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首页> 外文期刊>Solar Energy >Enhanced photocatalytic hydrogen evolution using green carbon quantum dots modified 1-D CdS nanowires under visible light irradiation
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Enhanced photocatalytic hydrogen evolution using green carbon quantum dots modified 1-D CdS nanowires under visible light irradiation

机译:在可见光照射下,使用绿色碳量子点改性1-D Cds纳米线的增强的光催化氢气进化

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Photoluminescent carbon quantum dots (CQD) have drawn intense attention due to its excellent optical properties, strong confinement effect, and good electrical conductivity. However, sustainable synthesis of CQD from green carbon sources and its application in water splitting has not been well explored. Herein, we synthesized CQD from orange peels and embedded them onto one-dimensional (1-D) cadmium sulfide (CdS) nanowires (average diameter 30 nm and length 2-4 mu m) via a facile chemical adsorption method. The synthesized photocatalysts were thoroughly characterized using various spectroscopic, microscopic, diffraction, and photoelectrochemical techniques. The photocatalysts were tested for water-splitting reaction under visible light. The effect of mass fraction of CQD in CdS on water splitting performance has been investigated both in the presence and absence of sacrificial reagents. The reusability of the photocatalyst has also been tested. The optimal catalyst, 0.4CQD/CdS, exhibited the highest H-2 production rate of 309 mmol g(-1)h(-1) (apparent quantum yield of 32.6%) which is 1.5 times higher than that with bare CdS. The excellent photocatalytic performance of CQD/CdS was due to the existence of sulfur vacancies and the formation of cadmium oxide with effective charge transfer and separation. The higher photostability of CQD/CdS compared to that of CdS in three consecutive cycles can be attributed to suppression of photocorrosion of CdS in the presence of CQD.
机译:光致敏碳量子点(CQD)由于其优异的光学性质,强大的限制效果和良好的导电性而引起强烈的关注。然而,从绿色碳源的可持续合成CQD及其在水分裂中的应用并未得到很好的探索。在此,我们通过嵌合化学吸附方法将其从橙皮中合成CQD并将它们嵌入一维(1-D)硫化镉(Cds)纳米线(平均直径30nm和长度2-4μm)上。使用各种光谱,微观,衍射和光电化学技术进行完全表征合成的光催化剂。在可见光下测试光催化剂以进行水分解反应。在牺牲试剂的存在和不存在下,已经研究了CDS在CDS中CDS对水分裂性能的影响。还测试了光催化剂的可重用性。最佳催化剂0.4CQD / Cds,表现出309mmol G(-1)H(-1)的最高H-2生产率(表观量子产率为32.6%),其比裸CD高1.5倍。 CQD / CDS的优异光催化性能是由于硫空位的存在和氧化镉的形成,具有有效的电荷转移和分离。 CQD / Cds与三个连续循环中CD的较高的光稳定性可以归因于CQD存在下CD的光腐蚀。

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