化学
质子化
密度泛函理论
碳纤维
光化学
微型多孔材料
氧化还原
合理设计
氮化碳
机械化学
材料科学
纳米技术
苯并噻唑
半导体
分子
电子结构
计算化学
二硫化碳
作者
Jingru Zhuang,Quanhao Zhang,Chong Wang,Tao Yao,C. P. K. Cheng,Pavlo O. Dral,Oleksandr Savateev
标识
DOI:10.1002/anie.202522677
摘要
Photocharging in carbon nitride materials is emerging as a promising route for light-driven energy storage, yet the nature of the storage sites and their mechanisms remain elusive. Here, we investigate photocharging in poly(heptazine imide) (PHI), focusing on its protonated (H-PHI) and sodium (Na-PHI) forms. Using the photochemical dealkylation of triethylamine, we quantify the density of electron-proton (e-/H+) pairs stored in these materials and define a descriptor, Ne:Nhept, to track photocharging at the molecular level. H-PHI demonstrates superior electron storage and reactivity, attributed to its microporous 2D structure and favorable energetics. Theoretical modeling, combined with spectroscopic analysis, reveals the nature of the active heptazine sites and their transformation during charging. The material retains its structural and functional integrity across multiple cycles, underscoring its stability and recyclability. These insights open new avenues for the rational design of carbon nitride-based semiconductors for light-induced redox applications.
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