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Free Tin student datasheetPrintable revision sheet with identity, structure, evidence notes, phase behavior, uses, isotopes and review prompts.
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Instant reference

Tin atomic number, mass, electron configuration and key properties

Atomic number
50
Relative atomic mass
118.710
Electron configuration
[Kr] 4d¹⁰ 5s² 5p²
Common oxidation states
+2, +4
Density
7.287 g/cm³
Melting point
505.078 K
Boiling point
2859 K
Crystal near room temperature
β-Sn · tetragonal
ClassificationPost-transition metal
Reference isotope¹²⁰Sn
State contextSolid metal at 20 °C
Evidence noteAtomic, isotope and ordinary physical values are measured/evaluated reference data. The β-Sn viewer is a schematic conventional-cell teaching model based on the reviewed tetragonal structure, not a full crystallographic coordinate reconstruction. Commodity geography is dated and is not treated as elemental occurrence.
Quick answers

Tin: quick answers

How many protons, neutrons and electrons does tin have?

Tin’s atomic number is 50, so every tin atom has 50 protons, and a neutral atom also has 50 electrons. Its most common natural isotope, tin-120, has 70 neutrons (other isotopes have different neutron counts).

What is the symbol for tin?

The chemical symbol for tin is Sn.

Is tin a solid, liquid or gas at room temperature?

Tin is a solid at room temperature (about 25 °C).

What family (group) is tin in?

Tin is a post-transition metal, in group 14, period 5 of the periodic table.

How many valence electrons does tin have?

Tin has 4 valence electrons, the electrons in its outer shell, which matches its position in group 14.

What is the electron configuration of tin?

The ground-state electron configuration of tin is [Kr] 4d¹⁰ 5s² 5p².

Connect the facts

From atomic number to chemistry

Read these as a chain of causes, not as isolated facts. Each step links to the concept hub if you want the underlying idea explained.

Common misconceptionA “tin can” is not a block of tin: most cans are steel protected by a thin tin coating. Tin also has distinct α and β solid allotropes.
Periodic-table position

Tin in its period and family

Tin is in Group 14, Period 5, below germanium and above lead. Its four outer-shell electrons connect it to the carbon-group pattern, but metallic bonding, inert-pair effects and allotropy make tin very different from carbon or silicon.

Interactive Visual Lab

Tin Visual Lab

Decode tin’s tile, rotate a ¹²⁰Sn teaching nucleus and a tetragonal β-tin cell, inspect occupied 5s and 5p probability models, and connect tin to cassiterite, bronze, solder, coatings, recycling and the low-temperature ‘tin pest’ transition.

Overview · structure · orbitals · real world
How to read an element tile

Every mark points to one exact feature

150 2118.710 3Sn 4[Kr] 4d¹⁰ 5s² 5p² 5Tin 6β-Sn · tetragonal 7Solid
1Atomic numberNumber of protons
2Relative atomic massStandard value or bracketed reference mass
3Chemical symbolSn
4Electron configurationGround-state shorthand or evidence-labelled prediction
5Element nameTin
6Structure contextβ-Sn · tetragonal
7Physical-state contextSolid metal at 20 °C

The numbered markers explain the same information system used throughout Element Lookup. Unknown or predicted fields remain visibly labelled rather than being replaced with guesses.

Five things worth remembering

Tin in one minute

01

Atomic number 50 means every tin nucleus contains 50 protons.

02

Neutral tin has the ground-state configuration [Kr] 4d¹⁰ 5s² 5p².

03

White β-tin is the ordinary metallic form near room temperature; pure tin can transform to grey α-tin below about 13.2 °C.

04

Tin’s common oxidation states are +2 and +4.

05

Cassiterite (SnO₂) is the principal tin ore; commodity production and recycling are separate from elemental occurrence.

Atomic structure teaching model

¹²⁰Sn nucleus · neutral Sn

50 p⁺ · 70 n⁰
Nucleus modelNucleon-count teaching view
50 p⁺ + 70 n⁰¹²⁰Sn · schematic nucleus, not a literal nuclear geometry
Electron-count schematicPrincipal-shell populations

Shell rings organize electron counts. They are not electron trajectories or orbital shapes.

Nucleus, shell count and material structure are deliberately separated so one picture is not mistaken for another.
Connect picture → chemistry

2 · 8 · 18 · 18 · 4 electrons

n=12
n=28
n=318
n=418
n=54
Why this electron pattern matters

The occupied 5s model is spherically symmetric and has four radial nodes in a hydrogen-like teaching approximation. The occupied 5p model has the p-orbital angular shape and three radial nodes; x/y/z controls change orientation, not the underlying p shape. These are isolated-atom probability models, not metallic electron paths.

