Chemical Behavior & Oxidation States
Tennessine exhibits chemical reactivity characteristic of the post transition family, governed by an electronegativity of n/a and standard valence interactions.
Ts

Tennessine (Ts) is an element with atomic number 117, classified as a post transition. Positioned in Period 7, Group 17, and P-block, its chemical and physical profile is defined by its electron configuration ([Rn]5f¹⁴6d¹⁰7s²7p⁵) and periodic trends.
Simulate concentric quantum energy levels, observe valence electron spins, and examine live atomic clouds in full 3D.
Experiment with Aufbau subshell ordering, explore orbital occupancy, and analyze quantum configuration exceptions.
Tennessine exhibits chemical reactivity characteristic of the post transition family, governed by an electronegativity of n/a and standard valence interactions.
Tennessine is utilized in industrial fabrication, materials engineering, electronic manufacturing, and advanced laboratory research based on its specific thermodynamic properties.
Tennessine does not play a prominent biological role in human biochemistry, existing primarily as a trace element or mineral component in natural ecosystems.
Elements like Tennessine are synthesized through stellar nucleosynthesis and supernovae r-processes. On Earth, Tennessine is concentrated in specific ore deposits or synthesized in nuclear accelerators.
Tennessine (Ts) has an atomic number of 117 and a standard atomic mass of 294 u. It is positioned in Period 7, Group 17, in the P-block, and is classified within the Post-Transition Metal category.
The ground-state electron configuration of Tennessine is [Rn]5f¹⁴6d¹⁰7s²7p⁵. Its 117 electrons are distributed across 7 principal energy levels (2, 8, 18, 32, 32, 18, 7).
Tennessine follows standard Aufbau principle orbital filling. Transition metals and heavy elements optimize their shell filling based on subshell exchange energy and electrostatic stability.
Tennessine is utilized in industrial fabrication, materials engineering, electronic manufacturing, and advanced laboratory research based on its specific thermodynamic properties.