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

Atomic number
64
Relative atomic mass
157.25
Electron configuration
[Xe] 4f⁷ 5d¹ 6s²
Common oxidation states
+3
Density
7.90 g/cm³
Melting point
1586 K
Boiling point
3546 K
Ordinary crystal
HCP near room temperature; BCC at high temperature
ClassificationLanthanide
Reference isotope¹⁵⁸Gd
State contextSilvery lanthanide metal
Evidence noteAtomic identity, reference values and ordinary structures are source-reviewed. Material viewers are teaching representations, not crystallographic refinements. Search demand never overrides measured/evaluated evidence or compound-vs-element distinctions.
Quick answers

Gadolinium: quick answers

How many protons, neutrons and electrons does gadolinium have?

Gadolinium’s atomic number is 64, so every gadolinium atom has 64 protons, and a neutral atom also has 64 electrons. Its most common natural isotope, gadolinium-158, has 94 neutrons (other isotopes have different neutron counts).

What is the symbol for gadolinium?

The chemical symbol for gadolinium is Gd.

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

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

What family (group) is gadolinium in?

Gadolinium is a lanthanide, in period 6 (the f-block row shown below the main table) of the periodic table.

What is the electron configuration of gadolinium?

The ground-state electron configuration of gadolinium is [Xe] 4f⁷ 5d¹ 6s².

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 misconceptionElemental gadolinium, gadolinium compounds and gadolinium-based contrast agents (GBCAs) must be kept separate. GBCAs are chelated gadolinium compounds used in MRI and are distinct from iodinated X-ray/CT contrast agents. Medical safety depends on the specific agent and patient factors.
Periodic-table position

Gadolinium in its period and family

Gadolinium follows europium in the lanthanide series. Gd³⁺ retains the particularly stable half-filled 4f⁷ shell, producing large magnetic moments and distinctive neutron/magnetic behavior.

Interactive Visual Lab

Gadolinium Visual Lab

Explore Gd across the teaching nucleus, isolated-atom orbitals, evidence-aware material structure and temperature/evidence views, then connect those models to uses, isotopes, search-led questions and source-backed context.

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

Every mark points to one exact feature

164 2157.25 3Gd 4[Xe] 4f⁷ 5d¹ 6s² 5Gadolinium 6HCP near room temperature; BCC at high temperature 7Silvery lanthanid…
1Atomic numberNumber of protons
2Relative atomic massStandard value or bracketed reference mass
3Chemical symbolGd
4Electron configurationGround-state shorthand or evidence-labelled prediction
5Element nameGadolinium
6Structure contextHCP near room temperature; BCC at high temperature
7Physical-state contextSilvery lanthanide metal

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

Gadolinium in one minute

01

Atomic number 64 means 64 protons.

02

Neutral Gadolinium has [Xe] 4f⁷ 5d¹ 6s².

03

Its representative teaching isotope is ¹⁵⁸Gd.

04

Elemental gadolinium, gadolinium compounds and gadolinium-based contrast agents (GBCAs) must be kept separate.

05

The ordinary material reference is hcp near room temperature; bcc at high temperature.

Atomic structure teaching model

¹⁵⁸Gd nucleus · neutral Gd

Nucleus modelNucleon-count teaching view
64 p⁺ + 94 n⁰¹⁵⁸Gd · 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 · 25 · 9 · 2 electrons

n=12
n=28
n=318
n=425
n=59
n=62
Why this electron pattern matters

The 4f_xyz, 5d_z2, 6s visuals are isolated-atom probability teaching models. They do not depict electron bands, bonding orbitals or the crystal electronic structure of Gadolinium materials.

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

HCP near room temperature; BCC at high temperature

Gadolinium metal is HCP near room temperature and transforms to BCC at high temperature shortly before melting. The viewer shows the ordinary HCP lattice; the phase track carries the high-temperature transition.
HCP near room temperature; BCC at high temperatureGadolinium metal is HCP near room temperature and transforms to BCC at high temperature shortly before melting. The viewer shows the ordinary HCP lattice; the phase track carries the high-temperature transition.
What are you seeing?

