NH <sub>3</sub> ‐Guided Low‐Temperature Nanostructural Refinement Boosts Visible‐Light‐Driven H <sub>2</sub> O <sub>2</sub> Synthesis in Ionic Carbon Nitrides

J Jaya Bharti (Department of Colloid Chemistry Max Planck Institute of Colloids and Interfaces 14476 Potsdam Germany) J Jokotadeola Odutola (Chemistry and Advanced Materials, Faculty of Engineering and Natural Sciences Tampere University Tampere 33101 Finland) Z Zahra Hajiahmadi (CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany) K Karlo Nolkemper (Department of Colloid Chemistry Max Planck Institute of Colloids and Interfaces 14476 Potsdam Germany) Z Zhihong Tian (Engineering Research Center for Nanomaterials Henan University Kaifeng P. R. China) H Haijian Tong (Department of Colloid Chemistry Max Planck Institute of Colloids and Interfaces Potsdam Germany) V Vitaliy Shvalagin (Department of Colloid Chemistry Max Planck Institute of Colloids and Interfaces 14476 Potsdam Germany) T Thomas D. Kühne (CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany) T Tero‐Petri Ruoko (Chemistry and Advanced Materials Faculty of Engineering and Natural Sciences Tampere University Tampere FI‐33720 Finland) C Christian Mark Pelicano (Department of Colloid Chemistry)

Abstract

Abstract Solar‐driven oxygen reduction on ionic carbon nitride frameworks presents a compelling strategy for sustainable hydrogen peroxide (H 2 O 2 ) production. Herein, a nanostructural engineering strategy is presented to tailor the morphology and defect chemistry of potassium poly(heptazine imide) (KPHI), enabling extended solar coverage and enhance photocatalytic performance. By incorporating NH 4 Cl into a molten KCl/LiCl eutectic medium, simultaneous nanoscale fragmentation of KPHI crystals and controlled introduction of cyano (–C≡N) defects are achieved. These molecular modifications induce n → π* electronic transitions, facilitate efficient charge separation, and accelerate oxygen reduction reaction kinetics. The optimal catalyst reaches an apparent quantum yield (AQY) of 49% at 410 nm and 5% at 525 nm without the need for cocatalysts, among the highest values reported for metal‐free photocatalyst systems. Transient absorption spectroscopy confirms preferential photoexcited electron localization at –C≡N sites, highlighting their key role in enhancing the charge carrier dynamics. Crucially, autogenous NH 3 pressure is harnessed from NH 4 Cl decomposition to unlock a low‐temperature (500 °C) KPHI variant that delivers analogous performance to its counterpart produced at 600 °C, offering a more sustainable synthetic route. This study elucidates the structure‐activity relationship in ionic carbon nitrides and provides a generalizable approach for controlling their morphology and defect characteristics.

Article Details

Volume / Issue Vol. 38, Issue 7
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

J

Jaya Bharti

Department of Colloid Chemistry Max Planck Institute of Colloids and Interfaces 14476 Potsdam Germany

J

Jokotadeola Odutola

Chemistry and Advanced Materials, Faculty of Engineering and Natural Sciences Tampere University Tampere 33101 Finland

Z

Zahra Hajiahmadi

CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany

K

Karlo Nolkemper

Department of Colloid Chemistry Max Planck Institute of Colloids and Interfaces 14476 Potsdam Germany

Z

Zhihong Tian

Engineering Research Center for Nanomaterials Henan University Kaifeng P. R. China

H

Haijian Tong

Department of Colloid Chemistry Max Planck Institute of Colloids and Interfaces Potsdam Germany

V

Vitaliy Shvalagin

Department of Colloid Chemistry Max Planck Institute of Colloids and Interfaces 14476 Potsdam Germany

T

Thomas D. Kühne

CASUS - Center for Advanced Systems Understanding, Helmholtz-Zentrum Dresden-Rossendorf E.V. (HZDR), Untermarkt 20, Görlitz D-02826, Germany

T

Tero‐Petri Ruoko

Chemistry and Advanced Materials Faculty of Engineering and Natural Sciences Tampere University Tampere FI‐33720 Finland

C

Christian Mark Pelicano

Department of Colloid Chemistry