分解水
光催化
氮化碳
析氧
背景(考古学)
量子产额
光化学
可见光谱
石墨氮化碳
接受者
材料科学
共轭体系
化学
氮化物
聚合物
纳米技术
催化作用
有机化学
电化学
物理化学
光电子学
物理
古生物学
电极
荧光
生物
量子力学
图层(电子)
凝聚态物理
作者
Asif Hayat,Muhammad Sohail,Usama Anwar,T.A. Taha,Karam S. El‐Nasser,Asma M. Alenad,Abdullah G. Al‐Sehemi,Noweir Ahmad Alghamdi,Omar A. Al‐Hartomy,Mohammed A. Amin,A. Alhadhrami,Arkom Palamanit,Sunil Kumar Baburao Mane,W.I. Nawawi,Zeeshan Ajmal
标识
DOI:10.1016/j.jcis.2022.05.139
摘要
Well-organized water splitting semiconducting photocatalyst is an important concept, but stimulating aimed at decisive energy and environmental emergencies. In this context, visible light-based photocatalytic water splitting with low-dimensional semiconducting materials is proposed to produce sustainable energy. Here we optimized the sequential of organic electron-rich heterocyclic monomer namely benzothiadiazole (BTD) quenched within polymeric carbon nitride (PCN) semiconductor via copolymerization, thereby assembling a sanctum of donor-π-acceptor (D-π-A) photocatalysts. The selection of BTD is based on the benzene ring, which consequently anticipating a π cross-linker unit for hydrogen and oxygen evolution. A hydrogen evolution rates (HER) of 88.2 μmol/h for pristine PCN and 744.2 μmol/h for PCN-BTD008 (eight times higher than pure PCN) are observed. Additionally, a remarkable apparent quantum yield (AQY) of about 58.6% at 420 nm has been observed for PCN-BTD008. Likewise, the oxygen evolution rate (OER) data reflect the generation of 0.2 μmol/h1 (visible) and 1.6 μmol/h1 (non-visible) for pure PCN. Though, OER of PCN-BTD008 is found to be 2.2 μmol/h1 (visible) and 14.8 μmol/h1 (non-visible), which are economically better than pure PCN. As such, the results show an important step toward modifying the design and explain a vital part of the D-π-A scheme at a balanced theme for fruitful photocatalysts intended for future demand.
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