105 Db Dubnium 268*
Transition metal d-block Period 7 Group 5 Radioactive Synthetic

Dubnium

Db · Element 105 · Vanadium group

Named after Dubna, the Russian town where much of superheavy chemistry was pioneered.

STATE AT 20°C Solid
ATOMIC MASS 268 u
ELECTRON CONFIGURATION [Rn] 5f¹⁴ 6d³ 7s²

Structure

The dubnium atom

Not a diagram of dots on rings — a Monte-Carlo sample of the actual probability density |ψ|² for each occupied subshell. Drag to rotate. Blue and violet mark opposite signs of the wavefunction, which is what makes bonding possible.

Orbital cloud

Measured values

Property sheet

Every bar shows where dubnium sits among all 118 elements for that property.

Physical

Density 29.3 g/cm³~ 96%
Melting point
Boiling point
Specific heat
Thermal conductivity

Atomic

Atomic radius 247 pm~ 85%
Covalent radius 149 pm
Van der Waals radius 247 pm~

Electronic

Electronegativity
Ionisation energy 665.7 kJ/mol 47%
Electron affinity

Occurrence

Abundance in crust 0 mg/kg 0%

Identity

SymbolDb
Atomic number105
Atomic mass268 u
CategoryTransition metal
Blockd
Crystal structureunknown
Oxidation states+5
Discovered1967
Discovered byJINR Dubna & Berkeley

Sources: IUPAC 2021 standard atomic weights · CRC Handbook of Chemistry and Physics · NIST. Values marked ~ are predicted rather than measured.

Size, to scale

How big is a dubnium atom?

Radius 247 pm — that is 0.247 nm, so about 2024 million of them side by side would span a millimetre.

Thermal range

Solid, liquid, gas — and when

Neither transition has been measured for dubnium — too few atoms have ever existed at once.

Where it sits

Position in the table

Dubnium sits in period 7, group 5. Everything in group 5 shares the same outer-electron count, which is why they behave so similarly.

OTHER TRANSITION METALS

All transition metals

The story

What dubnium is, and how we found it

Named after Dubna, the Russian town where much of superheavy chemistry was pioneered.

The discovery of dubnium

Cold War Scientific Competition (1967-1970)

Dubnium's discovery became another intense Cold War rivalry between Soviet scientists at Dubna and American researchers at Berkeley. Both teams claimed priority in creating element 105, leading to competing names and a decades-long controversy resolved by international committee.

Soviet Dubna Claims

In 1967, Georgy Flerov's team at the Joint Institute for Nuclear Research reported creating element 105 by bombarding americium-243 with neon-22 ions. They proposed naming it "nielsbohrium" after Danish physicist Niels Bohr, pioneer of atomic structure theory.

Berkeley Laboratory Response

In 1970, Albert Ghiorso's team at Berkeley Lab reported independent synthesis using berkelium-249 bombarded with nitrogen-15 ions. They proposed "hahnium" honoring German chemist Otto Hahn, discoverer of nuclear fission, creating a diplomatic naming dilemma.

International Resolution

IUPAC resolved the controversy by adopting "dubnium" in 1997, honoring the Russian research city Dubna where the Joint Institute for Nuclear Research is located. This decision recognized both teams' contributions while selecting a geographically neutral name.

Modern Validation

Recent advanced detection techniques have confirmed dubnium's properties and enabled discovery of new isotopes, including the 2025 identification of dubnium-255 with detailed fission studies, validating theoretical predictions about superheavy nuclear behavior.

Applications

What dubnium is used for

Superheavy Element Chemistry Research

Dubnium serves as a crucial test subject for understanding chemical periodicity in superheavy elements, helping scientists determine how chemical properties change under extreme nuclear charge conditions. Research focuses on validating theoretical predictions about Group 5 chemistry in the superheavy region.

Nuclear Fission Studies

Scientists use dubnium to investigate spontaneous fission processes and nuclear stability limits. The recent discovery of dubnium-255 provides new insights into odd-Z isotope fission behavior, contributing to understanding of nuclear structure at the limits of atomic existence.

Relativistic Effect Investigation

Dubnium enables groundbreaking studies of relativistic chemistry where electron speeds approach significant fractions of light velocity due to extreme nuclear charge. These studies validate quantum mechanical calculations and predict chemical behavior of even heavier undiscovered elements.

Nuclear Model Validation

Research teams employ dubnium data to test and refine theoretical nuclear models that predict superheavy element properties, stability, and optimal synthesis pathways. This research guides future attempts to create elements in the predicted "island of stability."

Advanced Synthesis Technique Development

Dubnium studies drive innovation in superheavy element production methods, including optimization of ion beam energies, target preparation techniques, and separation chemistry for isolating individual atoms from complex reaction products.

