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    <title>Learning Guide on OSECHI</title>
    <link>https://osechi.gitlab.io/en/learn/</link>
    <description>Recent content in Learning Guide on OSECHI</description>
    <generator>Hugo -- gohugo.io</generator>
    <language>en</language>
    <copyright>2019 – present OSECHI Developers</copyright>
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    <item>
      <title>What are Cosmic Rays?</title>
      <link>https://osechi.gitlab.io/en/learn/cosmic-ray/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/cosmic-ray/</guid>
      <description>&lt;p&gt;Cosmic rays are high-energy particles that rain down on Earth from outer space.&#xA;When cosmic rays enter Earth&amp;rsquo;s atmosphere, they collide with atomic nuclei in the air and produce secondary particles.&#xA;Of these, &lt;strong&gt;muons&lt;/strong&gt; are the representative particles that reach the surface.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Types of Cosmic Rays&#xA;    &lt;div id=&#34;types-of-cosmic-rays&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#types-of-cosmic-rays&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&#xA;&lt;h3 class=&#34;relative group&#34;&gt;Primary Cosmic Rays&#xA;    &lt;div id=&#34;primary-cosmic-rays&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#primary-cosmic-rays&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h3&gt;&#xA;&lt;p&gt;Particles traveling directly from space, observed above the atmosphere.&lt;/p&gt;</description>
      
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    <item>
      <title>What are Muons?</title>
      <link>https://osechi.gitlab.io/en/learn/muon/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/muon/</guid>
      <description>&lt;h2 class=&#34;relative group&#34;&gt;Properties of Muons&#xA;    &lt;div id=&#34;properties-of-muons&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#properties-of-muons&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;Muons (μ particles) are elementary particles belonging to the same family as electrons (leptons).&lt;/p&gt;&#xA;&lt;table&gt;&#xA;&#x9;&lt;thead&gt;&#xA;&#x9;&#x9;&#x9;&lt;tr&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;th&gt;Property&lt;/th&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;th&gt;Value&lt;/th&gt;&#xA;&#x9;&#x9;&#x9;&lt;/tr&gt;&#xA;&#x9;&lt;/thead&gt;&#xA;&#x9;&lt;tbody&gt;&#xA;&#x9;&#x9;&#x9;&lt;tr&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;td&gt;Mass&lt;/td&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;td&gt;~207 times the electron mass (105.7 MeV/c²)&lt;/td&gt;&#xA;&#x9;&#x9;&#x9;&lt;/tr&gt;&#xA;&#x9;&#x9;&#x9;&lt;tr&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;td&gt;Charge&lt;/td&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;td&gt;−1 (antimuon: +1)&lt;/td&gt;&#xA;&#x9;&#x9;&#x9;&lt;/tr&gt;&#xA;&#x9;&#x9;&#x9;&lt;tr&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;td&gt;Spin&lt;/td&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;td&gt;1/2&lt;/td&gt;&#xA;&#x9;&#x9;&#x9;&lt;/tr&gt;&#xA;&#x9;&#x9;&#x9;&lt;tr&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;td&gt;Mean lifetime&lt;/td&gt;&#xA;&#x9;&#x9;&#x9;&#x9;&#x9;&lt;td&gt;~2.2 microseconds (rest frame)&lt;/td&gt;&#xA;&#x9;&#x9;&#x9;&lt;/tr&gt;&#xA;&#x9;&lt;/tbody&gt;&#xA;&lt;/table&gt;&#xA;&lt;p&gt;Muons are far heavier than electrons and have high penetrating power, passing through most matter with ease.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Why Do They Reach the Ground?&#xA;    &lt;div id=&#34;why-do-they-reach-the-ground&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#why-do-they-reach-the-ground&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;Muons are created in the upper atmosphere (about 15 km altitude).&#xA;With a rest-frame lifetime of ~2.2 μs, they should only travel about 660 m at light speed.&#xA;Yet they reach the surface thanks to &lt;strong&gt;special relativity&lt;/strong&gt;.&lt;/p&gt;</description>
      
