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Critical insight on the hydrothermal effects toward exfoliation of g-C3N4 and simultaneous in-situ deposition of carbon quantum dots.

Authors :
Wong, Kien Tiek
Jang, Seok Byum
Saravanan, Pichiah
Nah, In Wook
Park, Sehkyu
Choi, Jaeyoung
Park, Chulhwan
Kim, Younghun
Yoon, Yeomin
Jang, Min
Source :
Applied Surface Science. Mar2019, Vol. 471, p703-713. 11p.
Publication Year :
2019

Abstract

Graphical abstract Highlights • Effect of hydrothermal condition on exfoliating CNQDs was examined. • O atoms are substituted onto the GCN sheets during HT treatment. • CNQD(180)12 has the highest capabilities in photocatalysis under LED (400 nm) • CQDs on GCN allow effective electrons transfer and delay PL decays. Abstract In this study, exfoliated g-C 3 N 4 (GCN) coupled carbon quantum dots (CNQDs) were prepared via one-pot hydrothermal (HT) treatment at various temperatures (100–200 °C) and in various amounts of time (0–20 h). Comprehensive characterization was conducted to study not only the chemical states, photo-optical properties, particle sizes, and crystal structures, but also the effect of these changes on the degradation of BPA. Photocatalytic degradation was conducted under near-visible LED as a low energy light source (0.128 W cm−3). The CNQD that were prepared at 180 °C for 12 h showed the highest degradation rate (3.6 × 10−2 min−1), which was 3.0 times higher than GCN. These improved photocatalytic activities corresponded to increases in the photo-reactive surface via exfoliation of GCN sheets, introduction of heteroatom oxygen onto GCN sheets, the addition of CQDs, and shortened bandgap. These characteristics allow for the effective transfer and separation of electrons. Nonetheless, the structural breakdown of the CNQD was observed when the HT time was longer than 12 h (180 °C). The defected sheets showed a detrimental effect towards photocatalytic degradation by trapping electrons, leading to shorter electron life times. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
471
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
134068572
Full Text :
https://doi.org/10.1016/j.apsusc.2018.12.064