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Free Titanium student datasheetPrintable revision sheet with identity, structure, evidence notes, phase behavior, uses, isotopes and review prompts.
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Titanium atomic number, mass, electron configuration and key properties

Atomic number
22
Relative atomic mass
47.867
Electron configuration
[Ar] 3d² 4s²
Common oxidation state
+4
Density
4.506 g/cm³
Melting point
1943 K
Boiling point
3560 K
Crystal near room temperature
α-Ti · HCP
ClassificationTransition metal
Reference isotope⁴⁸Ti
State contextSolid metal at 20 °C
Evidence noteAtomic/isotope and ordinary physical values are measured/evaluated. The HCP viewer is a conventional-cell teaching schematic based on the reviewed room-temperature structure; the 1155 K α→β boundary is an ambient-pressure equilibrium reference. Commodity layers keep mineral concentrates, pigment and sponge-metal datasets distinct.
Quick answers

Titanium: quick answers

How many protons, neutrons and electrons does titanium have?

Titanium’s atomic number is 22, so every titanium atom has 22 protons, and a neutral atom also has 22 electrons. Its most common natural isotope, titanium-48, has 26 neutrons (other isotopes have different neutron counts).

What is the symbol for titanium?

The chemical symbol for titanium is Ti.

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

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

What family (group) is titanium in?

Titanium is a transition metal, in group 4, period 4 of the periodic table.

What is the electron configuration of titanium?

The ground-state electron configuration of titanium is [Ar] 3d² 4s².

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 misconceptionTitanium metal and titanium dioxide are not the same material. TiO₂ dominates pigment use, while titanium metal/alloys are selected for strength-to-weight and corrosion resistance.
Periodic-table position

Titanium in its period and family

Titanium is a Group 4, Period 4 d-block metal between scandium and vanadium. Its early-transition-metal electron structure supports several oxidation states, with +4 especially important in compounds such as TiO₂.

Interactive Visual Lab

Titanium Visual Lab

Decode titanium’s tile, rotate a ⁴⁸Ti teaching nucleus and HCP α-titanium cell, inspect occupied 4s and named 3d orbital models, then connect titanium to rutile/ilmenite, aerospace alloys, implants, corrosion resistance and the α↔β structural transition.

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

Every mark points to one exact feature

122 247.867 3Ti 4[Ar] 3d² 4s² 5Titanium 6α-Ti · HCP 7Solid
1Atomic numberNumber of protons
2Relative atomic massStandard value or bracketed reference mass
3Chemical symbolTi
4Electron configurationGround-state shorthand or evidence-labelled prediction
5Element nameTitanium
6Structure contextα-Ti · HCP
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

Titanium in one minute

01

Atomic number 22 means every titanium nucleus contains 22 protons.

02

The neutral ground-state reference is [Ar] 3d² 4s².

03

Pure titanium is HCP (α-Ti) near room temperature and becomes BCC (β-Ti) near 1155 K at ambient pressure.

04

⁴⁸Ti is the most abundant natural titanium isotope.

05

Most titanium consumption is in TiO₂ products, while titanium metal is valuable where low density, strength and corrosion resistance matter.

Atomic structure teaching model

⁴⁸Ti nucleus · neutral Ti

22 p⁺ · 26 n⁰
Nucleus modelNucleon-count teaching view
22 p⁺ + 26 n⁰⁴⁸Ti · 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 · 10 · 2 electrons

n=12
n=28
n=310
n=42
Why this electron pattern matters

The occupied 4s model and two named 3d angular forms are shown separately. A 3d subshell contains five spatial orbitals; 3d z² and 3d xy are representative members rather than ‘the’ shape of all 3d electrons. These are isolated-atom probability models, not bands in solid titanium.

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

α-Ti · HCP

Pure titanium is hexagonal close-packed near room temperature (P6₃/mmc) and transforms to β-Ti BCC near 1155 K at ambient pressure
α-Ti · HCPPure titanium is hexagonal close-packed near room temperature (P6₃/mmc) and transforms to β-Ti BCC near 1155 K at ambient pressure
What are you seeing?

Pure titanium is hexagonal close-packed near room temperature (P6₃/mmc) and transforms to β-Ti BCC near 1155 K at ambient pressure. 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

4s orbital

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

What this model does—and does not—show

The occupied 4s model and two named 3d angular forms are shown separately. A 3d subshell contains five spatial orbitals; 3d z² and 3d xy are representative members rather than ‘the’ shape of all 3d electrons. These are isolated-atom probability models, not bands in solid titanium.

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 titanium?

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

Aero
Aerospace

Aerospace

Titanium alloys combine high strength-to-weight ratio, fatigue performance and temperature capability in aircraft and spacecraft structures and engines.