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    <item>
      <title>How Does Solar Activity Affect Cosmic Rays?</title>
      <link>https://osechi.gitlab.io/en/learn/solar-activity/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/solar-activity/</guid>
      <description>&lt;p&gt;The amount of cosmic rays reaching Earth isn&amp;rsquo;t constant — it changes over time.&#xA;One major reason is the activity of the Sun.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;The Solar Wind Shields Galactic Cosmic Rays&#xA;    &lt;div id=&#34;the-solar-wind-shields-galactic-cosmic-rays&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#the-solar-wind-shields-galactic-cosmic-rays&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;The Sun constantly emits the &lt;strong&gt;solar wind&lt;/strong&gt;, a stream of charged particles (protons, electrons, and others) that carries magnetic field throughout the solar system.&#xA;Cosmic rays arriving from outside the galaxy (galactic cosmic rays) are partly deflected by this field, making it harder for them to reach the inner solar system.&lt;/p&gt;</description>
      
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    <item>
      <title>What is a Scintillator?</title>
      <link>https://osechi.gitlab.io/en/learn/scintillator/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/scintillator/</guid>
      <description>&lt;p&gt;A &lt;strong&gt;scintillator&lt;/strong&gt; is a material that emits visible or ultraviolet light when radiation — a charged particle or gamma ray — passes through it.&#xA;This light emission is called &lt;strong&gt;scintillation&lt;/strong&gt;.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Why It Glows&#xA;    &lt;div id=&#34;why-it-glows&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#why-it-glows&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;When a charged particle passes through a scintillator, it temporarily excites the atoms it passes near, bumping electrons into a higher energy state.&#xA;As the electrons return to their original (ground) state, the energy difference is released as light.&#xA;Charged particles like muons continuously trigger this emission as they travel through matter.&lt;/p&gt;</description>
      
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    <item>
      <title>What is a Photodetector?</title>
      <link>https://osechi.gitlab.io/en/learn/photodetector/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/photodetector/</guid>
      <description>&lt;p&gt;The light emitted by a scintillator is extremely faint — far too dim to see with the naked eye.&#xA;A &lt;strong&gt;photodetector&lt;/strong&gt; amplifies this faint light into a measurable electrical signal.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Types of Photodetectors&#xA;    &lt;div id=&#34;types-of-photodetectors&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#types-of-photodetectors&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;There are two broad approaches to converting and amplifying light into an electrical signal: vacuum-tube based and semiconductor based.&lt;/p&gt;&#xA;&#xA;&lt;h3 class=&#34;relative group&#34;&gt;Photomultiplier Tubes (PMTs)&#xA;    &lt;div id=&#34;photomultiplier-tubes-pmts&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#photomultiplier-tubes-pmts&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h3&gt;&#xA;&lt;p&gt;A &lt;strong&gt;Photo Multiplier Tube (PMT)&lt;/strong&gt; is a vacuum tube that converts and amplifies light into an electrical signal.&lt;/p&gt;</description>
      
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      <title>What is Coincidence?</title>
      <link>https://osechi.gitlab.io/en/learn/coincidence/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/coincidence/</guid>
      <description>&lt;p&gt;Even with a scintillator and photodetector working together, not every signal that comes out is caused by a muon.&#xA;Thermal and electrical noise can produce signals that look a lot like the real thing.&#xA;&lt;strong&gt;Coincidence&lt;/strong&gt; is a technique that combines multiple detector layers to filter out this noise and select only the events where a muon truly passed through.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Threshold&#xA;    &lt;div id=&#34;threshold&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#threshold&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;A photodetector&amp;rsquo;s signal always contains a mix of genuine muon signals and faint background noise.&#xA;The boundary value used to distinguish noise from signal is called the &lt;strong&gt;threshold&lt;/strong&gt;; an event is only recorded when the signal exceeds it.&lt;/p&gt;</description>
      
