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Sulfur-doped g-C3N4 for efficient photocatalytic CO2 reduction: insights by experiment and first-principles calculations

机译:Sulfur-doped g-C3N4高效光催化通过实验和二氧化碳还原:见解采用基于计算

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摘要

The development of doped g-C3N4 photocatalyst has demonstrated potential advantages for the artificial photosynthesis of hydrocarbon fuels by utilizing solar energy and CO2. Herein, a new two-dimensional S-doped g-C3N4 (S-CN) was designed and synthesized. S-CN displayed a high CO evolution rate of 16.02 μmol g−1 in water (10 times more than bulk g-C3N4) at a molar ratio of thiourea to DCNA of 0.4. Also, S-CN could maintain its activity for up to 15 h during the stability test. S–C bond formation was revealed for the first time by combining material characterization and density functional theory (DFT) calculations. The S 3p state made an excellent contribution to moving up the conduction band position and altering the S-CN band gap. The doped S atoms caused charge rearrangement and significantly enhanced the electron–hole separation, enhancing the CO2 reduction activity compared to bulk-CN. The present work provides a broadening window for the development of non-metal-doped g-C3N4 with outstanding CO2 photoreduction performance.
机译:掺杂g-C3N4光催化剂的发展潜在的优势人工光合作用的碳氢燃料利用太阳能和二氧化碳。二维S-doped g-C3N4 (S-CN)设计和合成。有限公司进化速率为16.02μ摩尔水(10 g−1倍体积g-C3N4)的摩尔比率硫脲DCNA 0.4。保持其活动期间长达15小时稳定性测试。首次通过结合材料特征和密度泛函理论(DFT)计算。卓越贡献的导带的位置和改变S-CN带隙。重排并显著提高了电子空穴分离,提高二氧化碳减少活动bulk-CN相比。现在的工作提供了一个扩展窗口发展non-metal-doped g-C3N4杰出的二氧化碳光致还原作用的性能。

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