Gadolinium metal is HCP near room temperature and transforms to BCC at high temperature shortly before melting. The viewer shows the ordinary HCP lattice; the phase track carries the high-temperature transition.. 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

4f xyz orbital

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

What this model does—and does not—show

The 4f_xyz, 5d_z2, 6s visuals are isolated-atom probability teaching models. They do not depict electron bands, bonding orbitals or the crystal electronic structure of Gadolinium materials.

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 gadolinium?

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

One
Magnetism

Magnetism

Gadolinium’s half-filled 4f shell gives strong magnetic moments and a magnetic ordering transition near room temperature.

1880Jean Charles Galissard de Marignac observed spectral evidence for a new rare-earth component.
1886Paul-Émile Lecoq de Boisbaudran isolated gadolinium oxide more clearly and the element became established.
NamingGadolinium was named after Johan Gadolin, a pioneer of rare-earth chemistry.
Modern eraGd compounds became important in magnetic, neutron, optical and MRI-contrast technologies.
Evidence principleAtomic identity, reference values and ordinary structures are source-reviewed. Material viewers are teaching representations, not crystallographic refinements. Search demand never overrides measured/evaluated evidence or compound-vs-element distinctions.
Signature science

4f⁷ → large moment → neutron/MRI materials

Elemental gadolinium, gadolinium compounds and gadolinium-based contrast agents (GBCAs) must be kept separate. GBCAs are chelated gadolinium compounds used in MRI and are distinct from iodinated X-ray/CT contrast agents. Medical safety depends on the specific agent and patient factors.

Evaluated

Gd³⁺ 4f⁷

Gd³⁺ retains a half-filled 4f shell and a large magnetic moment.

Reference properties

Gadolinium 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 number64Source-reviewed; see Sources belowEvaluated
Relative atomic mass157.25Source-reviewed; see Sources belowEvaluated
Ground-state electron configuration[Xe] 4f⁷ 5d¹ 6s²Source-reviewed; see Sources belowEvaluated
Group / period / blockGroup Lanthanide · Period 6 · f-blockPeriodic-table placementEvaluated
Electronegativity1.20Source-reviewed; see Sources belowEvaluated
Reference isotope¹⁵⁸GdSource-reviewed; see Sources belowEvaluated
PropertyValueContext / provenanceEvidence
State contextSilvery lanthanide metalSource-reviewed; see Sources belowEvaluated
Density7.90 g/cm³Source-reviewed; see Sources belowEvaluated
Material / molecular structureHCP near room temperature; BCC at high temperatureGadolinium metal is HCP near room temperature and transforms to BCC at high temperature shortly before melting. The viewer shows the ordinary HCP lattice; the phase track carries the high-temperature transition.Measured
ClassificationLanthanidePeriodic-table / chemistry classificationEvaluated
Structure-model scopeGadolinium metal is HCP near room temperature and transforms to BCC at high temperature shortly before melting. The viewer shows the ordinary HCP lattice; the phase track carries the high-temperature transition.Teaching visualization; exact crystallographic coordinates are not implied unless stated.Reviewed
PropertyValueContext / provenanceEvidence
Melting / transition reference1586 KSource-reviewed; see Sources belowEvaluated
Boiling / gas reference3546 KSource-reviewed; see Sources belowEvaluated
Phase-path contextAt approximately standard pressure, gadolinium is HCP through most of its solid range, changes to BCC near 1534 K, melts near 1586 K, and boils near 3546 K.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
Common oxidation states+3Source-reviewed; see Sources belowEvaluated
Ion / common ion contextGd³⁺Source-reviewed; see Sources belowEvaluated
Periodic chemistry contextGadolinium follows europium in the lanthanide series. Gd³⁺ retains the particularly stable half-filled 4f⁷ shell, producing large magnetic moments and distinctive neutron/magnetic behavior.Element-specific interpretationReviewed
Chemistry cautionElemental form, ions and compounds are distinct chemical objects.Interpretive teaching ruleReviewed
PropertyValueContext / provenanceEvidence
¹⁵⁸GdStable natural isotopeMost abundant natural gadolinium isotope.Evaluated
¹⁵⁷GdStable natural isotopeNotable for an exceptionally large thermal-neutron capture cross section.Evaluated
¹⁵²GdVery long-lived natural isotopeRadioactive only on immense timescales.Evaluated
Teaching nucleus¹⁵⁸Gd · 64 protons + 94 neutronsReference isotope used in the nucleus modelReviewed
PropertyValueContext / provenanceEvidence
Page evidence noteAtomic identity, reference values and ordinary structures are source-reviewed. Material viewers are teaching representations, not crystallographic refinements. Search demand never overrides measured/evaluated evidence or compound-vs-element distinctions.Evidence summary for this guideReviewed
Structure evidenceGadolinium metal is HCP near room temperature and transforms to BCC at high temperature shortly before melting. The viewer shows the ordinary HCP lattice; the phase track carries the high-temperature transition.Measured structure, labelled schematic, prediction or explicit unknown as applicable.Reviewed
Map evidence ruleReal pins are reviewed examples; conceptual layers are used when pins would mislead.Geography Explorer 2.0Reviewed
Source set3 primary/reference links listed belowOpen the Sources section for the actual references.Reviewed
Temperature explorer