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      <title>What is Air Shower Observation?</title>
      <link>https://osechi.gitlab.io/en/learn/air-shower/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/air-shower/</guid>
      <description>&lt;p&gt;When a primary cosmic ray enters the atmosphere, the single particle branches out again and again, producing a swarm of countless secondary particles.&#xA;This phenomenon is called an &lt;strong&gt;air shower&lt;/strong&gt;.&#xA;By the time it reaches the ground, the shower has become a group of particles arriving simultaneously across a wide area.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;How a Shower Spreads&#xA;    &lt;div id=&#34;how-a-shower-spreads&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#how-a-shower-spreads&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;When a primary cosmic ray collides with a nucleus in the upper atmosphere, it produces secondary particles such as pions.&#xA;These particles go on to react with other nuclei or decay, multiplying the particle count in a cascading chain reaction.&lt;/p&gt;</description>
      
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      <title>What is Muography?</title>
      <link>https://osechi.gitlab.io/en/learn/muography/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/muography/</guid>
      <description>&lt;p&gt;Muography uses the high penetrating power of muons to image the internal structure of large objects.&#xA;Just as X-rays image the human body, muography &amp;ldquo;sees through&amp;rdquo; buildings, volcanoes, and pyramids.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;How Muography Works&#xA;    &lt;div id=&#34;how-muography-works&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#how-muography-works&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;As cosmic-ray muons pass through matter, they travel in a straight line while gradually losing energy.&#xA;Denser material absorbs more muons, so the number of muons observed on the far side of an object varies with the density of the material along the path they traveled.&lt;/p&gt;</description>
      
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      <title>What is Citizen Science in Cosmic Ray Observation?</title>
      <link>https://osechi.gitlab.io/en/learn/citizen-science/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/citizen-science/</guid>
      <description>&lt;p&gt;Cosmic ray research once required large, dedicated equipment found only at universities and research institutes.&#xA;As detectors have become smaller and cheaper in recent years, the field has grown into a form of &lt;strong&gt;citizen science&lt;/strong&gt;, where schools and individuals can take part in genuine measurement.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;What is Citizen Science?&#xA;    &lt;div id=&#34;what-is-citizen-science&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#what-is-citizen-science&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;Citizen science is a style of research where members of the public — not just professional researchers — take part in observation, data collection, and analysis.&#xA;It has produced results across many fields, from amateur astronomers discovering new celestial objects to volunteers logging biodiversity sightings.&lt;/p&gt;</description>
      
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      <title>What Open Questions Remain in Cosmic Ray Research?</title>
      <link>https://osechi.gitlab.io/en/learn/open-questions/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/open-questions/</guid>
      <description>&lt;p&gt;Cosmic rays have been studied for over a century since their discovery in 1912, yet some fundamental questions remain unanswered.&#xA;Here are a few of the open problems researchers around the world are still working on.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Where Do the Highest-Energy Cosmic Rays Come From?&#xA;    &lt;div id=&#34;where-do-the-highest-energy-cosmic-rays-come-from&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#where-do-the-highest-energy-cosmic-rays-come-from&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;Observations have confirmed that, on rare occasions, cosmic rays reach Earth carrying an almost unbelievable amount of energy for a single particle — these are called &lt;strong&gt;ultra-high-energy cosmic rays&lt;/strong&gt;.&#xA;The highest energies ever recorded far exceed what humanity&amp;rsquo;s largest particle accelerator, the LHC, can produce.&lt;/p&gt;</description>
      
