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      <title>Introduction to ATOMS by Malene Agiurre</title>
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      <language>en-us</language>
      <pubDate>2017-03-13 17:14:11 UTC</pubDate>
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         <title>Atom</title>
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         <description><![CDATA[<div>the basic unit of a chemical element.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:630,&quot;url&quot;:&quot;http://og.github.com/atom-mark/atom-mark@1200x630.png&quot;,&quot;width&quot;:1200}" data-trix-content-type="image"><img src="http://og.github.com/atom-mark/atom-mark@1200x630.png" width="1200" height="630"><figcaption class="caption"></figcaption></figure></div><div><br></div>]]></description>
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         <pubDate>2017-03-13 17:17:00 UTC</pubDate>
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         <title>Electron</title>
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         <description><![CDATA[<div>a stable subatomic particle with a charge of negative electricity, found in all atoms and acting as the primary carrier of electricity in solids.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:400,&quot;url&quot;:&quot;https://avatars3.githubusercontent.com/u/13409222?v=3&amp;s=400&quot;,&quot;width&quot;:400}" data-trix-content-type="image"><img src="https://avatars3.githubusercontent.com/u/13409222?v=3&amp;s=400" width="400" height="400"><figcaption class="caption"></figcaption></figure></div><div><br></div><div><br></div>]]></description>
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         <pubDate>2017-03-13 17:17:21 UTC</pubDate>
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         <title>Nucleus</title>
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         <description><![CDATA[<div>the central and most important part of an object, movement, or group, forming the basis for its activity and growth.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:1024,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/thumb/3/38/Diagram_human_cell_nucleus.svg/1252px-Diagram_human_cell_nucleus.svg.png&quot;,&quot;width&quot;:1252}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/thumb/3/38/Diagram_human_cell_nucleus.svg/1252px-Diagram_human_cell_nucleus.svg.png" width="1252" height="1024"><figcaption class="caption"></figcaption></figure></div>]]></description>
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         <pubDate>2017-03-13 17:18:15 UTC</pubDate>
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         <title>Electron Cloud</title>
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         <description><![CDATA[<div><strong>Electron cloud</strong> is an informal term in physics. It is used to describe where <strong>electrons </strong>are when they go around the nucleus of an atom. The <strong>electron cloud</strong> model is different from the older Bohr atomic model by Niels Bohr.<figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:396,&quot;url&quot;:&quot;http://www.universetoday.com/wp-content/uploads/2009/08/electron_clouid-580x396.jpg&quot;,&quot;width&quot;:580}" data-trix-content-type="image"><img src="http://www.universetoday.com/wp-content/uploads/2009/08/electron_clouid-580x396.jpg" width="580" height="396"><figcaption class="caption"></figcaption></figure></div>]]></description>
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         <pubDate>2017-03-13 17:18:43 UTC</pubDate>
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         <title>Proton</title>
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         <description><![CDATA[<div>a stable subatomic particle occurring in all atomic nuclei, with a positive electric charge equal in magnitude to that of an electron, but of opposite sign.<br><figure class="attachment attachment-preview" 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" width="225" height="225"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:19:22 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159759538</guid>
      </item>
      <item>
         <title>Atomic mass unit</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159759755</link>
         <description><![CDATA[<div>a unit of mass used to express atomic and molecular weights, equal to one-twelfth of the mass of an atom of carbon-12. It is equal to approximately 1.66 x 10<sup>-27</sup> kg.<figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:360,&quot;url&quot;:&quot;http://www6.miami.edu/chem/chm101h/notes/ch02/img010.gif&quot;,&quot;width&quot;:480}" data-trix-content-type="image"><img src="http://www6.miami.edu/chem/chm101h/notes/ch02/img010.gif" width="480" height="360"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:19:56 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159759755</guid>
      </item>
      <item>
         <title>Neutron</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159759943</link>
         <description><![CDATA[<div>a subatomic particle of about the same mass as a proton but without an electric charge, present in all atomic nuclei except those of ordinary hydrogen.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:250,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/thumb/8/81/Quark_structure_neutron.svg/250px-Quark_structure_neutron.svg.png&quot;,&quot;width&quot;:250}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/thumb/8/81/Quark_structure_neutron.svg/250px-Quark_structure_neutron.svg.png" width="250" height="250"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:20:27 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159759943</guid>
      </item>
      <item>
         <title>Atomic number</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159760137</link>
         <description><![CDATA[<div>the number of protons in the nucleus of an atom, which determines the chemical properties of an element and its place in the periodic table.<figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:183,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/thumb/1/18/Atomic_number_depiction.jpg/300px-Atomic_number_depiction.jpg&quot;,&quot;width&quot;:300}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/thumb/1/18/Atomic_number_depiction.jpg/300px-Atomic_number_depiction.jpg" width="300" height="183"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:20:57 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159760137</guid>
