One-step, high-yield synthesis of g-C 3 N 4 nanosheets for enhanced visible light photocatalytic activity

A facile template-free one-step synthesis method of ultrathin g-C N nanosheets was developed through thermal polycondensation of melamine. The higher temperature, prolonged time and tightly sealed crucible reaction system contributed to the formation of ultrathin g-C N nanosheets. The as-synthesized...

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Veröffentlicht in:RSC advances 2019-11, Vol.9 (67), p.39304-39314
Hauptverfasser: Wang, Liyan, Hou, Yangwen, Xiao, Shanshan, Bi, Fei, Zhao, Li, Li, Yingqi, Zhang, Xiaojia, Gai, Guangqing, Dong, Xiangting
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container_end_page 39314
container_issue 67
container_start_page 39304
container_title RSC advances
container_volume 9
creator Wang, Liyan
Hou, Yangwen
Xiao, Shanshan
Bi, Fei
Zhao, Li
Li, Yingqi
Zhang, Xiaojia
Gai, Guangqing
Dong, Xiangting
description A facile template-free one-step synthesis method of ultrathin g-C N nanosheets was developed through thermal polycondensation of melamine. The higher temperature, prolonged time and tightly sealed crucible reaction system contributed to the formation of ultrathin g-C N nanosheets. The as-synthesized g-C N nanosheets were applied to the visible light photocatalytic degradation of RhB. The photocatalytic activity was significantly enhanced with increased calcination temperature from 500 °C to 650 °C and prolonged calcination time from 4 h to 10 h. Interestingly, the obtained ultrathin g-C N nanosheets simultaneously possess high yield and excellent photocatalytic activity. Moreover, g-C N nanosheets can maintain photochemical stability after five consecutive runs. The remarkably enhanced photocatalytic activity can be interpreted as the synergistic effects of the enhanced crystallinity, the large surface area, the reduced layer thickness and size and the reduced number of defects. A new layer exfoliation and splitting mechanism of the formation of the ultrathin nanosheets was proposed. This work provides a new strategy to develop a facile eco-friendly template-free one-step synthesis method for potential large-scale synthesis of ultrathin nanosheets with high yield, high photocatalytic efficiency and stable activity for environmental and energetic applications.
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title One-step, high-yield synthesis of g-C 3 N 4 nanosheets for enhanced visible light photocatalytic activity
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