TY - JOUR
T1 - Direct Thermochemical CO2Reduction to Reduced Graphene Oxide-like Nanomaterials
T2 - Implications for Environmental and Energy Storage and Conversion Applications
AU - Badreldin, Ahmed
AU - Elsaid, Khaled
AU - Wubulikasimu, Yiming
AU - Youssef, Karim
AU - Ghouri, Zafar Khan
AU - El Ghenymy, Abdellatif
AU - Kumar, Dharmesh
AU - Abdala, Ahmed
AU - Abdel-Wahab, Ahmed
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/10/28
Y1 - 2022/10/28
N2 - CO2 capture and conversion to value-added products have seen continued advancement in recent years through electrochemical and thermochemical routes. In this work, we have adapted a facile and potentially scalable thermochemical reduction technique that directly reduces CO2 to different-quality reduced graphene oxide (rGO) solids. Several characterization techniques have been undertaken to investigate the role of two- and three-dimensional copper catalytic substrates, reaction time, and CO2 humidity content on the characteristics of the prepared rGO. Growth for 1 h at 550 degrees C atop a uniform two-dimensional (2D) catalytic copper substrate under a humidified CO2 environment (0.14 g(H2O)/g(CO2)) attained rGO with low defect densities (0.36 x 10(11) cm(-2)) and high domain (31.9 nm) and crystallite (3.32 nm) sizes. Detailed statistical Raman analyses over large areas confirm that the mean defect distance of the synthesized rGO samples is 16-20 nm, indicative of the intrinsic high quality attained. The degree of reduction in rGO based on C/O ratios from 4 to 8 suggests that operating conditions can be fine-tuned to attain different-quality rGO with different attributable macroproperties such as conductivity and hydrophilicity. The developed method of direct CO2 reduction to rGO can be further tuned to produce different quality, morphology, and yield of other high-value solid carbon-based materials for emerging and existing applications.
AB - CO2 capture and conversion to value-added products have seen continued advancement in recent years through electrochemical and thermochemical routes. In this work, we have adapted a facile and potentially scalable thermochemical reduction technique that directly reduces CO2 to different-quality reduced graphene oxide (rGO) solids. Several characterization techniques have been undertaken to investigate the role of two- and three-dimensional copper catalytic substrates, reaction time, and CO2 humidity content on the characteristics of the prepared rGO. Growth for 1 h at 550 degrees C atop a uniform two-dimensional (2D) catalytic copper substrate under a humidified CO2 environment (0.14 g(H2O)/g(CO2)) attained rGO with low defect densities (0.36 x 10(11) cm(-2)) and high domain (31.9 nm) and crystallite (3.32 nm) sizes. Detailed statistical Raman analyses over large areas confirm that the mean defect distance of the synthesized rGO samples is 16-20 nm, indicative of the intrinsic high quality attained. The degree of reduction in rGO based on C/O ratios from 4 to 8 suggests that operating conditions can be fine-tuned to attain different-quality rGO with different attributable macroproperties such as conductivity and hydrophilicity. The developed method of direct CO2 reduction to rGO can be further tuned to produce different quality, morphology, and yield of other high-value solid carbon-based materials for emerging and existing applications.
KW - CO2 reduction
KW - Chemical vapor deposition
KW - Graphene oxide
KW - Reduced graphene oxide
KW - Thermochemical reduction
UR - http://www.scopus.com/inward/record.url?scp=85139556660&partnerID=8YFLogxK
U2 - 10.1021/acsanm.2c03083
DO - 10.1021/acsanm.2c03083
M3 - Article
AN - SCOPUS:85139556660
SN - 2574-0970
VL - 5
SP - 14785
EP - 14797
JO - ACS Applied Nano Materials
JF - ACS Applied Nano Materials
IS - 10
ER -