Related Experiment Video
Updated: Jun 9, 2026

Morphology Control for Fully Printable Organic–Inorganic Bulk-heterojunction Solar Cells Based on a Ti-alkoxide and Semiconducting Polymer
Published on: January 10, 2017
Structure-Controlled Cyclopentadithiophene Derived Non-Fullerene Acceptors for Efficient Near-Infrared Organic
Jong-Woon Ha1, Jae-Hyun Kim2, Byoungwook Park3,4
1Department of Materials Engineering and Convergence Technology, Gyeongsang National University, Jinju, Republic of Korea.
None:
High-performance near-infrared (NIR) organic photodetectors are still limited by insufficient absorption beyond 900 nm and the concomitant increase in dark current and noise. Here, we present organic photodetectors based on novel low-bandgap non-fullerene acceptors (NFAs), OC and SC, designed via a molecular strategy that introduces dithieno[3,2-b:2',3'-d]pyran (DTP) and dithieno[3,2-b:2',3'-d]thiopyran (DTTP) as central cores. The resulting PTB7-Th:OC organic photodiodes (OPDs) exhibit well-minimized dark-current densities (∼10-8 A cm-2) under a reverse bias of -2 V and maintain high spectral responsivities across the short-NIR region, reaching 0.4 A W-1 around 900 nm and remaining appreciable up to 1000 nm, leading to an excellent shot-noise-limited specific detectivity exhibiting 2.34 × 1012 Jones. Furthermore, the practical applicability of PTB7-Th:OC-based OPDs is demonstrated in a NIR photoplethysmogram sensor, which delivers stable and clearly resolved signals. Overall, this work highlights DTP/DTTP-based NFAs as promising materials for high-performance NIR-responsive OPDs and provides useful design guidelines for future NIR photodetection applications.
More Related Videos
11:44Using Cyclic Voltammetry, UV-Vis-NIR, and EPR Spectroelectrochemistry to Analyze Organic Compounds
Published on: October 18, 2018
06:08Time-resolved Photophysical Characterization of Triplet-harvesting Organic Compounds at an Oxygen-free Environment Using an iCCD Camera
Published on: December 27, 2018
Related Concept Videos
Photochemical Electrocyclic Reactions: Stereochemistry
Selection Rules: Photochemical Activation
Cycloaddition Reactions: MO Requirements for Photochemical Activation