TY - JOUR
T1 - Poly(heptazine imide)
T2 - Crystalline Allotrope of Polymeric Carbon Nitrides for Solar to Chemical Energy Conversion
AU - Zhou, Min
AU - Ou, Honghui
AU - Liu, Zhehao
AU - Jiang, Zhifeng
AU - Yang, Can
AU - Fang, Yuanxing
AU - Wang, Sibo
AU - Zhang, Guigang
AU - Cheng, Jiajia
AU - Hou, Yidong
AU - Wang, Xinchen
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026/3/27
Y1 - 2026/3/27
N2 - Polymeric carbon nitride (PCN), an emerging semiconductor photocatalyst, has drawn intense interest for solar to chemical energy conversion, owing to advantages of metal-free contents, visible-light response, and robust stability. However, the amorphous melon-based PCN formed by conventional thermal-induced polymerization exhibits moderate photocatalytic performance, that is, restricted by its high exciton binding energy. In recent years, poly(heptazine imide) (PHI), a crystalline allotrope of PCN with high crystallinity and visible-light absorption, has been widely investigated in various photocatalytic applications due to its enhanced performance. In this mini-review, we have summarized the progress in the synthesis, modification, and photocatalytic applications of PHI. We have presented the synthetic protocols, electronic structure, and structural identification of PHI. This review summarizes and provides a detailed analysis of four main strategies for modifying PHI: crystal structure, nanostructure, molecular structure, and atomic composition. Finally, the article discusses the challenges and potential future directions for optimizing and advancing the functions of state-of-the-art PHI photocatalysts. These insights are expected to offer valuable perspectives for driving the development of PHI and related conjugated polymers.
AB - Polymeric carbon nitride (PCN), an emerging semiconductor photocatalyst, has drawn intense interest for solar to chemical energy conversion, owing to advantages of metal-free contents, visible-light response, and robust stability. However, the amorphous melon-based PCN formed by conventional thermal-induced polymerization exhibits moderate photocatalytic performance, that is, restricted by its high exciton binding energy. In recent years, poly(heptazine imide) (PHI), a crystalline allotrope of PCN with high crystallinity and visible-light absorption, has been widely investigated in various photocatalytic applications due to its enhanced performance. In this mini-review, we have summarized the progress in the synthesis, modification, and photocatalytic applications of PHI. We have presented the synthetic protocols, electronic structure, and structural identification of PHI. This review summarizes and provides a detailed analysis of four main strategies for modifying PHI: crystal structure, nanostructure, molecular structure, and atomic composition. Finally, the article discusses the challenges and potential future directions for optimizing and advancing the functions of state-of-the-art PHI photocatalysts. These insights are expected to offer valuable perspectives for driving the development of PHI and related conjugated polymers.
KW - conjugated polymer
KW - photocatalysis
KW - poly(heptazine imide)
KW - structural remediation
UR - https://www.scopus.com/pages/publications/105031437425
U2 - 10.1002/anie.1708637
DO - 10.1002/anie.1708637
M3 - 短篇评述
C2 - 41766192
AN - SCOPUS:105031437425
SN - 1433-7851
VL - 65
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
IS - 14
M1 - e1708637
ER -