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

At approximately standard pressure, gadolinium is HCP through most of its solid range, changes to BCC near 1534 K, melts near 1586 K, and boils near 3546 K.

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

Where on Earth is Gadolinium found or produced?

World map
Geneva, SwitzerlandRSC historical context · historical
Discovery and history

Who discovered Gadolinium, and when?

1880

Jean Charles Galissard de Marignac observed spectral evidence for a new rare-earth component.

1886

Paul-Émile Lecoq de Boisbaudran isolated gadolinium oxide more clearly and the element became established.

Naming

Gadolinium was named after Johan Gadolin, a pioneer of rare-earth chemistry.

Modern era

Gd compounds became important in magnetic, neutron, optical and MRI-contrast technologies.

Process / synthesis context

From source material to Gadolinium applications: high-level material path

1

Gadolinium is separated from mixed rare-earth mineral concentrates through industrial rare-earth refining.

2

Purified compounds feed magnetic, neutron, scintillator and medical-contrast manufacturing chains.

3

MRI contrast products use strongly chelated gadolinium compounds under pharmaceutical quality systems; they are not elemental-metal formulations.

4

Recycling/recovery opportunities vary by material system; no pharmaceutical or chemical preparation instructions are provided.

Safety boundary: Elemental gadolinium is not an MRI contrast injection. Questions about GBCA choice, kidney function, pregnancy, prior reactions, retention or individual medical risk require a qualified clinician and the product-specific prescribing information.
Real-world applications

What is gadolinium used for?

MRI contrast agents

Chelated gadolinium compounds are used in selected MRI examinations under medical regulation.

Neutron absorption

Gd-containing materials exploit very strong neutron-capture isotopes.

Magnetic materials

Gadolinium supports magnetocaloric and magnetic-material research.

Scintillators & phosphors

Gd compounds occur in detector, phosphor and ceramic host materials.

Isotopes

Gadolinium isotopes and natural abundance

¹⁵⁸Gd

Stable natural isotope

Most abundant natural gadolinium isotope.

¹⁵⁷Gd

Stable natural isotope

Notable for an exceptionally large thermal-neutron capture cross section.

¹⁵²Gd

Very long-lived natural isotope

Radioactive only on immense timescales.

Learn it, don’t just read it

Five-question Gadolinium check

What is Gadolinium’s atomic number?

Which classification best fits Gadolinium?

What is the representative teaching isotope?

Which statement respects the material evidence?