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      <title>Muons and New Physics</title>
      <link>https://osechi.gitlab.io/en/learn/muon-physics/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/muon-physics/</guid>
      <description>&lt;p&gt;The muons we&amp;rsquo;ve discussed so far are &amp;ldquo;cosmic-ray muons,&amp;rdquo; produced when cosmic rays collide with the atmosphere.&#xA;Elsewhere, researchers also produce large numbers of muons artificially with accelerators, studying their properties in precise detail to probe the limits of particle physics&amp;rsquo; fundamental laws.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Measuring a Muon&amp;rsquo;s Tiny Deviation&#xA;    &lt;div id=&#34;measuring-a-muons-tiny-deviation&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#measuring-a-muons-tiny-deviation&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;Place a muon in a magnetic field and it behaves like a tiny magnet, wobbling like a spinning top.&#xA;This wobbling motion is called &lt;strong&gt;precession&lt;/strong&gt;, and the strength of the wobble is captured by a quantity called &lt;strong&gt;g-2&lt;/strong&gt; (the anomalous magnetic moment).&#xA;g-2 can be calculated from theory with extraordinary precision, then compared directly against a measured value from experiment.&#xA;Past experiments have reported a g-2 value that deviates slightly from the theoretical prediction, drawing attention as a possible hint of an as-yet-undiscovered particle or force.&lt;/p&gt;</description>
      
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      <title>Muons and Underground Experiments</title>
      <link>https://osechi.gitlab.io/en/learn/muon-background/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/muon-background/</guid>
      <description>&lt;p&gt;The muon is the star of the show in a cosmic-ray measurement like OSECHI&amp;rsquo;s, but for many other experiments it&amp;rsquo;s treated as &lt;strong&gt;background&lt;/strong&gt; — unwanted noise that sometimes turns it into an unwelcome intruder.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Why Muons Get in the Way&#xA;    &lt;div id=&#34;why-muons-get-in-the-way&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#why-muons-get-in-the-way&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;Roughly 10,000 muons rain down on every square meter of the Earth&amp;rsquo;s surface each minute.&#xA;For experiments where keeping background to an absolute minimum is critical — searches for neutrino interactions or dark matter, for instance — this flood of muons leaves countless signals in a detector, burying the real signal researchers are looking for.&lt;/p&gt;</description>
      
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      <title>Muons and Accelerators</title>
      <link>https://osechi.gitlab.io/en/learn/muon-acceleration/</link>
      <pubDate>Mon, 01 Jan 0001 00:00:00 +0000</pubDate>
      
      <guid>https://osechi.gitlab.io/en/learn/muon-acceleration/</guid>
      <description>&lt;p&gt;Muons produced in bulk by an accelerator power more than just precision measurements — they&amp;rsquo;re also put to work in applied research.&#xA;One application drawing particular attention in recent years is using muons to investigate cultural artifacts, and researchers around the world are also, right now, building accelerators purpose-built for muons.&lt;/p&gt;&#xA;&#xA;&lt;h2 class=&#34;relative group&#34;&gt;Seeing Inside Cultural Artifacts With Muons&#xA;    &lt;div id=&#34;seeing-inside-cultural-artifacts-with-muons&#34; class=&#34;anchor&#34;&gt;&lt;/div&gt;&#xA;    &#xA;    &lt;span&#xA;        class=&#34;absolute top-0 w-6 transition-opacity opacity-0 -start-6 not-prose group-hover:opacity-100 select-none&#34;&gt;&#xA;        &lt;a class=&#34;text-primary-300 dark:text-neutral-700 !no-underline&#34; href=&#34;#seeing-inside-cultural-artifacts-with-muons&#34; aria-label=&#34;Anchor&#34;&gt;#&lt;/a&gt;&#xA;    &lt;/span&gt;&#xA;    &#xA;&lt;/h2&gt;&#xA;&lt;p&gt;Accelerator-made muons are also put to work in collaboration with archaeology, history, and conservation science — the field devoted to preserving and restoring cultural artifacts.&#xA;When a negatively charged muon is aimed at an object, it gets captured by an atomic nucleus and, in the process, emits X-rays characteristic of that particular element (muonic X-rays).&#xA;By measuring these X-rays, researchers can map an object&amp;rsquo;s elemental distribution deep below the surface, unlike conventional X-ray analysis, which can only probe near the surface, all without cutting into or damaging it in any way.&lt;/p&gt;</description>
      
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