1791William Gregor analyzed black sand from Cornwall and recognized the oxide of an unknown metal.
1795Martin Heinrich Klaproth confirmed the element and named it titanium after the Titans of Greek mythology.
1910Matthew Hunter produced high-purity titanium metal using a chemical reduction route.
20th centuryThe Kroll process enabled industrial titanium production and helped establish aerospace and corrosion-resistant applications.
Evidence principleAtomic/isotope and ordinary physical values are measured/evaluated. The HCP viewer is a conventional-cell teaching schematic based on the reviewed room-temperature structure; the 1155 K α→β boundary is an ambient-pressure equilibrium reference. Commodity layers keep mineral concentrates, pigment and sponge-metal datasets distinct.
Signature science

Crystal transition + passivation explain titanium’s materials identity

Titanium combines a solid-state α↔β transition with a protective oxide film that strongly shapes real-world performance.

Measured

HCP solid

Near room temperature titanium is in the α phase with a hexagonal close-packed structure.

Reference properties

Titanium 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 number22Source-reviewed; see Sources belowEvaluated
Relative atomic mass47.867Source-reviewed; see Sources belowEvaluated
Ground-state electron configuration[Ar] 3d² 4s²Source-reviewed; see Sources belowEvaluated
Group / period / blockGroup 4 · Period 4 · d-blockPeriodic-table placementEvaluated
Electronegativity1.54Source-reviewed; see Sources belowEvaluated
Reference isotope⁴⁸TiSource-reviewed; see Sources belowEvaluated
PropertyValueContext / provenanceEvidence
State contextSolid metal at 20 °CSource-reviewed; see Sources belowEvaluated
Density4.506 g/cm³Source-reviewed; see Sources belowEvaluated
Material / molecular structureα-Ti · HCPPure titanium is hexagonal close-packed near room temperature (P6₃/mmc) and transforms to β-Ti BCC near 1155 K at ambient pressureMeasured
ClassificationTransition metalPeriodic-table / chemistry classificationEvaluated
Structure-model scopePure titanium is hexagonal close-packed near room temperature (P6₃/mmc) and transforms to β-Ti BCC near 1155 K at ambient pressureTeaching visualization; exact crystallographic coordinates are not implied unless stated.Reviewed
PropertyValueContext / provenanceEvidence
Melting / transition reference1943 KSource-reviewed; see Sources belowEvaluated
Boiling / gas reference3560 KSource-reviewed; see Sources belowEvaluated
Phase-path contextAt approximately ambient pressure, pure titanium is α-HCP below about 1155 K, β-BCC from about 1155 K to the 1943 K melting point, liquid to about 3560 K, and gaseous above. High-pressure titanium phases are outside this temperature-only teaching track.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+4 common; +3 also importantSource-reviewed; see Sources belowEvaluated
Ion / common ion contextTi⁴⁺Source-reviewed; see Sources belowEvaluated
Periodic chemistry contextTitanium is a Group 4, Period 4 d-block metal between scandium and vanadium. Its early-transition-metal electron structure supports several oxidation states, with +4 especially important in compounds such as TiO₂.Element-specific interpretationReviewed
Chemistry cautionElemental form, ions and compounds are distinct chemical objects.Interpretive teaching ruleReviewed
PropertyValueContext / provenanceEvidence
⁴⁸TiStable · ≈73.7% natural abundanceThe dominant natural titanium isotope; 22 protons and 26 neutrons.Evaluated
⁴⁶Ti / ⁴⁷TiStable · minor natural isotopesTogether they contribute a significant minority of natural titanium.Evaluated
⁴⁹Ti / ⁵⁰TiStable · minor natural isotopesFive stable isotopes make up natural titanium.Evaluated
Teaching nucleus⁴⁸Ti · 22 protons + 26 neutronsReference isotope used in the nucleus modelReviewed
Temperature explorer

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

At approximately ambient pressure, pure titanium is α-HCP below about 1155 K, β-BCC from about 1155 K to the 1943 K melting point, liquid to about 3560 K, and gaseous above. High-pressure titanium phases are outside this temperature-only teaching track.

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

Where on Earth is Titanium found or produced?

World map
Selected producersUSGS Mineral Commodity Summaries 2026 · Titanium mineral concentrates · 2025
Discovery and history

Who discovered Titanium, and when?

1791

William Gregor analyzed black sand from Cornwall and recognized the oxide of an unknown metal.

1795

Martin Heinrich Klaproth confirmed the element and named it titanium after the Titans of Greek mythology.

1910

Matthew Hunter produced high-purity titanium metal using a chemical reduction route.

20th century

The Kroll process enabled industrial titanium production and helped establish aerospace and corrosion-resistant applications.

Process / synthesis context

From titanium minerals to metal and TiO₂: a high-level materials path

1

Titanium occurs mainly in minerals such as ilmenite and rutile rather than as native metal.

