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Repercussion of Solid state vs. Liquid state synthesized p-n heterojunction RGO-copper phosphate on proton reduction potential in water

机译:固态与液态合成的p-n异质结RGO-磷酸铜对水中质子还原潜能的影响

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摘要

The same copper phosphate catalysts were synthesized by obtaining the methods involving solid state as well as liquid state reactions in this work. And then the optimised p-n hybrid junction photocatalysts have been synthesized following the same solid/liquid reaction pathways. The synthesized copper phosphate photocatalyst has unique rod, flower, caramel-treat-like morphology. The Mott-Schottky behavior is in accordance with the expected behavior of n-type semiconductor and the carrier concentration was calculated using the M-S analysis for the photocatalyst. And for the p-n hybrid junction of 8RGO-Cu3(PO4)2-PA (PA abbreviated for photoassisted synthesis method), 8RGO-Cu3(PO4)2-EG(EG abbreviated for Ethylene Glycol based synthesis method), 8RGO-Cu3(PO4)2-PEG (PEG abbreviated for Poly(ethylene glycol)-block-poly(propylene glycol)-block-poly(ethylene glycol based synthesis method)the amount of H2 synthesized was 7500, 6500 and 4500 µmol/h/g, respectively. The excited electrons resulting after the irradiation of visible light on the CB of p-type reduced graphene oxide (RGO) migrate easily to n-type Cu3(PO4)2 via. the p-n junction interfaces and hence great charge carrier separation was achieved.
机译:通过获得涉及固态和液态反应的方法,合成了相同的磷酸铜催化剂。然后按照相同的固/液反应途径合成了优化的p-n杂化结光催化剂。合成的磷酸铜光催化剂具有独特的棒状,花状,焦糖状的形态。 Mott-Schottky行为符合n型半导体的预期行为,并且使用M-S分析对光催化剂计算载流子浓度。对于8RGO-Cu3(PO4)2-PA(光辅助合成法缩写为PA)的pn杂合结,8RGO-Cu3(PO4)2-EG(乙二醇为合成方法,缩写为EG),8RGO-Cu3(PO4) )2-PEG(基于聚乙二醇(PEG)-嵌段-聚(丙二醇)-嵌段-聚(乙二醇的合成方法的缩写PEG))的H2合成量分别为7500、6500和4500 µmol / h / g在p型还原氧化石墨烯(RGO)的CB上可见光照射后产生的激发电子容易通过pn结界面迁移到n型Cu3(PO4)2,因此实现了很大的电荷载流子分离。

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