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(2014 - present)</option> </select> <label id="label-header-lookup-volume" class="sr-only" for="header-lookup-volume" >Journal volume</label> <input type="text" id="header-lookup-volume" name="CF_VOLUME" class="lookup__text lookup__volume" value="" placeholder="Volume" > <label id="label-header-lookup-issue" class="sr-only" for="header-lookup-issue" >Issue</label> <input type="text" id="header-lookup-issue" name="CF_ISSUE" class="lookup__text lookup__issue" value="" placeholder="Issue" > <label id="label-header-lookup-article" class="sr-only" for="header-lookup-article" >Article or page</label> <input type="text" id="header-lookup-article" name="CF_PAGE" class="lookup__text lookup__article" value="" placeholder="Article or page" > <button type="submit" class="btn btn-default lookup__submit" >Lookup</button> </div> </form> </header> <aside class="header-ukraine"> <div class="wrapper header-ukraine__wrapper"> <a class="header-ukraine__link" href="https://ioppublishing.org/news/statement-on-ukraine/" target="_blank" rel="noopener" > <span class="header-ukraine__text">Ukraine: Click here to read <abbr title="Institute of Physics">IOP</abbr> Publishing's statement</span> <i class="fa fa-external-link header-ukraine__icon" aria-hidden="true"></i> </a> </div> </aside> <div class="site-window page-body"> <div id="primary" class="content-area"> <div class="wrapper"> <div class="single-content__row" data-ajax-content="example-figures"> <main id="main" class="site-main single-content__col--content"> <div class="row journal-info"> <h1 class="question-title">Example Figures</h1> <nav class="journal-header__breadcrumbs" aria-label="Breadcrumb"> <ul class="journal-header__breadcrumb-list"> <li class="journal-header__breadcrumb-item"> <a class="journal-header__breadcrumb-link" href="https://publishingsupport.iopscience.iop.org">Home</a> </li> <li class="journal-header__breadcrumb-item"> <span>Example Figures</span> </li> </ul> </nav> <div class="journal-info__content single-content__content"> <div class=""> <p>To make your figures accessible to as many readers as possible, try to avoid conveying information using only colour differences. In graphs and plots use symbols, labels, line styles or fill patterns to indicate different data, in addition to different colours.</p> <p><img loading="lazy" decoding="async" class="alignnone wp-image-5748 size-full" src="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/Picture1.png" alt="Demonstration of using labels or line styles so that information is clear when figures are converted to greyscale. Left panels show lines in different colours which are very similar when converted to greyscale (right panels). The lines are easy to distinguish by using either labels (top panels) or line styles (bottom panels)." width="480" height="380" srcset="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/Picture1.png 480w, https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/Picture1-300x238.png 300w" sizes="auto, (max-width: 480px) 100vw, 480px" /></p> <p><strong>Figure 1.</strong> Demonstration of using labels or line styles so that information is clear when figures are converted to greyscale. Left panels show lines in different colours which are very similar when converted to greyscale (right panels). The lines are easy to distinguish by using either labels (top panels) or line styles (bottom panels). The same principle can be applied to other types of chart.</p> <p>It is not always possible to have good colour contrast or to use labels or symbols, for example with photographic images or colour gradient maps.</p> <p>For all figures it is important to use the figure caption to provide a description of the information that the figure conveys so that all readers, including those using screen-reader technology, can understand why the image is present. Figure captions must be understandable without needing to refer to the main text of the article.</p> <p>Figures 2-5 are examples taken from published articles to demonstrate use of the figure caption to describe the information that the image conveys.</p> <p><img loading="lazy" decoding="async" class="alignnone wp-image-5755" src="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/fig2.png" alt="" width="480" height="338" srcset="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/fig2.png 1012w, https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/fig2-300x211.png 300w, https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/fig2-768x540.png 768w" sizes="auto, (max-width: 480px) 100vw, 480px" /></p> <p> </p> <p><strong>Figure 2.</strong> FMR response curves of PMA–SAF as a function of the phase factor <em>θ</em> of microwave fields. Here <em>H</em><sub>0</sub> = 2 kOe, <em>h</em><sub>0</sub> = 30 Oe and <em>θ</em> varies from 0° to 180°. The resonance signal amplitude of the LH mode increases while that of RH mode decreases with <em>θ</em> increasing. [Example figure taken from Chen X <em>et al</em> 2021 <em>New J. Phys.