      </item>
      <item>
         <title>Isotope</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159760283</link>
         <description><![CDATA[<div>each of two or more forms of the same element that contain equal numbers of protons but different numbers of neutrons in their nuclei, and hence differ in relative atomic mass but not in chemical properties; in particular, a radioactive form of an element.<figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:800,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/6/66/Hydrogen_Deuterium_Tritium_Nuclei_Schmatic-en.svg&quot;,&quot;width&quot;:1600}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/6/66/Hydrogen_Deuterium_Tritium_Nuclei_Schmatic-en.svg" width="1600" height="800"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:21:24 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159760283</guid>
      </item>
      <item>
         <title>Mass number</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159760452</link>
         <description><![CDATA[<div>the total number of protons and neutrons in a nucleus.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:133,&quot;url&quot;:&quot;https://www.nde-ed.org/EducationResources/HighSchool/Radiography/Graphics/mass-number.png&quot;,&quot;width&quot;:361}" data-trix-content-type="image"><img src="https://www.nde-ed.org/EducationResources/HighSchool/Radiography/Graphics/mass-number.png" width="361" height="133"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:21:53 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159760452</guid>
      </item>
      <item>
         <title>Atomic mass</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159760626</link>
         <description><![CDATA[<div>the mass of an atom of a chemical element expressed in atomic mass units. It is approximately equivalent to the number of protons and neutrons in the atom (the mass number) or to the average number allowing for the relative abundances of different isotopes.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:822,&quot;url&quot;:&quot;http://www.proprofs.com/quiz-school/user_upload/ckeditor/Picture1(24).jpg&quot;,&quot;width&quot;:1397}" data-trix-content-type="image"><img src="http://www.proprofs.com/quiz-school/user_upload/ckeditor/Picture1(24).jpg" width="1397" height="822"><figcaption class="caption"></figcaption></figure></div><div><br></div><div><br></div><div><br></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:22:19 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159760626</guid>
      </item>
      <item>
         <title>Noble Gas</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159760924</link>
         <description><![CDATA[<div>any of the gaseous elements helium, neon, argon, krypton, xenon, and radon, occupying Group 0 (18) of the periodic table. They were long believed to be totally unreactive but compounds of xenon, krypton, and radon are now known.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:180,&quot;url&quot;:&quot;http://www.chem4kids.com/files/art/elem_inertgas1.png&quot;,&quot;width&quot;:240}" data-trix-content-type="image"><img src="http://www.chem4kids.com/files/art/elem_inertgas1.png" width="240" height="180"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:23:05 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159760924</guid>
      </item>
      <item>
         <title>Halogen</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159761155</link>
         <description><![CDATA[<div>any of the elements fluorine, chlorine, bromine, iodine, and astatine, occupying group VIIA (17) of the periodic table. They are reactive nonmetallic elements that form strongly acidic compounds with hydrogen, from which simple salts can be made.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:268,&quot;url&quot;:&quot;http://s.hswstatic.com/gif/halogen-lamp-1.jpg&quot;,&quot;width&quot;:284}" data-trix-content-type="image"><img src="http://s.hswstatic.com/gif/halogen-lamp-1.jpg" width="284" height="268"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:23:42 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159761155</guid>
      </item>
      <item>
         <title>Chemical Bonding</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159761329</link>
         <description><![CDATA[<div>A <strong>chemical bond</strong> is a lasting attraction between atoms that enables the formation of <strong>chemical</strong> compounds. The <strong>bond</strong> may result from the electrostatic force of attraction between atoms with opposite charges, or through the sharing of electrons as in the <strong>covalent bonds</strong>.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:244,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/thumb/0/02/Electron_dot.svg/300px-Electron_dot.svg.png&quot;,&quot;width&quot;:300}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/thumb/0/02/Electron_dot.svg/300px-Electron_dot.svg.png" width="300" height="244"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:24:09 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159761329</guid>
      </item>
      <item>
         <title>Chemical Bond</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159761473</link>
         <description><![CDATA[<div>a thing used to tie something or to fasten things together.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:193,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/thumb/1/17/Covalent.svg/160px-Covalent.svg.png&quot;,&quot;width&quot;:160}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/thumb/1/17/Covalent.svg/160px-Covalent.svg.png" width="160" height="193"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:24:31 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159761473</guid>
      </item>
      <item>
         <title>Valence Electron</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159761909</link>
