首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Self-modified breaking hydrogen bonds to highly crystalline graphitic carbon nitrides nanosheets for drastically enhanced hydrogen production
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Self-modified breaking hydrogen bonds to highly crystalline graphitic carbon nitrides nanosheets for drastically enhanced hydrogen production

机译:自我修饰的破碎氢键与高结晶的石墨碳氮化物纳米型纳米型纳米液,用于急剧增强的氢气产生

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摘要

Highly crystalline graphitic carbon nitride (g-C3N4) possesses the high separation efficiency of photogenerated electron-hole pairs owing to the significantly decreased intralayer hydrogen bonds, which leads to drastic improvement of photocatalytic activity. However, the preparation of such g-C3N4 material remains a challenge by a simple and economic thermal-treatment in a furnace. Herein, we report a novel and effective strategy for high yield synthesis of extremely active crystalline carbon nitride nanosheets (CCNNSs) by two-step calcination without the assistance of any additive or salt intercalation. As expected, the as-prepared CCNNSs exhibit a remarkably high hydrogen evolution rate of 9577.6 pmol h(-1) g(-1) under simulated solar light irradiation, which is 15.5 times than that of bulk g-C3N4, as well as higher than most of the reported crystalline g-C3N4. Moreover, a highly apparent quantum efficiency of 9.01% at 420 nm for hydrogen evolution can be achieved, which is also superior to the reported crystalline g-C3N4. Such two-step calcination approach not only provides an economical way to effectively regulate the crystallinity of bulk g-C3N4, but also achieves the preparation of CCNNSs with high yield. Our research opens up a new window to self-modification and fabrication of highly active metal-free photocatalysts for solar light-driven hydrogen production.
机译:高度结晶的石墨碳氮化物(G-C3N4)具有由于内部氢键显着降低的显着降低的光致电子 - 空穴对的高分离效率,这导致光催化活性的急剧改善。然而,这种G-C3N4材料的制备仍然是炉中简单和经济的热处理的挑战。在此,我们通过两步煅烧报告了一种新的和有效的策略,其通过两步煅烧而没有任何添加剂或盐插入的辅助。如预期的那样,在模拟的太阳光照射下,制备的AS制备的CCNNS在模拟的太阳光照照射下表现出9577.6pmol H(-1)G(-1)的高氢进化速率,这比散装G-C3N4的15.5倍,以及更高比大多数报告的结晶G-C3N4。此外,对于氢进化的420nm,高度表观量子效率为9.01%,其也可以优于报道的结晶G-C3N4。这种两步煅烧方法不仅提供了有效调节散装G-C3N4的结晶度的经济方法,而且还达到了高产率高的CCNNS的制备。我们的研究开辟了一种新的窗口,可自我修饰和制造高活性的无极化光催化剂,用于太阳能闪光氢气产生。

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