Predictive Modeling of Molecular Mechanisms in Hydrogen Production and Storage Materials

被引:2
作者
Banerjee, Tanumoy [1 ]
Balasubramanian, Ganesh [1 ]
机构
[1] Lehigh Univ, Energy Res Ctr, 117 ATLSS Dr, Bethlehem, PA 18015 USA
关键词
hydrogen production; storage efficiency; retention rate; porous nanostructures; carbonaceous materials; molecular dynamics; electrolysis; OXYGEN EVOLUTION REACTION; DYNAMICS SIMULATIONS; WATER; EFFICIENT; ELECTROCATALYST; ELECTROLYSIS; OXIDE; ELECTRODEPOSITION; TECHNOLOGIES; ADSORPTION;
D O I
10.3390/ma16176050
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Hydrogen has been widely considered to hold promise for solving challenges associated with the increasing demand for green energy. While many chemical and biochemical processes produce molecular hydrogen as byproducts, electrochemical approaches using water electrolysis are considered to be a predominant method for clean and green hydrogen production. We discuss the current state-of-the-art in molecular hydrogen production and storage and, more significantly, the increasing role of computational modeling in predictively designing and deriving insights for enhancing hydrogen storage efficiency in current and future materials of interest. One of the key takeaways of this review lies in the continued development and implementation of large-scale atomistic simulations to enable the use of designer electrolyzer-electrocatalysts operating under targeted thermophysical conditions for increasing green hydrogen production and improving hydrogen storage in advanced materials, with limited tradeoffs for storage efficiency.
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页数:25
相关论文
共 72 条
[1]   Large-scale storage of hydrogen [J].
Andersson, Joakim ;
Gronkvist, Stefan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (23) :11901-11919
[2]   Effect of oxygen vacancies in electrodeposited NiO towards the oxygen evolution reaction: Role of Ni-Glycine complexes [J].
Arciga-Duran, E. ;
Meas, Y. ;
Perez-Bueno, J. J. ;
Ballesteros, J. C. ;
Trejo, G. .
ELECTROCHIMICA ACTA, 2018, 268 :49-58
[3]   Thermally oxidized porous NiO as an efficient oxygen evolution reaction (OER) electrocatalyst for electrochemical water splitting application [J].
Babar, P. T. ;
Lokhande, A. C. ;
Gang, M. G. ;
Pawar, B. S. ;
Pawar, S. M. ;
Kim, Jin Hyeok .
JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2018, 60 :493-497
[4]   Political, economic and environmental impacts of biomass-based hydrogen [J].
Balat, Mustafa ;
Balat, Mehmet .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (09) :3589-3603
[5]  
Ball M., 2009, HYDROGEN EC OPPORTUN, DOI DOI 10.1017/CBO9780511635359
[6]   The future of hydrogen - opportunities and challenges [J].
Ball, Michael ;
Wietschel, Martin .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (02) :615-627
[7]   Transition to renewable energy systems with hydrogen as an energy carrier [J].
Barbir, Frano .
ENERGY, 2009, 34 (03) :308-312
[8]   Electrosynthesis of Mn-Fe oxide nanopetals on carbon paper as bi-functional electrocatalyst for oxygen reduction and oxygen evolution reaction [J].
Bhandary, Nimai ;
Ingole, Pravin P. ;
Basu, Suddhasatwa .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (06) :3165-3171
[9]   Urea electrolysis: direct hydrogen production from urine [J].
Boggs, Bryan K. ;
King, Rebecca L. ;
Botte, Gerardine G. .
CHEMICAL COMMUNICATIONS, 2009, (32) :4859-4861
[10]   A comprehensive review on PEM water electrolysis [J].
Carmo, Marcelo ;
Fritz, David L. ;
Merge, Juergen ;
Stolten, Detlef .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (12) :4901-4934