

opencc-by-4.0Jun 2022View details →
zenodo32/100

Computational data for "Measurement of Coherent Vibrational Dynamics with X-ray Transient Absorption Spectroscopy Simultaneously at the Carbon K- and Chlorine L$_{2,3}$- Edges"

<p>Contains:<br><br>1. Code for and results from, time-dependent Schroedinger equation simulations for the molecular normal modes under strong electric fields inducing impulsive stimulated Raman processes.</p> <p>2. Molecular orbitals obtained from ROKS calculations for the C 1s and Cl 2p excited states (with spin-free one-electron X2C).&nbsp;</p>

opencc-by-4.0May 2024View details →
zenodo32/100

Table 1 in The grass root endophytic fungus Flavomyces fulophazii: An abundant source of tetramic acid and chlorinated azaphilone derivatives

<p><b>Table 1</b> Details of Flavomyces fulophazii isolates included in this study.</p><table><tbody><tr><th>Isolate No. in this study</th><th>Other strain/isolate/culture names</th><th>Collection area</th><th>Collection date</th><th>Host plant</th><th>ITS GenBank accession No.</th><th>Publication</th></tr></tbody><tbody><tr><th>HF-1</th><td>flavo_01</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>April 2014</td><td><i>Festuca vaginata</i></td><td>MW438310</td><td>This study</td></tr><tr><th>HF-2</th><td>flavo_04</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>April 2014</td><td><i>Festuca vaginata</i></td><td>MW438311</td><td>This study</td></tr><tr><th>HF-3</th><td>flavo_05</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>April 2014</td><td><i>Festuca vaginata</i></td><td>MW438312</td><td>This study</td></tr><tr><th>HF-4</th><td>flavo_06</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>April 2014</td><td><i>Festuca vaginata</i></td><td>MW438313</td><td>This study</td></tr><tr><th>HF-5</th><td>flavo_08</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>April 2014</td><td><i>Festuca vaginata</i></td><td>MW438314</td><td>This study</td></tr><tr><th>HF-6</th><td>flavo_09</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>April 2014</td><td><i>Festuca vaginata</i></td><td>MW438315</td><td>This study</td></tr><tr><th>HF-7</th><td>flavo_11</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>April 2014</td><td><i>Festuca vaginata</i></td><td>MW438316</td><td>This study</td></tr><tr><th>HF-8</th><td>flavo_13</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>April 2014</td><td><i>Festuca vaginata</i></td><td>MW438317</td><td>This study</td></tr><tr><th>HF-9</th><td>DSE8/143 = CBS 135664</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>July 2005</td><td><i>Festuca vaginata</i></td><td>KP184000 a</td><td>Knapp et al. (2015)</td></tr><tr><th>HF-10</th><td>DSE8/S = CBS 135761 (T)</td><td>F&uuml;l&Dot;oph&acute;aza, Hungary</td><td>July 2012</td><td><i>Festuca vaginata</i></td><td>KP184001 b</td><td>Knapp et al. (2015)</td></tr><tr><th>MF-1</th><td>MF03</td><td>Nalaikh, Mongolia</td><td>October 2016</td><td><i>Stipa krylovii</i></td><td>MN537657</td><td>Knapp et al. (2019)</td></tr><tr><th>MF-2</th><td>MF04</td><td>Nalaikh, Mongolia</td><td>October 2016</td><td><i>Stipa krylovii</i></td><td>MN537658</td><td>Knapp et al. (2019)</td></tr><tr><th>MF-3</th><td>MF05</td><td>Nalaikh, Mongolia</td><td>October 2016</td><td><i>Stipa krylovii</i></td><td>MN537659</td><td>Knapp et al. (2019)</td></tr><tr><th>MF-4</th><td>MF06</td><td>Nalaikh, Mongolia</td><td>October 2016</td><td><i>Stipa krylovii</i></td><td>MN537660</td><td>Knapp et al. (2019)</td></tr><tr><th>MF-5</th><td>MF07</td><td>Nalaikh, Mongolia</td><td>October 2016</td><td><i>Stipa krylovii</i></td><td>MN537661</td><td>Knapp et al. (2019)</td></tr><tr><th>MF-6</th><td>MF08</td><td>Nalaikh, Mongolia</td><td>October 2016</td><td><i>Stipa krylovii</i></td><td>MN537662</td><td>Knapp et al. (2019)</td></tr><tr><th>MF-7</th><td>MF09 = DSE8309</td><td>Nalaikh, Mongolia</td><td>October 2016</td><td><i>Stipa krylovii</i></td><td>MN537663 c</td><td>Knapp et al. (2019)</td></tr></tbody></table><p><sup>a</sup> Sequences of further DNA loci of this strain are available: LSU (partial 28S large subunit of the nrRNA gene): KP184039; SSU (partial 18S small subunit of the nrRNA gene): KP184081; ACT (partial actin gene): KP184116; CAL (partial calmodulin gene): KP184159.</p><p><sup>b</sup> Sequences of further DNA loci of this strain are available: LSU: KP184040; SSU: KP184082; ACT: KP184118; CAL: KP184158.</p><p><sup>c</sup> Sequences of further DNA loci of this strain are available: LSU: MN515261; TEF (translation elongation factor 1-&alpha;): MN535259. (T): ex-type culture.</p>

