Graphene nanoplatelets and few-layer graphene studies in thermo-physical properties and particle characterization

2018 ◽  
Vol 135 (2) ◽  
pp. 1081-1093 ◽  
Author(s):  
Omer A. Alawi ◽  
Nor Azwadi Che Sidik ◽  
S. N. Kazi ◽  
G. Najafi
Molecules ◽  
2022 ◽  
Vol 27 (2) ◽  
pp. 503
Author(s):  
Qiangu Yan ◽  
Timothy Ketelboeter ◽  
Zhiyong Cai

Nickel (Ni)-lignin nanocomposites were synthesized from nickel nitrate and kraft lignin then catalytically graphitized to few-layer graphene-encapsulated nickel nanoparticles (Ni@G). Ni@G nanoparticles were used for catalytic decomposition of methane (CDM) to produce COx-free hydrogen and graphene nanoplatelets. Ni@G showed high catalytic activity for methane decomposition at temperatures of 800 to 900 °C and exhibited long-term stability of 600 min time-on-stream (TOS) without apparent deactivation. The catalytic stability may be attributed to the nickel dispersion in the Ni@G sample. During the CDM reaction process, graphene shells over Ni@G nanoparticles were cracked and peeled off the nickel cores at high temperature. Both the exposed nickel nanoparticles and the cracked graphene shells may participate the CDM reaction, making Ni@G samples highly active for CDM reaction. The vacancy defects and edges in the cracked graphene shells serve as the active sites for methane decomposition. The edges are continuously regenerated by methane molecules through CDM reaction.


2014 ◽  
Author(s):  
Harish Sivasankaran ◽  
Yasuyuki Takata ◽  
Masamichi Kohno

The power dissipation capacity of organic phase change materials (PCM) which is used for thermal energy storage applications is hindered by its low thermal conductivity. In this work we demonstrate that inclusion of few layer graphene nanoplatelets dramatically increase the thermal conductivity of the PCM upon solidification. The dramatic thermal conductivity increase stems from the fact that the graphene nanoplatelets are entrapped within the grain boundaries upon solidification of the crystalline structures thereby increasing the percolation pathways. We also show that the enhancement in thermal conductivity is beyond the predictions of effective medium theory. The present work introduces an efficient way to enhance the thermal conductivity of nanocomposites using few layer graphene by effectively controlling the heat transport path simply upon solidification. Such a phase change material with enhanced thermal conductivity makes it a promising candidate for thermal energy storage applications.


2019 ◽  
Vol 53 (4) ◽  
pp. 282-286 ◽  
Author(s):  
V. N. Vasilets ◽  
Yu. M. Shulga ◽  
A. V. Irzhak ◽  
A. V. Melezhik ◽  
A. G. Tkachev

2020 ◽  
Vol 27 ◽  
pp. 610-614
Author(s):  
P.S. Kishore ◽  
V. Sireesha ◽  
V. Sree Harsha ◽  
V. Dharma Rao ◽  
A. Brusly Solomon

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