Photocatalytic hydrogen peroxide (H2O2) synthesis from water and oxygen is a promising alternative to the anthraquinone process, but its efficiency depends on charge separation and reactant transport. Herein, we report a side chain strategy to regulate nanochannel microenvironments of hydrazone-linked covalent organic frameworks (COFs). Four COFs bearing H, OMe, OEt, or OEtOMe groups were prepared using the same benzotrithiophene node and hydrazone-linked framework. The alkoxy side chains tune pore polarity, accessible porosity, electronic properties, and water and oxygen adsorption. Among them, COF-Hz-OEtOMe exhibits the strongest water and oxygen affinity and favorable charge-separation behavior. It achieves an H2O2 production rate of 7240 µmol g-1 h-1 at the optimized catalyst loading in pure water and 22910 µmol g-1 h-1 with benzyl alcohol. A 1 L reactor using tap water and air accumulates 1.42 mM H2O2 after 4 h under natural sunlight. Experiments and theoretical calculations suggest that the conjugated framework promotes charge separation, while the alkoxy-functionalized nanochannels improve reactant adsorption and oxygen activation. Life cycle assessment (LCA) highlights that natural sunlight and larger-scale catalyst synthesis can reduce the calculated climate impact. These results demonstrate that pore-wall side chain engineering provides an effective strategy for regulating charge behavior and reactant transport in porous photocatalysts.
ABSTRACT Photocatalytic hydrogen peroxide (H2O2) generation via sunlight‐driven water and oxygen reduction reactions presents a sustainable alternative to the energy‐intensive anthraquinone process. Although metal–organic frameworks (MOFs) offer tunable platforms for photocatalysis, the influence of metal–ligand microe...
K. C. Ranjeesh, Avanti Chakraborty, Pilar Pena Sánchez et al.· Angewandte Chemie· 0 citations
Photocatalytic oxygen reduction reaction (ORR) is a promising route for sustainable H2O2 synthesis, enabling on-demand production and in situ water remediation, yet it is still hampered by poor charge separation and migration, as well as sluggish O2 adsorption and activation. Herein, salen-based covalent organic polyme...
Jin Song, Shuang Cheng, Yijia Xu et al.· Small· 1 citation
Hydrogen peroxide (H2O2) is a clean oxidant, disinfectant, and candidate liquid energy carrier, yet its industrial manufacture remains dominated by the energy-intensive anthraquinone process. Solar photocatalytic H2O2 synthesis offers a decentralized alternative that could combine water, molecular oxygen, and sunlight...
Hydrogen peroxide photosynthesis from water and oxygen represents a sustainable route toward decentralized chemical manufacturing, yet its efficiency is severely restricted by sluggish water oxidation reaction. Herein, we report an alkaline-triggered keto-form reconstruction strategy in an anthraquinone-based covalent...
Xiang-Cheng Zhang, Na Sun, Shi-Feng Luo et al.· ACS Applied Materials and In...· 0 citations
ABSTRACT Hydrogen peroxide (H2O2), as a green oxidizing medium, can be generated and utilized in situ via an electrochemical–chemical cascade, enabling organic transformations while enhancing efficiency and selectivity. However, balancing high H2O2 production, efficient activation, and selective substrate conversion re...
Xue-Li Mei, Hua-Wei Zhuo, Yu Liu et al.· Advancement of science· 0 citations
Solar-driven photocatalytic oxygen reduction offers a sustainable route for hydrogen peroxide (H2O2) production. However, this process is often limited by the high energy barrier for hydrogen extraction from water, low oxygen solubility and diffusion, and poor selectivity for the two-electron oxygen reduction reaction...
Yuan-Cheng Ji, Yan Zhu, Yang Yang et al.· Journal of Colloid and Inter...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.