Intrinsically charge-generating polymers with long-lived free carriers for efficient photon-to-hydrogen conversion.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41191771.
- Also identified by DOI 10.1126/sciadv.aea4191 and PMC identifier 12588297.
- Licence recorded as CC BY-NC.
- Because redistribution is not established, this page shows the abstract only. Follow the links below for the full text.
Abstract
A single organic semiconductor typically struggles with inefficient intrinsic charge generation due to large binding energy (<i>E</i><sub>B</sub> ≈ 0.5 electron volts) of Frenkel excitons, particularly in narrow-bandgap organic semiconductors that exhibit near-infrared (NIR) absorption. Here, we develop double-cable polymer-based nanoparticles (NPs), enabling single-component organic photocatalysts to achieve NIR photon absorption and generate long-lived free charges simultaneously. <i>as</i>-DCPIC, a double-cable polymer with donor polymer (PBDB-T) as electron-donating conjugated backbones and pendent NIR acceptor (TPDIC) as the electron-deficient side chains, offers potential for self-sustained photoelectric conversion. Consequently, <i>as</i>-DCPIC NPs exhibit significantly enhanced hydrogen evolution performance (11.88 mmol per hour per gram) compared to pristine PBDB-T or TPDIC NPs. Transient absorption spectroscopy elucidates the effective electron-hole separation inside <i>as</i>-DCPIC NPs, whereas decay kinetics monitor the long-lived free carriers (109 nanoseconds) in <i>as</i>-DCPIC NPs. Our findings demonstrate that double-cable polymers provide a powerful platform for establishing efficient single-component organic photocatalysts to generate long-lived reactive charges.