Which rule should guide real-world uses?

Questions answered

Gadolinium 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 gadolinium?

Short answer: Gadolinium is chemical element 64, a lanthanide metal.

Atomic number 64 means every gadolinium nucleus contains 64 protons. In the periodic table, Gadolinium is classified here as a lanthanide in Period 6 and Group Lanthanide. Gadolinium follows europium in the lanthanide series. Gd³⁺ retains the particularly stable half-filled 4f⁷ shell, producing large magnetic moments and distinctive neutron/magnetic behavior.

Key point: Gd is element 64; its periodic position and electron structure explain the rest of the page.

Is gadolinium a metal?

Short answer: Yes. Elemental gadolinium is a silvery lanthanide metal.

This guide classifies Gadolinium as a lanthanide. Its periodic position is Period 6, f-block, Group Lanthanide. Gadolinium follows europium in the lanthanide series. Gd³⁺ retains the particularly stable half-filled 4f⁷ shell, producing large magnetic moments and distinctive neutron/magnetic behavior.

Key point: Periodic-table classification describes recurring atomic/chemical behavior; it does not make every element in a column physically identical.

What is gadolinium used for?

Short answer: Gadolinium compounds are used in MRI contrast agents, neutron-absorbing materials, scintillators and magnetic-material research.

MRI contrast agents: Chelated gadolinium compounds are used in selected MRI examinations under medical regulation. Neutron absorption: Gd-containing materials exploit very strong neutron-capture isotopes. Elemental gadolinium, gadolinium compounds and gadolinium-based contrast agents (GBCAs) must be kept separate. GBCAs are chelated gadolinium compounds used in MRI and are distinct from iodinated X-ray/CT contrast agents. Medical safety depends on the specific agent and patient factors.

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

Does gadolinium contain iodine?

Short answer: No. Gadolinium is element 64. Gadolinium-based MRI contrast agents are chemically distinct from iodinated X-ray/CT contrast agents.

Elemental gadolinium, gadolinium compounds and gadolinium-based contrast agents (GBCAs) must be kept separate. GBCAs are chelated gadolinium compounds used in MRI and are distinct from iodinated X-ray/CT contrast agents. Medical safety depends on the specific agent and patient factors. Elemental gadolinium, gadolinium compounds and gadolinium-based contrast agents (GBCAs) must be kept separate.

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

Is gadolinium contrast safe?

Short answer: Approved GBCAs have established benefits and known risks, including retention and special kidney-related cautions. The appropriate agent and risk assessment are medical decisions for qualified clinicians.

Elemental gadolinium is not an MRI contrast injection. Questions about GBCA choice, kidney function, pregnancy, prior reactions, retention or individual medical risk require a qualified clinician and the product-specific prescribing information.

Key point: Safety claims must be substance- and exposure-specific.

Where is gadolinium found?

Short answer: It occurs mixed with other rare-earth elements in minerals and is separated during rare-earth processing.

Gadolinium is separated from mixed rare-earth mineral concentrates through industrial rare-earth refining. The Geography Explorer keeps natural occurrence separate from resources, industrial production and recycling, because those datasets answer different questions about gadolinium.

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

Who discovered gadolinium?

Short answer: Spectral evidence was reported by de Marignac in 1880; later isolation work helped establish the element.

In 1880, Jean Charles Galissard de Marignac observed spectral evidence for a new rare-earth component. In 1886, Paul-Émile Lecoq de Boisbaudran isolated gadolinium oxide more clearly and the element became established.

Key point: Discovery credit follows the historical evidence and accepted attribution, not just the earliest claim.

Scientific sources and provenance

Scientific sources for Gadolinium

Evidence rule: Atomic identity, reference values and ordinary structures are source-reviewed. Material viewers are teaching representations, not crystallographic refinements. Search demand never overrides measured/evaluated evidence or compound-vs-element distinctions.
Keep the curiosity going

Questions to ask next about Gadolinium

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

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