         <description><![CDATA[<div>In chemistry, a <strong>valence electron</strong> is an <strong>electron</strong> that is associated with an atom, and that can participate in the formation of a chemical bond; in a single covalent bond, both atoms in the bond contribute one <strong>valence electron</strong> in order to form a shared pair.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:584,&quot;url&quot;:&quot;https://cdn.sparkfun.com/assets/6/e/6/0/2/51a67853ce395fa26b000000.png&quot;,&quot;width&quot;:639}" data-trix-content-type="image"><img src="https://cdn.sparkfun.com/assets/6/e/6/0/2/51a67853ce395fa26b000000.png" width="639" height="584"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:25:24 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159761909</guid>
      </item>
      <item>
         <title>Ionic Bond</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159762090</link>
         <description><![CDATA[<div>A chemical <strong>bond</strong> formed between two <strong>ions</strong> with opposite charges. <strong>Ionic bonds</strong> form when one atom gives up one or more electrons to another atom. These <strong>bonds</strong> can form between a pair of atoms or between molecules and are the type of <strong>bond</strong> found in salts.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:100,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/thumb/3/38/Ionic_bonding.svg/225px-Ionic_bonding.svg.png&quot;,&quot;width&quot;:225}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/thumb/3/38/Ionic_bonding.svg/225px-Ionic_bonding.svg.png" width="225" height="100"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:25:51 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159762090</guid>
      </item>
      <item>
         <title>Ion</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159762419</link>
         <description><![CDATA[<div><br>an atom or molecule with a net electric charge due to the loss or gain of one or more electrons.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:209,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/thumb/6/6f/Nitrate-ion-elpot.png/220px-Nitrate-ion-elpot.png&quot;,&quot;width&quot;:220}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/thumb/6/6f/Nitrate-ion-elpot.png/220px-Nitrate-ion-elpot.png" width="220" height="209"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:26:47 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159762419</guid>
      </item>
      <item>
         <title>Crystal Lattice</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159762564</link>
         <description><![CDATA[<div>the symmetrical three-dimensional arrangement of atoms inside a crystal.<br><figure class="attachment attachment-preview" 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" width="248" height="203"><figcaption class="caption"></figcaption></figure><br><br></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:27:13 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159762564</guid>
      </item>
      <item>
         <title>Covalent Bond</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159762703</link>
         <description><![CDATA[<div>A <strong>covalent bond</strong>, also called a molecular <strong>bond</strong>, is a chemical<strong>bond</strong> that involves the sharing of electron pairs between atoms. These electron pairs are known as shared pairs or <strong>bonding</strong> pairs, and the stable balance of attractive and repulsive forces between atoms, when they share electrons, is known as <strong>covalent bonding</strong>.<br><figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:241,&quot;url&quot;:&quot;https://upload.wikimedia.org/wikipedia/commons/thumb/1/17/Covalent.svg/200px-Covalent.svg.png&quot;,&quot;width&quot;:200}" data-trix-content-type="image"><img src="https://upload.wikimedia.org/wikipedia/commons/thumb/1/17/Covalent.svg/200px-Covalent.svg.png" width="200" height="241"><figcaption class="caption"></figcaption></figure><br><br></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:27:39 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159762703</guid>
      </item>
      <item>
         <title>Molecule</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159762824</link>
         <description><![CDATA[<div>a group of atoms bonded together, representing the smallest fundamental unit of a chemical compound that can take part in a chemical reaction.<figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:400,&quot;url&quot;:&quot;https://media1.britannica.com/eb-media/28/105428-004-13BB2171.jpg&quot;,&quot;width&quot;:510}" data-trix-content-type="image"><img src="https://media1.britannica.com/eb-media/28/105428-004-13BB2171.jpg" width="510" height="400"><figcaption class="caption"></figcaption></figure></div>]]></description>
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         <pubDate>2017-03-13 17:27:58 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159762824</guid>
      </item>
      <item>
         <title>Metallic bond</title>
         <author>3014472</author>
         <link>https://padlet.com/3014472/7n3twt6av4lt/wish/159763001</link>
         <description><![CDATA[<div>The chemical <strong>bonding</strong> that holds the atoms of a metal together. <strong>Metallic bonds</strong> are formed from the attraction between mobile electrons and fixed, positively charged <strong>metallic</strong> atoms. Whereas most chemical <strong>bonds</strong> are localized between specific neighboring atoms, <strong>metallic bonds</strong> extend over the entire molecular structure.<figure class="attachment attachment-preview" data-trix-attachment="{&quot;contentType&quot;:&quot;image&quot;,&quot;height&quot;:233,&quot;url&quot;:&quot;http://study.com/cimages/multimages/16/sea_of_electrons.png&quot;,&quot;width&quot;:300}" data-trix-content-type="image"><img src="http://study.com/cimages/multimages/16/sea_of_electrons.png" width="300" height="233"><figcaption class="caption"></figcaption></figure></div>]]></description>
         <enclosure url="" />
         <pubDate>2017-03-13 17:28:26 UTC</pubDate>
         <guid>https://padlet.com/3014472/7n3twt6av4lt/wish/159763001</guid>
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