#Electron Probability Cloud

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#Electron Probability Cloud Reel by @quantaflix - This image shows the first direct observation of a hydrogen atom's electron orbital, captured in 2013 using photoionization microscopy.
The ring-like
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@quantaflix
This image shows the first direct observation of a hydrogen atom’s electron orbital, captured in 2013 using photoionization microscopy. The ring-like pattern represents the quantum probability cloud where the electron is most likely to be found. It visually confirms the predictions of quantum mechanics about electron behavior around the nucleus.
#Electron Probability Cloud Reel by @vt.physics - The concept of electron clouds, regions where electrons are likely to be found, emerged from the collective work of several key 20th-century physicist
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VT
@vt.physics
The concept of electron clouds, regions where electrons are likely to be found, emerged from the collective work of several key 20th-century physicists. Niels Bohr's model of quantized electron orbits laid the groundwork, which was expanded by Louis de Broglie's wave-particle duality. Erwin Schrödinger's wave equation provided a mathematical framework, while Werner Heisenberg's Uncertainty Principle highlighted the probabilistic nature of electron positions. Max Born's interpretation of the wave function as a probability distribution cemented the idea, leading to the modern quantum mechanical model where electrons are described as probability clouds rather than fixed orbits. #physics #science #electrons #atoms electron cloud model credits: Sci Pills
#Electron Probability Cloud Reel by @go_atomico - What Does an Atom Really Look Like? 👉 Let's explore the difference between these two atomic models and why the second one is considered more accurate
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GO
@go_atomico
What Does an Atom Really Look Like? 👉 Let’s explore the difference between these two atomic models and why the second one is considered more accurate structure of an atom: The first part of the video depicts the atomic model proposed by Niels Bohr in 1913. While most of us are only familiar with this atomic structure, but it isn’t entirely accurate. It portrays electrons as tiny particles following well-defined paths around the nucleus, which isn’t quite how it works. The Bohr model was a stepping stone in our understanding of atoms, but it has limitations. And the second part of the video depicts the Electron Cloud Model. This model suggests electrons occupy regions or orbitals around the nucleus with a certain probability. We can’t pinpoint an electron’s exact location but predict the probability of finding it in a specific region. This explains the cloud-like appearance. The second atomic model, the electron cloud model, is considered more scientifically accurate than the Bohr model for two reasons: 1. Electron Behavior: Electrons don’t behave like miniature planets following precise paths. The electron cloud model acknowledges their wave-like nature, explaining their existence within probabilistic regions around the nucleus. 2. Spectral Lines: The electron cloud model explains the observed spectral lines of elements better than the Bohr model. These lines arise from electron transitions between energy levels within the electron cloud. 😊Did you find this fact interesting? Then, leave a ❤️ and a comment! Reposted from @modernsciencex & @glamour_physics (Original creators of this video) 🎯Follow @go_atomico for more interesting Videos!! 🌐CREDIT COMPOSITION/FORMATTING/ EDITING @glamour_physics @modernsciencex Video credit of Atomic Orbitals animation: Sci Pills ( YouTube channel) ☆`☆•☆ CONTENT USED FOR EDUCATIONAL PURPOSES ONLY ☆•☆•☆ #space #atom #universe #nuclearphysics #particlephysics #quantummechanics #electron #atomic #astronomy #timetravel #universe #quantumphysics
#Electron Probability Cloud Reel by @quantumxparadoxx - Inside every atom, electrons do not follow fixed paths. They exist as quantum probability clouds, governed by wave behavior and fundamental physical l
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@quantumxparadoxx
Inside every atom, electrons do not follow fixed paths. They exist as quantum probability clouds, governed by wave behavior and fundamental physical laws. #QuantumPhysics #AtomicStructure #Electrons #ModernPhysics #scienceeducation
#Electron Probability Cloud Reel by @skywatcher____ - I just wonder, if the world is officially so terrible, what about everything else? How terrible is everything else - including the garbage in the air?
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SK
@skywatcher____
I just wonder, if the world is officially so terrible, what about everything else? How terrible is everything else – including the garbage in the air? #geoengineering #weathermanipulation #cloudseeding #stratosphericaerosolinjection #chemtrails or contrails clouds and climatchange ?!?
#Electron Probability Cloud Reel by @biochemedits - what's your favorite orbital? and how are you feeling lately?