Teaching boundary: the nucleus uses colored spheres to make proton/neutron counts visible; the shell diagram only summarizes principal-shell populations. Neither is a literal picture of electron motion.
Material / molecular structure viewer

β-Sn · tetragonal

White β-tin is tetragonal near room temperature (I4₁/amd); below about 286.35 K pure tin can transform slowly to grey α-tin
β-Sn · tetragonalWhite β-tin is tetragonal near room temperature (I4₁/amd); below about 286.35 K pure tin can transform slowly to grey α-tin
What are you seeing?

White β-tin is tetragonal near room temperature (I4₁/amd); below about 286.35 K pure tin can transform slowly to grey α-tin. The viewer is evidence-aware: measured structures are identified as such; unknown bulk structures stay unknown.

Teaching visualization; not a literal finite sample or thermal trajectory.
Probability-cloud teaching model

5s orbital

One-electron teaching approximation; dots represent sampled probability density, not individual electrons.
Interpretation

What this model does—and does not—show

The occupied 5s model is spherically symmetric and has four radial nodes in a hydrogen-like teaching approximation. The occupied 5p model has the p-orbital angular shape and three radial nodes; x/y/z controls change orientation, not the underlying p shape. These are isolated-atom probability models, not metallic electron paths.

Important: The cloud includes the expected nodal pattern for the named nonrelativistic orbital where applicable. Phase colors are not electric charge. For heavy and superheavy elements, relativistic/many-electron effects make these only teaching approximations.
Real-world archive

Where do I meet tin?

Clickable learning cards connect the element to materials, environment, technology, biology or research - depending on what the evidence actually supports.

Coat
Tinplate

Tinplate

A thin tin coating protects steel cans and other products from corrosion while keeping the strength of the steel substrate.

Ancient worldTin alloyed with copper made bronze, one of the materials that defined the Bronze Age.
18th-19th centuriesTin mining and trade remained strategically important, including long histories in Cornwall and Southeast Asia.
Modern metallurgyTinplate, solder and float-glass technology expanded tin’s industrial roles.
TodayTin is used in coatings, alloys, electronics and specialty compounds while recycling contributes secondary supply.
Evidence principleAtomic, isotope and ordinary physical values are measured/evaluated reference data. The β-Sn viewer is a schematic conventional-cell teaching model based on the reviewed tetragonal structure, not a full crystallographic coordinate reconstruction. Commodity geography is dated and is not treated as elemental occurrence.
Signature science

Tin pest: one element, two very different solids

Tin’s low-temperature allotrope change is a signature example of structure controlling material behavior.

Evaluated

Grey α-Sn

Below the equilibrium transition, pure tin can favor a diamond-type grey allotrope with very different properties.

Reference properties

Tin properties: atomic, physical, thermal and chemical

Categories follow the science of this element rather than a fixed decorative template. Each row carries condition/provenance context and an evidence label; unknown values stay unknown.

