材料科学
光催化
奥里维里斯
载流子
兴奋剂
X射线光电子能谱
晶体结构
带隙
纳米片
表面电荷
纳米技术
化学工程
分析化学(期刊)
结晶学
光电子学
催化作用
物理化学
化学
电介质
铁电性
工程类
生物化学
色谱法
作者
Arreerat Jiamprasertboon,Punjaporn Promkamat,Andreas Kafizas,Tanachat Eknapakul,Kanokwan Kongpatpanich,Wutthigrai Sailuam,Theeranun Siritanon,Tatchamapan Yoskamtorn,Kanchana Sotho,Rongrong Cheacharoen,Praphaiphon Phonsuksawang,P. Buaphet
标识
DOI:10.1002/asia.202500151
摘要
The new Aurivillius layered perovskite compounds, AgxNa0.5-xBi2.5Nb2O9 (AGBNO), were successfully synthesized using a hydrothermal technique followed by conventional, microwave-assisted, and acid-assisted ion exchange procedures. The formation of these compounds was evidenced by several techniques. A single-phase crystal structure was identified by XRD patterns, and expanded lattice parameters were revealed by crystal structure refinement. Chemical composition was verified by EDS, XPS, and ICP-OES analyses. Bandgap energies remained similar to the parent Na0.5Bi2.5Nb2O9 host material. Ag+ incorporation significantly enhanced photocatalytic performance for Rhodamine B degradation under visible light, which was attributed to the intrinsic catalytic properties of Ag+ as a noble metal cation. The variations in photocatalytic activities among the series of Ag+-doped samples produced were associated with differences in morphology, specific surface area, and charge carrier dynamics. The AGBNO sample prepared via acid-assisted ion exchange exhibited the highest photocatalytic efficiency, which was attributed to its highly porous nanosheet morphology, largest surface area, and excellent charge carrier dynamics, including high initial charge carrier concentration, optimal lifetime, high charge mobility, efficient charge separation, and transfer. Overall, this study demonstrates the potential of designing Aurivillius-phase layered perovskite photocatalysts with enhanced activity for wastewater remediation and environmental applications through noble metal cation doping.
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