Thermal imaging using sulfur polymer optics

S Samuel J. Tonkin (College of Science and Engineering) H Harshal D. Patel (College of Science and Engineering) J Jasmine M. M. Pople (College of Science and Engineering) L Le Nhan Pham (College of Science and Engineering) D Daniel J. Lewis B Batool A. Aljubran J Jason R. Gascooke (College of Science and Engineering) C Christopher T. Gibson (Adelaide Microscopy) T Tilak Hewagama D Donald E. Jennings F Frank T. Ferguson M Martin R. Johnston W Witold M. Bloch (College of Science and Engineering) A Alex C. Bissember (School of Natural Sciences─Chemistry) Z Zhongfan Jia (College of Science and Engineering) M Michelle L. Coote (Flinders University , , Bedford Park , ,) J Justin M. Chalker (College of Science and Engineering)

Abstract

Abstract Infrared thermal imaging is used in defence, security cameras, fire detection, planetary science, driver assist capabilities, medical thermography, and other safety applications. Unfortunately, the lenses for infrared cameras are made from expensive or restricted materials such as germanium, silicon, or chalcogenide glass. Furthermore, these inorganic lenses are made by low throughput milling processes, and they are difficult to repair or recycle. There is a need for low cost and sustainable lens materials that can be mass-produced to prescription. Sulfur-derived polymers, made from widely available elemental sulfur, are promising candidates due to their high refractive index and mid-wave infrared (MWIR) and long-wave infrared (LWIR) transparency. However, most of these polymers reported to date are still limited in their LWIR transmittance and the glass transition temperature required for shape persistence. Recently, a polymer containing a sulfurized norbornane microstructure was predicted by Pyun, based on theoretical considerations, to address these issues. However, this polymer has not yet been made due to complex side reactions encountered in previously attempted syntheses. Here, we overcome these challenges and prepare this polymer for the first time, demonstrate methods for high throughput molding and recycling, and validate its use as a lens in a long-wave thermal imaging camera.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 18, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

S

Samuel J. Tonkin

College of Science and Engineering

H

Harshal D. Patel

College of Science and Engineering

J

Jasmine M. M. Pople

College of Science and Engineering

L

Le Nhan Pham

College of Science and Engineering

D

Daniel J. Lewis

B

Batool A. Aljubran

J

Jason R. Gascooke

College of Science and Engineering

C

Christopher T. Gibson

Adelaide Microscopy

T

Tilak Hewagama

D

Donald E. Jennings

F

Frank T. Ferguson

M

Martin R. Johnston

W

Witold M. Bloch

College of Science and Engineering

A

Alex C. Bissember

School of Natural Sciences─Chemistry

Z

Zhongfan Jia

College of Science and Engineering

M

Michelle L. Coote

Flinders University , , Bedford Park , ,

J

Justin M. Chalker

College of Science and Engineering