PropertyValueContext / provenanceEvidence
Atomic number50Source-reviewed; see Sources belowEvaluated
Relative atomic mass118.710Source-reviewed; see Sources belowEvaluated
Ground-state electron configuration[Kr] 4d¹⁰ 5s² 5p²Source-reviewed; see Sources belowEvaluated
Group / period / blockGroup 14 · Period 5 · p-blockPeriodic-table placementEvaluated
Electronegativity1.96Source-reviewed; see Sources belowEvaluated
Reference isotope¹²⁰SnSource-reviewed; see Sources belowEvaluated
PropertyValueContext / provenanceEvidence
State contextSolid metal at 20 °CSource-reviewed; see Sources belowEvaluated
Density7.287 g/cm³Source-reviewed; see Sources belowEvaluated
Material / molecular structureβ-Sn · tetragonalWhite β-tin is tetragonal near room temperature (I4₁/amd); below about 286.35 K pure tin can transform slowly to grey α-tinMeasured
ClassificationPost-transition metalPeriodic-table / chemistry classificationEvaluated
Structure-model scopeWhite β-tin is tetragonal near room temperature (I4₁/amd); below about 286.35 K pure tin can transform slowly to grey α-tinTeaching visualization; exact crystallographic coordinates are not implied unless stated.Reviewed
PropertyValueContext / provenanceEvidence
Melting / transition reference505.078 KSource-reviewed; see Sources belowEvaluated
Boiling / gas reference2859 KSource-reviewed; see Sources belowEvaluated
Phase-path contextOn this approximate standard-pressure teaching path for pure tin, grey α-tin is favored below about 286.35 K, metallic β-tin above that transition until melting at 505.078 K, liquid tin extends to about 2859 K, and gas lies above. The α↔β conversion can be kinetically slow and impurity-sensitive.Shared phase registry drives the slider, regions and markers.Evaluated
Condition warningTemperature and pressure define phase behavior; purity/allotropy may matter.Teaching condition statementReviewed
PropertyValueContext / provenanceEvidence
Ordinary electrical behaviorMetallic conductorQualitative bulk behavior; exact resistivity depends on temperature, purity and alloy state.Measured
Conduction modelCollective solid-state electronsDo not interpret isolated-atom orbital clouds as literal current paths.Reviewed
Surface / compound caveatOxides, salts and alloys can behave differently from the pure metalMaterial contextReviewed
Engineering valuesCondition-dependentUse condition-specific materials data for engineering calculations.Reviewed
PropertyValueContext / provenanceEvidence
Common oxidation states+2 and +4Source-reviewed; see Sources belowEvaluated
Ion / common ion contextSn²⁺ / Sn⁴⁺Source-reviewed; see Sources belowEvaluated
Periodic chemistry contextTin is in Group 14, Period 5, below germanium and above lead. Its four outer-shell electrons connect it to the carbon-group pattern, but metallic bonding, inert-pair effects and allotropy make tin very different from carbon or silicon.Element-specific interpretationReviewed
Chemistry cautionElemental form, ions and compounds are distinct chemical objects.Interpretive teaching ruleReviewed
PropertyValueContext / provenanceEvidence
¹²⁰SnStable · ≈32.6% natural abundanceThe most abundant natural tin isotope; 50 protons and 70 neutrons.Evaluated
¹¹⁸SnStable · ≈24.2%The second most abundant natural isotope.Evaluated
Tin isotope familyTen naturally occurring stable/very-long-lived isotopesTin has an unusually rich natural isotope pattern; abundance values are evaluated reference data.Evaluated
Teaching nucleus¹²⁰Sn · 50 protons + 70 neutronsReference isotope used in the nucleus modelReviewed
Temperature explorer

Is Tin a solid, liquid or gas? State at temperature

On this approximate standard-pressure teaching path for pure tin, grey α-tin is favored below about 286.35 K, metallic β-tin above that transition until melting at 505.078 K, liquid tin extends to about 2859 K, and gas lies above. The α↔β conversion can be kinetically slow and impurity-sensitive.

Temperature293 K
Move the slider
The shared site-wide phase model controls the track, markers and readout.
Geography and evidence

Where on Earth is Tin found or produced?

World map
2025 commodity contextUSGS Mineral Commodity Summaries 2026 · Tin · 2025
Discovery and history

Who discovered Tin, and when?

Ancient world

Tin alloyed with copper made bronze, one of the materials that defined the Bronze Age.

18th-19th centuries

Tin mining and trade remained strategically important, including long histories in Cornwall and Southeast Asia.

Modern metallurgy

Tinplate, solder and float-glass technology expanded tin’s industrial roles.

Today

Tin is used in coatings, alloys, electronics and specialty compounds while recycling contributes secondary supply.

Process / synthesis context

From cassiterite to tin products: a high-level materials path

1

Tin is commonly sourced from cassiterite-bearing hard-rock or placer deposits; the exact geology varies by region.

2

Mining and mineral processing concentrate tin-bearing minerals before extractive metallurgy.

3

Smelting and refining produce tin metal to product specifications; this page intentionally stays at a high-level industrial overview.

4

Tin then enters coatings, alloys, solder and glassmaking, with recycled tin-bearing scrap contributing secondary supply.

Real-world applications

What is tin used for?

Tinplate & coatings

Tin coatings help protect steel from corrosion in containers and other products.

Solder & electronics

Tin is a major component of many solders used to join electrical and mechanical components.

Bronze and other alloys

Copper-tin bronze and other tin alloys combine useful casting, strength and corrosion properties.

Float glass

Molten tin provides a smooth liquid surface on which flat glass can be formed.