opennotspecifiedOct 2021View details →
zenodo32/100

Data for: Torii et al.,Observed Kinetics of Enterovirus Inactivation by Free Chlorine Are Host Cell-Dependent, Environmental Science and Technology, 10.1021/acs.est.2c07048

<p>This folder contains the experimental data to the figures shown in the main manuscript and Supporting Information.</p> <p>- Figure 1 (Inactivation curves for E11 by free chlorine, UV, and heat)</p> <p>- Figure 2 (Inactivation curves for CVA9, CVB1, E7, E9, and E13)</p> <p>- Figure S1 (Loss of attachment and the PCR-target by free chlorine treatment)</p> <p>- Figure S2 (Flow cytometric&nbsp;analysis)</p> <p>&nbsp;</p> <p>&nbsp;</p> <p>&nbsp;</p>

opencc-by-4.0Jan 2023View details →
zenodo32/100

Data from "The Impact of Chlorine Disinfection of Hospital Wastewater on Clonal Similarity and ESBL-Production in Selected Bacteria of the Family Enterobacteriaceae"

<p>Data to accompany paper &quot;Rolbiecki, D.; Korzeniewska, E.; Czatzkowska, M.; Harnisz, M. The Impact of Chlorine Disinfection of Hospital Wastewater on Clonal Similarity and ESBL-Production in Selected Bacteria of the Family Enterobacteriaceae.&nbsp;<em>Int. J. Environ. Res. Public Health</em>&nbsp;2022,&nbsp;<em>19</em>, 13868. https://doi.org/10.3390/ijerph192113868&quot;</p> <p>1.&nbsp;Bacterial Strains Data.xlsx -&nbsp;characteristics of the strains obtained in this study (Strain number, medium used for isolation, research season, research site, isolation date.</p> <p>2.&nbsp;Data of Phenotypic Detection of ESBL Producers.xlsx -&nbsp;ESBL+ bacterial detection analysis results: two-stage detection using chromID&trade; ESBL medium and Combined Disc Test (CD); inhibition zones for antibiotic discs; ESBL analysis result.</p> <p>3. ERIC PCR Locus Molecular Weight.xlsx -&nbsp;frequency of occurrence of fragments with specific molecular weights during ERIC-PCR analysis.</p> <p>4.&nbsp;ESBL Positive Strains Characterisation.xlsx -&nbsp;individual results of molecular analyzes of DNA isolated from strains (results of PCR tests, identification by sequencing).</p> <p>5. SimilarityMatrixCorrelation.xlsx -&nbsp;matrix of similarities by calculating&nbsp;Pearson&rsquo;s correlation coefficient.&nbsp;Pearson&rsquo;s correlation coefficient was calculated based on the intensity of ethidium bromide fluorescence along normalized migration distances for the two fingerprints.&nbsp;</p> <p>6.&nbsp;similarityMatrixDice.xlsx -&nbsp;matrix of similarities by calculating the Dice coefficient. The Dice coefficient approach, similarities are assessed based on the presence or absence (0/1 values) of bands of the same molecular weight in fingerprint patterns</p>

opencc-by-4.0Jun 2023View details →
zenodo32/100

Negligible fractionation between fluorine and chlorine during magma ocean crystallization and implications for the origin of Earth's volatiles

<p>Research data underlying all figures in the main text&nbsp; and supplementary material .&nbsp;</p>

opencc-by-4.0Dec 2022View details →
zenodo32/100

Fig. 4 in The grass root endophytic fungus Flavomyces fulophazii: An abundant source of tetramic acid and chlorinated azaphilone derivatives

Fig. 4. Characteristic MS fragmentation of azaphilone compounds 6a, 7–11 (A) and 6b flavochlorine F (B) along with their backbone specific fragment ion structure (C). Corresponding fragment ions generated from protonated molecular ions of these azaphilones by various collision induced dissociation energies, are detailed in the Supplementary Tables S2 and S3.

