Dipole field and locally polarized electric field in asymmetric crystalline carbon nitride for high-efficiency artificial photosynthesis of hydrogen peroxide
Wenying Yu, Fang Chen, Xiaolei Zhang, Na Tian, Na Zhang, Yihe Zhang, Hongwei Huang
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引用次数: 0
Abstract
Artificial photosynthesis of hydrogen peroxide (H2O2) represents a safe, environmentally friendly, and energy-efficient route, but the unestablished charge transfer channels and high surface inertness restrict the overall photocatalytic efficiency. Herein, a highly asymmetric crystalline carbon nitride (MTCN) is developed by synchronous introduction of polar triazole moiety and cyanide group for efficient H2O2 photosynthesis. The construction of intramolecular donor-acceptor structure with remarkable discrete electron distribution, results in synergistic dipole moment augment from 1.5 for symmetric CN to 10.2 for MTCN, achieving efficient directional electron migration to cyanide group occupied tri-s-triazine rings. In-situ irradiation X-ray photoelectron spectroscopy, density functional theory simulations and in situ diffuse reflectance infrared spectroscopy proves that the cyano groups act as reactive sites for O2 reduction, and the as-induced locally polarization can cooperate with dipole field to facilitate the highly-selective two-step single-electron O2 reduction process. Thus, MTCN achieves a H2O2 evolution rate enhancement of over two orders of magnitude, and accumulates a recording H2O2 yield of 70 mmol g-1 under visible light within 8 h, which can be directly applied to the seconds-level decomposition of Rhodamine B. It also holds a sustainable H2O2 generation capability at an ultra-high initial H2O2 concentration of 12.5 mM. The findings present an innovative approach to design efficient and sustainable photosynthesis catalysts via molecular tailoring and polarization field modulation.
期刊介绍:
Nano Energy is a multidisciplinary, rapid-publication forum of original peer-reviewed contributions on the science and engineering of nanomaterials and nanodevices used in all forms of energy harvesting, conversion, storage, utilization and policy. Through its mixture of articles, reviews, communications, research news, and information on key developments, Nano Energy provides a comprehensive coverage of this exciting and dynamic field which joins nanoscience and nanotechnology with energy science. The journal is relevant to all those who are interested in nanomaterials solutions to the energy problem.
Nano Energy publishes original experimental and theoretical research on all aspects of energy-related research which utilizes nanomaterials and nanotechnology. Manuscripts of four types are considered: review articles which inform readers of the latest research and advances in energy science; rapid communications which feature exciting research breakthroughs in the field; full-length articles which report comprehensive research developments; and news and opinions which comment on topical issues or express views on the developments in related fields.