TY - JOUR
T1 - Surfactant-free synthesis of AgGO and subsequent catalytic performance of AgGO and WO3-x/AgrGO composites
AU - Abbas, Muhammad
AU - Hussain Shah, Navid
AU - Qasim, Muhammad
AU - Imran, Muhammad
AU - Sulaman, Muhammad
AU - Ahmad, Naveed
AU - Lauqman, Muhammad
AU - Ashfaq Ahmad, M.
AU - Cui, Yanyan
AU - Wang, Yaling
N1 - Publisher Copyright:
© 2023 The Korean Society of Industrial and Engineering Chemistry
PY - 2024/2/25
Y1 - 2024/2/25
N2 - Suppressing charge recombination in semiconductors via triggering interfacial polarization and synergism provides an effective way to redeem multifunctionality and achieve environmental sustainability. Herein, we anchor a single-step facile synthesis of AgGO, providing bandgap control through varying oxidation time and subsequent simultaneous incorporation of Ag and rGO via the in situ hydrothermal method in WO3-x. The resulting WO3-x/AgrGO composite demonstrated a broadening of optical absorption and excellent suppression of carrier recombination, thereby improving the catalytic properties. The synergism and excellent conductivity of AgrGO enhance the interfacial polarization to store the carriers for longer times and help carriers carry most of their energy to the catalyst's surface. When WO3-x/AgrGO was tested against RhB under visible light irradiation, its degradation constant reached 0.034/min, 7.4 times faster than pure WO3-x. It has left no viable bacteria during the photoinactivation of gram-negative E. coli bacteria, and even its inactivation rate is 1.07 times faster than AgGO. So, this study provides a direct method of metal-GO composite synthesis and subsequent introduction into WO3-x to broaden the versatility of environmental semiconductors.
AB - Suppressing charge recombination in semiconductors via triggering interfacial polarization and synergism provides an effective way to redeem multifunctionality and achieve environmental sustainability. Herein, we anchor a single-step facile synthesis of AgGO, providing bandgap control through varying oxidation time and subsequent simultaneous incorporation of Ag and rGO via the in situ hydrothermal method in WO3-x. The resulting WO3-x/AgrGO composite demonstrated a broadening of optical absorption and excellent suppression of carrier recombination, thereby improving the catalytic properties. The synergism and excellent conductivity of AgrGO enhance the interfacial polarization to store the carriers for longer times and help carriers carry most of their energy to the catalyst's surface. When WO3-x/AgrGO was tested against RhB under visible light irradiation, its degradation constant reached 0.034/min, 7.4 times faster than pure WO3-x. It has left no viable bacteria during the photoinactivation of gram-negative E. coli bacteria, and even its inactivation rate is 1.07 times faster than AgGO. So, this study provides a direct method of metal-GO composite synthesis and subsequent introduction into WO3-x to broaden the versatility of environmental semiconductors.
KW - AgGO antibacterial activity
KW - WO antibacterial activity
KW - WO photocatalytic activity
KW - WO/AgrGO antibacterial activity
KW - WO/AgrGO photocatalysts
UR - http://www.scopus.com/inward/record.url?scp=85175057138&partnerID=8YFLogxK
U2 - 10.1016/j.jiec.2023.10.007
DO - 10.1016/j.jiec.2023.10.007
M3 - Article
AN - SCOPUS:85175057138
SN - 1226-086X
VL - 130
SP - 521
EP - 532
JO - Journal of Industrial and Engineering Chemistry
JF - Journal of Industrial and Engineering Chemistry
ER -