Isotopes

Tin isotopes and natural abundance

¹²⁰Sn

Stable · ≈32.6% natural abundance

The most abundant natural tin isotope; 50 protons and 70 neutrons.

¹¹⁸Sn

Stable · ≈24.2%

The second most abundant natural isotope.

Tin isotope family

Ten naturally occurring stable/very-long-lived isotopes

Tin has an unusually rich natural isotope pattern; abundance values are evaluated reference data.

Learn it, don’t just read it

Five-question Tin check

What is tin’s atomic number?

What is the ordinary metallic allotrope near room temperature?

What is tin’s symbol?

What mineral is the principal tin ore?

What can happen to pure tin below about 13.2 °C?

Questions answered

Tin questions students commonly ask

Each answer starts with the direct fact, then explains the chemistry, evidence or material context so the result is understandable rather than merely memorized.

Is tin an element?

Short answer: Yes. Tin is chemical element 50 with symbol Sn.

A tin can is mostly steel with a thin tin coating. The element itself also has two very different solid forms, so ‘tin’ is a useful reminder that one element can have more than one crystal structure. Cassiterite (SnO₂) is the principal tin ore; commodity production and recycling are separate from elemental occurrence.

Key point: Use the direct answer together with the material, isotope and evidence context shown elsewhere on the page.

What is tin used for?

Short answer: Major uses include tinplate coatings, solder, bronze and other alloys, and the float-glass process.

Tinplate & coatings: Tin coatings help protect steel from corrosion in containers and other products. Solder & electronics: Tin is a major component of many solders used to join electrical and mechanical components. A tin can is mostly steel with a thin tin coating. The element itself also has two very different solid forms, so ‘tin’ is a useful reminder that one element can have more than one crystal structure.

Key point: Always distinguish the pure element from the compound, alloy, isotope or device material that actually performs the application.

What is tin’s electron configuration?

Short answer: The neutral ground-state reference is [Kr] 4d¹⁰ 5s² 5p².

The neutral-atom ground-state reference used on this page is [Kr] 4d¹⁰ 5s² 5p². This is an isolated-atom reference: bonding and ion formation can change which outer electrons are present or chemically active. The listed common oxidation-state context is +2 and +4, which helps connect the atomic configuration to ordinary chemistry without treating electron counting as a single universal rule.

Key point: Electron configuration is a ground-state atomic reference, not a literal picture of every compound.

Does tin tarnish or rust?

Short answer: Tin can oxidize and develop surface films, but “rust” properly refers to iron corrosion products, so tin does not rust in the strict chemical sense.

Tin exposed to air can form oxide-rich surface layers whose composition depends on environment and oxidation state. Such films can slow further attack in many ordinary conditions, which is one reason tin coatings have been useful for protecting other metals. Corrosion behavior still depends on moisture, contaminants, pH, temperature and whether the coating is damaged.

Key point: Use “tin oxidation/corrosion” or “tarnish” rather than iron-specific “rust,” and always keep the environment in the explanation.

Why is tin’s symbol Sn?

Short answer: Sn comes from the Latin name stannum.

Cassiterite (SnO₂) is the principal tin ore; commodity production and recycling are separate from elemental occurrence. Tin is in Group 14, Period 5, below germanium and above lead. Its four outer-shell electrons connect it to the carbon-group pattern, but metallic bonding, inert-pair effects and allotropy make tin very different from carbon or silicon.

Key point: The mechanism matters: connect the observed behavior to electron structure, bonding, phase or the specific material form rather than memorizing the result alone.

What is tin pest?

Short answer: It is the low-temperature transformation of metallic β-tin to grey α-tin in sufficiently pure tin; the rate depends strongly on temperature, purity and nucleation.

Tin pest Below about 13.2 °C, pure white β-tin can slowly convert to brittle grey α-tin. Impurities and kinetics strongly affect the transformation. White β-tin is the ordinary metallic form near room temperature; pure tin can transform to grey α-tin below about 13.2 °C.

Key point: Use the direct answer together with the material, isotope and evidence context shown elsewhere on the page.

Scientific sources and provenance

Scientific sources for Tin

Evidence rule: Atomic, isotope and ordinary physical values are measured/evaluated reference data. The β-Sn viewer is a schematic conventional-cell teaching model based on the reviewed tetragonal structure, not a full crystallographic coordinate reconstruction. Commodity geography is dated and is not treated as elemental occurrence.
Keep the curiosity going

Questions to ask next about Tin

A good element lesson should lead to the next useful question, not end after a list of facts.

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