sources: But Why? Electrons Don't Actually Orbit Like This, Curious Animator 3d Hydroge
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BI
@biochemedits
what's your favorite orbital? and how are you feeling lately? sources: But Why? Electrons Don't Actually Orbit Like This, Curious Animator 3d Hydrogen Atom, CrashCourse Orbitals: Crash Course Chemistry, Inorganic Chemistry Tutor Atomic Orbitals Simply Explained!, RIBO SCIENCE Electron Orbital: All Orbitals Visualised. text below from OpenStax Organic Chemistry, 1.2, Atomic Structure: Orbitals "According to the quantum mechanical model, the behavior of a specific electron in an atom can be described by a mathematical expression called a wave equation—the same type of expression used to describe the motion of waves in a fluid. The solution to a wave equation is called a wave function, or orbital, and is denoted by the lowercase Greek letter psi (ψ). When the square of the wave function, ψ2, is plotted in three-dimensional space, an orbital describes the volume of space around a nucleus that an electron is most likely to occupy. You might therefore think of an orbital as looking like a photograph of the electron taken at a slow shutter speed. In such a photo, the orbital would appear as a blurry cloud, indicating the region of space where the electron has been. This electron cloud doesn’t have a sharp boundary, but for practical purposes we can set the limits by saying that an orbital represents the space where an electron spends 90% to 95% of its time. What do orbitals look like? There are four different kinds of orbitals, denoted s, p, d, and f, each with a different shape. Of the four, we’ll be concerned primarily with s and p orbitals because these are the most common in organic and biological chemistry. An s orbital has a spherical shape, with the nucleus at its center; a p orbital has a dumbbell shape with two parts, or lobes; and four of the five d orbitals have a cloverleaf shape with four lobes. The fifth d orbital is shaped like an elongated dumbbell with a doughnut around its middle." #genchem #chemistry #physics #electrons #orbitals
#Electron Probability Cloud Reel by @glamour_physics (verified account) - Interesting,  isn't it ?

Did you know it ?

☆

•An Electron Cloud is the region of negative charge  surrounding the atomic nucleus. 
It is associated
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GL
@glamour_physics
Interesting, isn't it ? Did you know it ? ☆ •An Electron Cloud is the region of negative charge surrounding the atomic nucleus. It is associated with an atomic orbital. "Electron cloud "was defined around 1925 , when the great Erwin Schrödinger and Werner Heisenberg were seeking a way to describe the uncertainty of the position of electrons in a atom. 1927 Uncertainty principle by Heisenberg 1925/26 Schrödinger Equation ☆▪︎☆▪︎☆ 🌐If u want to know more, WRITE the word HELLO in the comments, and we will do a post about this topic soon. ☆▪︎☆▪︎☆ THANKS FOR WATCHING!!! ☆▪︎☆▪︎☆ Each Video clip credit: Sci Pills/ Simulation Physics ( pinterest) / Geek 3 (Wikimedia) ,& Canva ☆▪︎☆▪︎☆ 🌐CREDIT EDITING @glamour_physics @modernsciencex IF YOU APPRECIATE OUR WORK 🌐FOLLOW @glamour_physics ☆▪︎☆▪︎☆ For more content EDUCATIONAL PURPOSES ONLY 🌐FOLLOW @glamour_physics ☆▪︎☆▪︎☆ For the pics used in this uploaded editing: All Rights And Credits Reserved To Respected Owner (s) Content Is Used For Educational Purposes Only No copyright infringement intended . Copyright issues? DM us. ☆▪︎☆▪︎☆ ⚠️IMPORTANT⚠️ This is the original content of @glamour_physics and @modernsciencex Our work cannot be copied or reposted without our permission ☆▪︎☆▪︎☆ #fisicaquantica #fisica #physicfun #particles #particephysics #bohr #atom #clouds #wavefunction #heisenberg #schrodinger #equation #discover #know #sciencedaily #scienceisfun
#Electron Probability Cloud Reel by @glamour_physics (verified account) - ✨️What does an atom look like?✨️

⬇️⬇️

Did you know?