</em> <strong>23</strong> 113029 <a href="https://iopscience.iop.org/article/10.1088/1367-2630/ac3556">https://iopscience.iop.org/article/10.1088/1367-2630/ac3556</a>] <p> </p> <p><img loading="lazy" decoding="async" class="alignnone wp-image-5754" src="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/fig3.png" alt="" width="480" height="384" srcset="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/fig3.png 700w, https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/fig3-300x240.png 300w" sizes="auto, (max-width: 480px) 100vw, 480px" /></p> <p><strong>Figure 3.</strong> Plot of 𝒫<sub>0</sub>(Δ<em>θ</em>) (equation (<a href="https://iopscience.iop.org/article/10.1088/1367-2630/ac320d#njpac320deqn3">3</a>)) from Δ<em>θ</em> ∈ [−.5, .5) for various <em>d<sub>c</sub></em> . Note that 𝒫<sub>0</sub> has infinite domain with period 1. Probability of the (<em>d<sub>c</sub></em> -level) control register of an IPEA collapsing to |0⟩ as a function of difference between the eigenphase <em>θ</em> and the applied rotation <em>θ<sub>R</sub></em> , Δ<em>θ</em> ≡ <em>θ</em> − <em>θ<sub>R</sub></em> for an eigenstate input. Note that when the applied rotation matches the eigenphase (Δ<em>θ</em> = 0), the control collapses to |0⟩ deterministically. Denote the region around Δ<em>θ</em> = 0 (from dot to dot) as the central lobe of 𝒫<sub>0</sub>(Δ<em>θ</em>), and the small lobes with local maxima outside of it as the sidelobes. See that the higher the system’s dimensionality, the narrower the probability curve’s central lobe and the lower local maxima in the sidelobes. Note that <em>d<sub>c</sub></em> = 2 has no sidelobes (the probability is monotonic on either side of the central lobe). Also note 𝒫<sub>0</sub>(Δ<em>θ</em>) = 0 for Δ<em>θ</em> = <em>d<sub>c</sub></em><sup>-1</sup> and the width of the central lobe is therefore Δ<em>θ</em><sub>FWHM</sub> = 2 <em>d<sub>c</sub></em><sup>-1</sup>. [Example figure taken from Moore A J <em>et al</em> 2021 <em>New J. Phys. </em><i><strong>23</strong></i> 113027 <a href="https://iopscience.iop.org/article/10.1088/1367-2630/ac320d">https://iopscience.iop.org/article/10.1088/1367-2630/ac320d</a>] <p><img loading="lazy" decoding="async" class="alignnone size-full wp-image-5749" src="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/Picture4.jpg" alt="Three Hall sensors are positioned on the inner core, and two sensors are on the ring." width="280" height="273" /></p> <p><strong>Figure 4.</strong> Sample assembly arrangement. Three Hall sensors are positioned on the inner core, and two sensors are on the ring. The distance between adjacent sensors is 2.5 mm. A further sensor is placed inside the bore of the ring. [Example figure taken from Zhou D <em>et al</em> 2020 <em>Supercond. Sci. Technol.</em> <strong>33</strong> 034001 <a href="https://iopscience.iop.org/article/10.1088/1361-6668/ab66e7">https://iopscience.iop.org/article/10.1088/1361-6668/ab66e7]</a></p> <p><img loading="lazy" decoding="async" class="alignnone wp-image-5752 size-full" src="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/Picture5.jpg" alt="Local XMCD pattern inside the YBCO(250 nm)/Py(50 nm) bilayer at T = 26 K after zero field cooling. The positions of the flux fronts/d-lines are marked by black lines. " width="480" height="236" srcset="https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/Picture5.jpg 480w, https://publishingsupport.iopscience.iop.org/wp-content/uploads/2023/09/Picture5-300x148.jpg 300w" sizes="auto, (max-width: 480px) 100vw, 480px" /></p> <p><strong>Figure 5.</strong> Local XMCD pattern inside the YBCO(250 nm)/Py(50 nm) bilayer at <em>T</em> = 26 K after zero field cooling. The positions of the flux fronts/d-lines are marked by black lines. (Left) Increasing the external magnetic field from −40 to −20 mT (Δ<em>B</em> = +20 mT) leads to supercurrents flowing clockwise inside the sample. Here, the local magnetic field points towards the center of the square enhancing the penetration of magnetic flux (black lines). (Right) In case of Δ<em>B</em> = −20 mT (+40 to +20 mT) supercurrents flow anti-clockwise, reversing the latter effect. [Example figure taken from Simmendinger J <em>et al</em> 2020 <em>Supercond. Sci. Technol.</em> <strong>33</strong> 025015 <a href="https://iopscience.iop.org/article/10.1088/1361-6668/ab54ab">https://iopscience.iop.org/article/10.1088/1361-6668/ab54ab</a>] </div> </div> </div> </main> <aside class="single-content__col single-content__sidebar step-navigation--aside"> <h4 id="social-links-title" class="lineabove replica-p" >Share this page:</h4> <ul class="cf social-icons-wrapper"> <li class="share-icon-link"> <a 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