sözaltı news Science
Science
EN AZ
Molecular makeover brightens organic light near 1,000 nanometers

Molecular makeover brightens organic light near 1,000 nanometers

phys.org 28.08.2026 00:20 5 views
Near-infrared organic light-emitting diodes (OLEDs) that emit about 1,000 nanometers could support biomedical and security technologies. Yet pushing organic light to these longer wavelengths usually causes a steep drop i

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Near-infrared organic light-emitting diodes (OLEDs) that emit about 1,000 nanometers could support biomedical and security technologies. Yet pushing organic light to these longer wavelengths usually causes a steep drop in efficiency.

As the energy gap becomes smaller, molecular vibrations more readily turn excited-state energy into heat rather than light. Researchers from National Taiwan University, National Yang Ming Chiao Tung University, National Taiwan Ocean University and Academia Sinica addressed this problem by redesigning the core of C-shaped organic dyes. They replaced a benzene-centered framework with more electron-rich sulfur- and selenium-containing cores.

The stronger electron-rich character promotes intramolecular charge transfer, shifting emission toward 1,000 nanometers, while the rigid C-shaped structure limits molecular relaxation and reduces nonradiative energy loss. The study is published in Advanced Materials. Among the new dyes, CT-F reached a solid-state photoluminescence quantum yield of 14.3% at 970 nm.

Selenium-containing CT-Se and CT-2Se pushed the emission further into the near-infrared. Importantly, CT-Se showed the most balanced electron and hole transport. This allowed charges to recombine more effectively in an OLED, even though CT-F was intrinsically the brighter fluorescent material.

The researchers then used a hyperfluorescent device design. A highly emissive deuterated platinum complex acted as an energy sensitizer, while the C-shaped dye was added as a separate layer by transfer printing. This preserved the sensitizer's favorable molecular packing and enabled energy transfer to the near-infrared emitter.

The CT-Se device reached 3.07% external quantum efficiency with an emission maximum at exactly 1,000 nm. To reduce residual sensitizer emission, the team added a small amount of the conjugated polymer PM6 as an energy-transfer relay. The optimized device reached 3.56% external quantum efficiency at 995 nm, which the authors report as a record among metal-free organic emitters peaking around 1,000 nm.

Extract — continue reading at the source.

Read full story