首页> 外文期刊>CERAMICS INTERNATIONAL >Synergistic utilization of magnetic rGO/NiFe2O4-g-C3N4 S-Scheme heterostructure photocatalyst with enhanced charge carrier separation and transfer: A highly stable and robust photocatalyst for efficient solar fuel (hydrogen) generation
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Synergistic utilization of magnetic rGO/NiFe2O4-g-C3N4 S-Scheme heterostructure photocatalyst with enhanced charge carrier separation and transfer: A highly stable and robust photocatalyst for efficient solar fuel (hydrogen) generation

机译:磁性rGO/NiFe2O4-g-C3N4 S型异质结构光催化剂的协同利用与增强的电荷载流子分离和转移:一种用于高效太阳能燃料(氢)生产的高稳定性和稳健性光催化剂

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摘要

? 2022Graphitic-C3N4 is the prime photocatalyst for solar energy conversion applications owing to its inexpensive, non-toxic, low gap energy, chemical and thermal stability. Herein, a rGO/NiFe2O4-g-C3N4 (RNC-3) hybrid heterostructure photocatalyst was fabricated to realize the effective charge carrier transfer and efficient solar fuel (H2) generation. The photocatalytic H2 generation activity was evaluated under solar light irradiation in the presence of triethanolamine (TEOA) as a hole scavenger. The optimized co-catalysts loadings are 15 wt and 3 wt for NiFe2O4 and rGO, respectively. The results obtained show that RNC-3 hybrid heterostructure is an efficient and stable photocatalyst towards water-splitting and presented H2 generation activity of 11,817 μmolg-1h-1, approximately ~4 and 76 times higher than NiFe2O4-g-C3N4 and g-C3N4 nanosheets, respectively. Notably, the solar-to-hydrogen (STH) conversion efficiency of 2.44 was achieved, prominently surpassing many reported g-C3N4-based materials. This outstanding performance can be related to the substantial band gap reduction from 2.75 to 2.48 eV and significant PL quenching was observed after the incorporation of NiFe2O4 and rGO, which dramatically improved charge carrier separation and transfer, thereby enhancing the photocatalytic performance. Furthermore, RNC-3 exhibits convenient magnetic recovery, practical reusability, and high activity, making it a potential visible-light responsive photocatalyst for efficient water-splitting applications.
机译:?2022石墨-C3N4 因其价格低廉、无毒、低间隙能量、化学和热稳定性而成为太阳能转换应用的主要光催化剂。本文制备了一种rGO/NiFe2O4-g-C3N4(RNC-3)杂化异质结构光催化剂,实现了有效的电荷载流子转移和高效的太阳能燃料(H2)生成。在三乙醇胺(TEOA)作为空穴清除剂存在下,在太阳光照射下评估了光催化H2生成活性。NiFe2O4和rGO的优化助催化剂负载量分别为15 wt%和3 wt%。结果表明,RNC-3杂化异质结构是一种高效稳定的分解水光催化剂,其H2生成活性为11,817 μmolg-1h-1,分别是NiFe2O4-g-C3N4和g-C3N4纳米片的~4倍和76倍。值得注意的是,实现了2.44%的太阳能氢气(STH)转换效率,大大超过了许多报道的g-C3N4基材料。这种出色的性能可能与带隙从2.75 eV大幅减小到2.48 eV有关,并且在NiFe2O4和rGO掺入后观察到显着的PL猝灭,这显着改善了电荷载流子的分离和转移,从而增强了光催化性能。此外,RNC-3 具有方便的磁回收、实用的可重复使用性和高活性,使其成为高效水分解应用的潜在可见光响应光催化剂。

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