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Synthesis of Ni and Mg MOF-derived carbons for potential hydrogen storage applications

Oswaldo Diaz Garza 1
Oswaldo Diaz Garza
Boris Il'dusovich Kharisov 1
Boris Il'dusovich Kharisov
Eduardo M Sanchez Cervantes 1
Eduardo M Sanchez Cervantes
Edith Luevano Hipolito 1
Edith Luevano Hipolito
Oxana V Kharissova 1
Oxana V Kharissova
Leticia M Torres-Martinez 1
Leticia M Torres-Martinez
1 Universidad Autonoma de Nuevo Leon, San Nicolas de los Garza, Nuevo Leon, Mexico
Published 2023-10-18
CommunicationVolume 33, Issue 6, 815-816
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Diaz Garza O. et al. Synthesis of Ni and Mg MOF-derived carbons for potential hydrogen storage applications // Mendeleev Communications. 2023. Vol. 33. No. 6. pp. 815-816.
GOST all authors (up to 50) Copy
Diaz Garza O., Kharisov B. I., Sanchez Cervantes E. M., Luevano Hipolito E., Kharissova O. V., Torres-Martinez L. M. Synthesis of Ni and Mg MOF-derived carbons for potential hydrogen storage applications // Mendeleev Communications. 2023. Vol. 33. No. 6. pp. 815-816.
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TY - JOUR
DO - 10.1016/j.mencom.2023.10.025
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2023.10.025
TI - Synthesis of Ni and Mg MOF-derived carbons for potential hydrogen storage applications
T2 - Mendeleev Communications
AU - Diaz Garza, Oswaldo
AU - Kharisov, Boris Il'dusovich
AU - Sanchez Cervantes, Eduardo M
AU - Luevano Hipolito, Edith
AU - Kharissova, Oxana V
AU - Torres-Martinez, Leticia M
PY - 2023
DA - 2023/10/18
PB - Mendeleev Communications
SP - 815-816
IS - 6
VL - 33
ER -
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@article{2023_Diaz Garza,
author = {Oswaldo Diaz Garza and Boris Il'dusovich Kharisov and Eduardo M Sanchez Cervantes and Edith Luevano Hipolito and Oxana V Kharissova and Leticia M Torres-Martinez},
title = {Synthesis of Ni and Mg MOF-derived carbons for potential hydrogen storage applications},
journal = {Mendeleev Communications},
year = {2023},
volume = {33},
publisher = {Mendeleev Communications},
month = {Oct},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2023.10.025},
number = {6},
pages = {815--816},
doi = {10.1016/j.mencom.2023.10.025}
}
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Diaz Garza, Oswaldo, et al. “Synthesis of Ni and Mg MOF-derived carbons for potential hydrogen storage applications.” Mendeleev Communications, vol. 33, no. 6, Oct. 2023, pp. 815-816. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2023.10.025.

Keywords

Hydrogen storage
metal–organic frameworks
MOF-derived carbon
pyrolysis
spillover effect.
trimesic acid

Abstract

The synthesis of a Ni-trimesic acid (Ni-BTC) metal-organic framework (MOF) under ambient conditions followed by pyrolysis yields a porous MOF-derived carbon (MDC) doped with elemental Ni, appropriate for hydrogen storage applications. The same methods cannot be used for the synthesis of Mg-BTC MOF and its MDC as the reactivity of Mg towards BTC is not sufficient to prevent competing reactions, and Mg is oxidized to MgO during pyrolysis, preventing hydrogen storage via the formation of MgH2.

References

.
Kharissova O.V., Zhinzhilo V.A., Chernomorova M.A., Uflyand I.E., Gómez de la Fuente I., Kharisov B.I.
Mendeleev Communications, 2021
.
González C.M., Tellez A.D., Kharisov B.I., Kharissova O.V., Quezada T.E., González L.T.
Mendeleev Communications, 2021
.
Hydrogen Adsorption on Zn-BDC, Cr-BDC, Ni-DABCO, and Mg-DOBDC Metal–Organic Frameworks
Sahu D., Mishra P., Edubilli S., Verma A., Gumma S.
Journal of Chemical & Engineering Data, 2013
.
MOF-Derived Hierarchically Porous Carbon with Exceptional Porosity and Hydrogen Storage Capacity
Yang S.J., Kim T., Im J.H., Kim Y.S., Lee K., Jung H., Park C.R.
Chemistry of Materials, 2012
.
A Comparison of Hydrogen Storage in Pt, Pd and Pt/Pd Alloys Loaded Disordered Mesoporous Hollow Carbon Spheres
Baca M., Cendrowski K., Kukulka W., Bazarko G., Moszyński D., Michalkiewicz B., Kalenczuk R., Zielinska B.
Nanomaterials, 2018
.
The novel composite material MOF‐[Mg 3 (BTC) 2 ]/GO/Fe 3 O 4 and its use in slow‐release ibuprofen
Lestari W.W., Tedra R.A., Rosari V.A., Saraswati T.E.
Applied Organometallic Chemistry, 2020
.
Probing hydrogen spillover in Pd@MIL-101(Cr) with a focus on hydrogen chemisorption
Szilágyi P.Á., Callini E., Anastasopol A., Kwakernaak C., Sachdeva S., van de Krol R., Geerlings H., Borgschulte A., Züttel A., Dam B.
Physical Chemistry Chemical Physics, 2014
.
Benign Preparation of Metal–Organic Frameworks of Trimesic Acid and Cu, Co or Ni for Potential Sensor Applications
Sel K., Demirci S., Meydan E., Yildiz S., Ozturk O.F., Al-Lohedan H., Sahiner N.
Journal of Electronic Materials, 2014
.
Nanoconfined lithium aluminium hydride (LiAlH4) and hydrogen reversibility
Wang L., Rawal A., Quadir M.Z., Aguey-Zinsou K.
International Journal of Hydrogen Energy, 2017
.
State of the art multi-strategy improvement of Mg-based hydrides for hydrogen storage
Zhang J., Zhu Y., Yao L., Xu C., Liu Y., Li L.
Journal of Alloys and Compounds, 2019
.
Theoretical study of hydrogen storage by spillover on porous carbon materials
Guo J., Li S., Su Y., Chen G.
International Journal of Hydrogen Energy, 2020
.
Magnesium-based hydrogen storage compounds: A review
Ouyang L., Liu F., Wang H., Liu J., Yang X., Sun L., Zhu M.
Journal of Alloys and Compounds, 2020
.
Improving hydrogen storage in Ni-doped carbon nanospheres
Zubizarreta L., Menéndez J.A., Pis J.J., Arenillas A.
International Journal of Hydrogen Energy, 2009
.
A review on current trends in potential use of metal-organic framework for hydrogen storage
Shet S.P., Shanmuga Priya S., Sudhakar K., Tahir M.
International Journal of Hydrogen Energy, 2021
.
A balance between catalysis and nanoconfinement towards enhanced hydrogen storage performance of NaAlH4
.
Metal-organic frameworks
Li G., Xia L., Dong J., Chen Y., Li Y.
2020
.
Kharissova O.V., Zhinzhilo V.A., Gubaeva I.S., Uflyand I.E., Kharisov B.I.
Mendeleev Communications, 2022