2

Mineral processing upgrades titanium-bearing feedstocks for pigment or metal-production routes.

3

Titanium metal production uses chemical conversion and reduction steps because oxygen and nitrogen strongly affect hot titanium; this page keeps the route conceptual.

4

Metal enters alloys and fabricated products, while TiO₂ follows a separate high-volume pigment/materials chain.

Real-world applications

What is titanium used for?

Aerospace alloys

Titanium alloys are used where high strength, relatively low density and temperature/corrosion performance justify their cost.

Medical implants

Titanium and selected alloys are widely used for orthopedic and dental implants.

Marine and chemical equipment

Corrosion resistance supports heat exchangers, desalination and chemical-process equipment.

TiO₂ products

Titanium dioxide is a major white pigment used in paints, plastics, paper and other materials.

Isotopes

Titanium isotopes and natural abundance

⁴⁸Ti

Stable · ≈73.7% natural abundance

The dominant natural titanium isotope; 22 protons and 26 neutrons.

⁴⁶Ti / ⁴⁷Ti

Stable · minor natural isotopes

Together they contribute a significant minority of natural titanium.

⁴⁹Ti / ⁵⁰Ti

Stable · minor natural isotopes

Five stable isotopes make up natural titanium.

Learn it, don’t just read it

Five-question Titanium check

What is titanium’s atomic number?

What is pure titanium’s room-temperature crystal structure?

What happens near 1155 K at ambient pressure?

Which isotope dominates natural titanium?

Which statement is correct?

Questions answered

Titanium 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.

What is titanium?

Short answer: Titanium is chemical element 22, a Group 4 transition metal.

Atomic number 22 means every titanium nucleus contains 22 protons. In the periodic table, Titanium is classified here as a transition metal in Period 4 and Group 4. Titanium is a Group 4, Period 4 d-block metal between scandium and vanadium. Its early-transition-metal electron structure supports several oxidation states, with +4 especially important in compounds such as TiO₂.

Key point: Ti is element 22; its periodic position and electron structure explain the rest of the page.

What is titanium used for?

Short answer: Important uses include aerospace alloys, medical implants, marine/chemical equipment and, through TiO₂, pigments and functional coatings.

Aerospace alloys: Titanium alloys are used where high strength, relatively low density and temperature/corrosion performance justify their cost. Medical implants: Titanium and selected alloys are widely used for orthopedic and dental implants. Titanium metal and titanium dioxide are not interchangeable. The metal drives aerospace, marine and implant applications; TiO₂ is the much larger-volume pigment and functional material used in paints and other products.

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

What color is titanium?

Short answer: Clean titanium metal is silvery-grey with metallic luster; surface oxide films can also produce interference colors.

The ordinary elemental-material description used here is: Solid metal at 20 °C. 1910 Matthew Hunter produced high-purity titanium metal using a chemical reduction route.

Key point: Elemental appearance can differ from the colors of its ions, compounds, oxide films or host materials.

Does titanium conduct electricity?

Short answer: Yes, titanium metal conducts electricity, although less strongly than highly conductive metals such as copper.

Titanium is a Group 4, Period 4 d-block metal between scandium and vanadium. Its early-transition-metal electron structure supports several oxidation states, with +4 especially important in compounds such as TiO₂. Most titanium consumption is in TiO₂ products, while titanium metal is valuable where low density, strength and corrosion resistance matter.

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.

Where is titanium found?

Short answer: It is widespread in rocks and occurs in minerals including ilmenite and rutile; industrial supply comes from mineral concentrates rather than native titanium metal.

Titanium occurs mainly in minerals such as ilmenite and rutile rather than as native metal. The Geography Explorer keeps natural occurrence separate from resources, industrial production and recycling, because those datasets answer different questions about titanium.

Key point: Natural occurrence, resources, production and recycling are different geography questions.

What happens to titanium near 1155 K?

Short answer: At ambient pressure pure titanium transforms from the low-temperature α-HCP structure to the high-temperature β-BCC structure.

Pure titanium is hexagonal close-packed near room temperature (P6₃/mmc) and transforms to β-Ti BCC near 1155 K at ambient pressure. Pure titanium is HCP (α-Ti) near room temperature and becomes BCC (β-Ti) near 1155 K at ambient pressure.

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 Titanium

Evidence rule: Atomic/isotope and ordinary physical values are measured/evaluated. The HCP viewer is a conventional-cell teaching schematic based on the reviewed room-temperature structure; the 1155 K α→β boundary is an ambient-pressure equilibrium reference. Commodity layers keep mineral concentrates, pigment and sponge-metal datasets distinct.
Keep the curiosity going

Questions to ask next about Titanium

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

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