World-Class Research Facility Applications

Dubnium applications remain confined to elite nuclear research laboratories including GSI Helmholtz Centre, Berkeley Lab, RIKEN, and the Flerov Laboratory at JINR Dubna. These institutions use dubnium for fundamental superheavy element physics and chemistry research.

Nuclear Spectroscopy Analysis

Research teams utilize dubnium in precision nuclear measurements including alpha-decay spectroscopy, gamma-ray detection, and nuclear lifetime determination. These experiments provide essential data for understanding nuclear structure in the superheavy element region.

Single-Atom Chemical Studies

Scientists perform pioneering atom-at-a-time chemistry with dubnium, investigating chemical properties using advanced chromatography and extraction techniques. These studies represent a leading frontier where individual atoms can be chemically characterized.

Detection Technology Advancement

Dubnium research necessitates development of ultra-sensitive detection systems including magnetic separators, time-of-flight analyzers, and sophisticated particle identification systems that push the boundaries of nuclear instrumentation capabilities.

Where it comes from

Natural occurrence

0 mg/kg of Earth's crust · more abundant than 0% of elements

Exclusively Synthetic Element

Dubnium does not exist naturally anywhere in the universe and can only be created through artificial nuclear synthesis in advanced particle accelerators. This superheavy element represents matter that has never existed naturally since cosmic nucleosynthesis began.

Accelerator-Based Production

Scientists create dubnium by bombarding berkelium-249 targets with nitrogen-15 ions, or by bombarding americium-243 with neon-22 ions in linear accelerators. These fusion reactions require precise energy calibration to overcome enormous electrostatic barriers.

Extremely Short Half-Life

The most stable dubnium isotope, 268Db, has a half-life of only 1.2 days, while most isotopes decay within seconds or minutes. The recently discovered 255Db demonstrates the range of nuclear stability in odd-Z superheavy isotopes.

Individual Atom Production

Worldwide dubnium production is measured in single atoms per synthesis event, with successful experiments producing perhaps 1-5 atoms per hour during optimal runs. Global annual production totals fewer than thousands of atoms across all facilities.

Universal Absence

Unlike elements formed through stellar nucleosynthesis, supernovae, or cosmic ray interactions, dubnium cannot form naturally due to its extremely short half-life and highly specific nuclear reaction requirements. It exists only through human technological achievement.

Handling

Safety

Dubnium is radioactive. It has no stable isotope — every nucleus decays. Handling requires appropriate shielding and licensing.

Severe Radioactivity Hazard

EXTREME CAUTION: Dubnium is a highly radioactive superheavy element that undergoes alpha decay and spontaneous fission, emitting dangerous high-energy particles and neutron radiation. Even microscopic quantities require maximum radiation protection and specialized containment systems.

Alpha Decay and Fission Threats

Dubnium isotopes emit high-energy alpha particles and undergo spontaneous fission, creating multiple radiation hazards including fission fragments, neutrons, and gamma rays. Internal contamination would cause severe radiation poisoning and potentially fatal acute radiation syndrome.

Maximum Containment Requirements

Research requires heavily shielded hot cells, remote handling systems, neutron detection equipment, and continuous multi-parameter radiation monitoring. Personnel must maintain safe distances and use robotic manipulation exclusively when working with dubnium samples.

Long-Term Contamination Hazards

All materials contacting dubnium become high-level radioactive waste requiring specialized long-term storage and monitoring. Contamination creates persistent radiation hazards that must be managed according to the strictest nuclear safety protocols and regulations.

Quick answers

Dubnium: common questions

What is Dubnium?

Dubnium (symbol Db) is element 105 on the periodic table, a transition metal in period 7, group 5. Named after Dubna, the Russian town where much of superheavy chemistry was pioneered. At room temperature it is a solid, and it is radioactive.

What is the electron configuration of Dubnium?

Dubnium's ground-state electron configuration is [Rn] 5f¹⁴ 6d³ 7s², giving 7 occupied shells holding 2, 8, 18, 32, 32, 11, 2 electrons respectively.

What is the atomic mass of Dubnium?

Dubnium has no stable isotope, so it has no standard atomic weight. The figure quoted, 268, is the mass number of its longest-lived known isotope.

How dense is Dubnium?

Dubnium has a density of 29.3 g/cm³. Water is 1.0 g/cm³, so a block of dubnium is about 29.3× heavier.

Who discovered Dubnium, and when?

Dubnium was discovered in 1967 by JINR Dubna & Berkeley. It is named after dubna, Russia.

How common is Dubnium on Earth?

Dubnium does not occur naturally on Earth in any meaningful quantity — it is made in a reactor or an accelerator.

Is Dubnium radioactive?

Yes. Dubnium has no stable isotope — every one of its nuclei decays. It does not occur in usable quantities in nature and must be synthesised.