A scientometric review of research in hydrogen storage materials

被引:85
作者
Chanchetti, Lucas Faccioni [1 ,2 ]
Leiva, Daniel Rodrigo [1 ,2 ]
Lopes de Faria, Leandro Innocentini [2 ,3 ]
Ishikawa, Tomaz Toshimi [1 ,2 ]
机构
[1] Fed Univ Sao Carlos UFSCar, Mat Engn Dept DEMa, Postgrad Program Mat Sci & Engn PPGCEM, Rod Washington Luiz,KM 235, BR-13565905 Sao Carlos, SP, Brazil
[2] Fed Univ Sao Carlos UFSCar, Ctr Technol Informat Mat NIT Mat, Mat Engn Dept DEMa, Rod Washington Luiz,KM 235, BR-13565905 Sao Carlos, SP, Brazil
[3] Fed Univ Sao Carlos UFSCar, Informat Sci Dept DCI, Rod Washington Luiz,KM 235, BR-13565905 Sao Carlos, SP, Brazil
关键词
Hydrogen Storage; Technological forecasting; Bibliometrics; Scientometrics; Science and technology indicators; TECHNOLOGY; SEARCH;
D O I
10.1016/j.ijhydene.2019.06.093
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 is a promising sustainable energy carrier for the future due to its high energetic content and no emissions, other than water vapor. However, its full deployment still requires technological advances in the renewable and cost-effective production of hydrogen, cost reduction of fuel cells and especially in the storage of hydrogen.in a lightweight, compact and safe manner. One way to achieve this is by using materials in which hydrogen bonds chemically, or by adsorption. Different kinds of Hydrogen Storage Materials have been investigated, such as Metal-Organic Frameworks (MOFs), Simple Hydrides (including Magnesium Hydride, MgH2), ABs Alloys, AB(2) Alloys, Carbon Nanotubes, Graphene, Borohydrides, Alanates and Ammonia Borane. Billions have been invested in Storage Materials research, resulting in tens of thousands of papers. Thus, it is challenging to track how much effort has been devoted to each materials class, by which countries, and how the field has evolved over the years. Quantitative Science and Technology Indicators, produced by applying Bibliometrics and Text Mining to scientific papers, can aid in achieving this task. In this work, we evaluated the evolution and distribution of Hydrogen Storage Materials research using this methodology. Papers in the 2000-2015 period were collected from Web of Science and processed in VantagePoint (R) bibliometric software. A thesaurus was elaborated relating keywords and short phrases to specific Hydrogen Storage Materials classes. The number of publications in Hydrogen Storage Materials grew markedly from 2003 to 2010, reducing the pace of growth afterwards until a plateau was reached in 2015. The most researched materials were MOFs, Simple Hydrides and Carbon-based materials. There were three typical trends in materials classes: emerging materials, developed after 2003, such as MOFs and Borohydrides; classical materials with continuous growth during the entire period, such as Simple Hydrides; and stagnant or declining materials, such as Carbon Nanotubes and AB(5) Alloys. The main publishing countries were China, countries from the European Union (EU) and the USA, followed by Japan. There is a division between countries with continued growth in recent years, such as China, and those with stagnant production after 2010, such as the EU, the USA and Japan. The results of this work, compared to a previous study in storage materials patenting by our group, and the recent launch of commercial hydrogen cars and trains and stationary hydrogen production and fuel cell solutions, indicates that although the Hydrogen Energy field as a whole is transitioning from lab and prototype stages to commercial deployment, materials-based hydrogen storage still has base technological challenges to be overcome, and therefore still needs more scientific research before large scale commercialization can be realized. The developed thesaurus is made available for refinement and future works. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:5356 / 5366
页数:11
相关论文
共 39 条
[1]   Forecasting technology success based on patent data [J].
Altuntas, Serkan ;
Dereli, Turkay ;
Kusiak, Andrew .
TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE, 2015, 96 :202-214
[2]  
[Anonymous], MIT TECHNOL REV, DOI 1004190/uk-covid-contact-tracing-app-fiasco/
[3]   Capturing new developments in an emerging technology: an updated search strategy for identifying nanotechnology research outputs [J].
Arora, Sanjay K. ;
Porter, Alan L. ;
Youtie, Jan ;
Shapira, Philip .
SCIENTOMETRICS, 2013, 95 (01) :351-370
[4]   The car industry and the blow-out of the hydrogen hype [J].
Bakker, Sjoerd .
ENERGY POLICY, 2010, 38 (11) :6540-6544
[5]   Hydrogen patent portfolios in the automotive industry - The search for promising storage methods [J].
Bakker, Sjoerd .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (13) :6784-6793
[6]  
Chanchetti LF, 2014, CIENTOMETRIA APLICAD
[7]   Technological forecasting of hydrogen storage materials using patent indicators [J].
Chanchetti, Lucas Faccioni ;
Oviedo Diaz, Sergio Manuel ;
Milanez, Douglas Henrique ;
Leiva, Daniel Rodrigo ;
Lopes de Faria, Leandro Innocentini ;
Ishikawa, Tomaz Toshimi .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2016, 41 (41) :18301-18310
[8]   Tech mining: Exploiting new technologies for competitive advantage. [J].
Chen, CM .
INFORMATION PROCESSING & MANAGEMENT, 2005, 41 (05) :1305-1306
[9]   INVERSE RELATIONSHIP OF RECALL AND PRECISION [J].
CLEVERDON, CW .
JOURNAL OF DOCUMENTATION, 1972, 28 (03) :195-+
[10]  
DOE, 2016, DOE TECHN TARG ONB H