opennotspecifiedOct 2021View details →
zenodo32/100

Fig. 3 in The grass root endophytic fungus Flavomyces fulophazii: An abundant source of tetramic acid and chlorinated azaphilone derivatives

Fig. 3. Extracted ion chromatograms (A–F) for m/z 340.1 (A), m/z 296.1 (B), m/z 252.1 (C), m/z 310.1 (D), m/z 352.1 (E), and m/z 253.1 (F) corresponding to azaphilones, and HR-MS spectra (A′–F′) of azaphilones 6a (flavochlorine E), 7 (flavochlorine A), 8 (flavochlorine B), 9 (flavochlorine C), 10 (flavochlorine G) and 11 (flavochlorine D), respectively, along with their chemical structures (note: HR-MS spectrum of 6b (flavochlorine F) comparable with that of compound 6a, was not depicted). Chromatograms and spectra were obtained from a HPLC separation of the extract prepared from Flavomyces fulophazii culture sample HF-3A.

opennotspecifiedOct 2021View details →
zenodo32/100

Fig. 2. A in The grass root endophytic fungus Flavomyces fulophazii: An abundant source of tetramic acid and chlorinated azaphilone derivatives

Fig. 2. A HPLC separation of the extract prepared from Flavomyces fulophazii culture sample HF-3A [full chromatogram A was recorded using UV detection (λ = 280 nm), and trace chromatograms (B, C, D, E, F) were obtained by MS detection, monitoring the extracted ion current for m/z 252.1 (B), m/z 236.1 (C), m/z 234.1 (D), m/z 250.1 (E) and m/z 218.1 (F), corresponding to tetramic acids] and HR-MS spectra (B′, C′, D′, E′, F′) of tetramic acids 1 (dihydroxyvermelhotin), 2 (hydroxyvermelhotin), 3 (oxovermelhotin), 4 (methoxyvermelhotin) and 5 (vermelhotin), respectively, along with their chemical structures.

opennotspecifiedOct 2021View details →
zenodo32/100

Fig. 1 in The grass root endophytic fungus Flavomyces fulophazii: An abundant source of tetramic acid and chlorinated azaphilone derivatives

Fig. 1. Maximum Likelihood (ML) phylogenetic tree of ITS sequences of representative species in Periconiaceae and Massarinaceae in the suborder Massarineae (Pleosporales). Highlighted sections indicate affiliations to families. Flavomyces fulophazii isolates and the vermelhotin producing CRI247-01 strain (see Kasettrathat et al., 2008) are shown in bold. ML bootstrap support values (≥70) are shown at branches. GenBank accession numbers of the sequences and strain numbers are shown before and after the species names, respectively. Three representative species of the family Lentitheciaceae served as multiple outgroups (highlighted with blue). The scale bar indicates 0.05 expected changes per site per branch.. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedOct 2021View details →
zenodo32/100

Model outputs associated with "Comprehensive multiphase chlorine chemistry in the box model CAABA/MECCA: Implications to atmospheric oxidative capacity"

<p>Model outputs associated with &quot;Comprehensive multiphase chlorine chemistry in the box model CAABA/MECCA: Implications to atmospheric oxidative capacity&rdquo;.</p>

opencc-by-4.0Apr 2023View details →
zenodo32/100

Data from "Atmospheric impacts of chlorinated very short-lived substances over the recent past – Part 2: Impacts on ozone" by Bednarz et al. (2023)

<p>Data from "Atmospheric impacts of chlorinated very short-lived substances over the recent past – Part 2: Impacts on ozone" by Bednarz et al. (2023), which has been&nbsp;accepted for publication in Atmospheric Chemistry and Physics.</p>

opencc-by-4.0Oct 2023View details →
ClinicalTrials.gov32/100

Automatic Chlorination and Child Health in Urban Bangladesh

ClinicalTrials.gov study NCT02606981. IPD Sharing: Not stated. Countries: 1. Publications: 1.

restrictedIPD-UNDECIDEDFeb 2026View details →
ClinicalTrials.gov32/100

Investigating the Effect of Chlorine Dioxide and Chlorhexidine Mouthwash on Bad Breath

ClinicalTrials.gov study NCT06219226. IPD Sharing: NO. Countries: 1. Publications: 4.

closedIPD-NOFeb 2026View details →
ClinicalTrials.gov32/100

Double-blinded Trial of Household-based Chlorination in India

ClinicalTrials.gov study NCT01202383. IPD Sharing: Not stated. Countries: 1. Publications: 1.

restrictedIPD-UNDECIDEDFeb 2026View details →

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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.

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Last verified 2026-04-29Open record