The structure of the atom, according to Bohr's model and other early 20th-century models, can b
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GL
@glamour_physics
✨️What does an atom look like?✨️ ⬇️⬇️ Did you know? The structure of the atom, according to Bohr's model and other early 20th-century models, can be described in physical terms quite simply: Atomic Nucleus: At the center of the atom is the nucleus, composed of protons (positively charged particles) and neutrons (neutral particles). This nucleus contains most of the atom's mass. Electrons: Electrons are negatively charged particles that orbit the nucleus in specific layers or energy levels. In Bohr's model, these levels are well-defined, and electrons can move between levels by absorbing or emitting energy in the form of photons. Quantum Models: Following Bohr's model, more advanced models incorporating quantum mechanics principles were developed. Let's start discussing atomic orbitals, wave functions, eigenstates, Hilbert space, Heisenberg's uncertainty principle, radial distribution functions, etc. Etc. All of these were introduced following Bohr's atomic model and Scattering Rutherford . These models treat the positions of electrons not as precise orbits but as "probability clouds" that indicate where an electron is most likely to be found at any given time. These initial physical models of the atom laid the groundwork for modern understanding of atomic structure, which continues to evolve with further research and technological developments. ✨️✨️✨️ 🌐Music: Gangsta - Nobody knows (Remixed) 🌐Clips used in this uploaded editing:Atomic Orbitals animation credit: Sci Pills ( YouTube channel) ☆•☆•☆ ☆▪︎☆▪︎☆ 🌐CREDIT COMPOSITION/FORMATTING/ EDITING/FURTHER PROCESSING @glamour_physics @modernsciencex CONTENT USED FOR EDUCATIONAL PURPOSES ONLY ☆•☆•☆ For more insightful content on Science and Astronomy 🌐FOLLOW @glamour_physics ☆▪︎☆▪︎☆ For the pics/clips used in this uploaded editing: All Rights And Credits Reserved To Respected Owner (s) No copyright infringement intended . Copyright issues? DM us. ☆▪︎☆▪︎☆ ⚠️IMPORTANT⚠️ Don't repost without our permission #atom #nuclearphysics #atomic #atomicphysics #fisica #bohr #quantumtheory #quantummechanics #particlephysics Atomo Atoms
#Electron Probability Cloud Reel by @beyond_timespace - ✨💫🤯🛰️This image shows what is often described as the first direct photograph of an electron cloud inside a hydrogen atom-a visual glimpse into quan
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@beyond_timespace
✨💫🤯🛰️This image shows what is often described as the first direct photograph of an electron cloud inside a hydrogen atom—a visual glimpse into quantum probability. Here’s what you’re seeing: The Structure * At the very center, the bright red/yellow spot represents the region where the electron is most likely to be found. * Surrounding it are ring-like, fuzzy blue halos. These aren’t rings of a planet—they’re probability shells, showing where the electron can exist according to quantum mechanics. * The color gradient (red → yellow → green → blue) reflects the probability density: • Red/yellow = high probability • Green = medium • Blue = low Why It Looks Like This This isn’t a photograph in the everyday sense—it's created by a technique called quantum microscope imaging, where scientists use laser pulses to map the electron’s probability distribution around the nucleus. Unlike old textbook pictures of neat circular orbits, this shows the true quantum nature of electrons: not particles circling a nucleus, but a cloud of possibilities. In simple words You’re looking at the atom’s “ghost”—the actual regions where an electron exists, captured for the first time. It’s the shape of uncertainty, made visible.🌀🚀📡🌌☀️🌞🌟🌠💥 #astronomy #astrophotography #universe #space #galaxy #visualart #solarsystem #fyp #foryou #edits #blackhole #spacetimewarp #blackholegravity #einsteinrelativity #cosmicmysteries #gravitydefying #gravitydemo #eventhorizon #viralreels #viralvideos #animation #spaceanimation #supernova #supernovae #demonstration #science #physics #electron #light #lightyear
#Electron Probability Cloud Reel by @math_infinitum - Probability Density for an Electron Passing through Two Narrow Slits

This demonstration shows the quantum mechanical probability distribution of an e
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MA
@math_infinitum
Probability Density for an Electron Passing through Two Narrow Slits This demonstration shows the quantum mechanical probability distribution of an electron passing through two narrow slits, resulting in the formation of an interference pattern. Rather than behaving as a classical particle moving along a single well-defined path, the electron is described by a wave function whose evolution is governed by the Schrödinger equation. As this wave passes through both slits, it spreads out, overlaps with itself, and produces the characteristic alternating regions of high and low probability that define quantum interference. #probability #electron #schrödinger #physics #ProbabilityDensity
#Electron Probability Cloud Reel by @adventure_094 - What you're seeing is not a traditional photograph, but the first direct visualization of an electron's orbital shape. Using advanced quantum microsco
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@adventure_094
What you’re seeing is not a traditional photograph, but the first direct visualization of an electron’s orbital shape. Using advanced quantum microscopy techniques, scientists mapped the probability cloud that describes where an electron is most likely to be found around an atom. In quantum mechanics, electrons do not orbit like planets. Instead, their behavior is described by wave functions, and the orbital represents a statistical distribution of positions rather than a fixed path. This image translates those probabilities into a measurable spatial pattern. The result offers rare experimental confirmation of concepts long predicted by quantum theory. It turns abstract mathematics into observable structure, revealing how the quantum world shapes the matter around us. Source: Nature Physics; Scanning Tunneling Microscopy research; Quantum mechanics literature Shared for informational/Educational purpose only #Quantum #Pitcher #first #time #probably

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