ONE CHOI — SELECTED WORKS 00
OC/01 — Research

Iodine Capture

A high-entropy ceramic that pulls radioactive iodine out of nuclear-fission byproducts, developed at KAIST's Department of Nuclear & Quantum Engineering as one of three high-school researchers.

Role
Materials research
Timeline
Spring 2024 – Spring 2025
Status
ISEF 2025 Finalist
Overview

Radioactive iodine isotopes are among the more troublesome byproducts of nuclear fission: volatile, long-lived, and hard to contain. The project set out to design a material that adsorbs them and holds on, so they can be safely locked away rather than escaping.

To study the problem beyond what a school lab could support, the three of us reached out to KAIST, where a lab in the Department of Nuclear & Quantum Engineering took us on. My work centered on the adsorbent, a high-entropy ceramic whose deliberately disordered, many-element structure gives iodine somewhere to bind.

Specs
FieldNuclear materials
LabKAIST · NQe
MaterialHigh-entropy ceramic
TargetRadioactive iodine
Capture95.1%, new best
Surface areaup to 190 m²/g
Duration~12 months
Team3 HS researchers
Process
Taking it to a real lab

To study the problem properly, the three of us reached out to KAIST, and a lab in the Department of Nuclear & Quantum Engineering took us on as high-school researchers.

Material design

Chose a high-entropy ceramic for its disordered, defect-rich structure, the kind of surface that gives iodine somewhere to stick.

Machine learning

Trained models on the two- and three-metal adsorption data to predict which of the far larger set of four- and five-metal compositions would be synthesisable and capture iodine best.

Synthesis & testing

Made the material and measured how well it captured iodine, iterating on composition toward better adsorption.

Recognition

The work became our entry at Regeneron ISEF 2025, representing Korea, alongside a national KSEF Gold and the Ricoh Sustainability Award.

Gallery
ISEF Finalist

Regeneron ISEF 2025 Finalist for Korea, a KSEF Gold Award, and the Ricoh Sustainable Development Award. The ceramic captured 95.1% of the iodine, a new best, and the same high-entropy approach extends to other anionic water pollutants, not just radioactive iodine.