Amanuel Gidey Gebretatios, Fawzi Banat and Chin Kui Cheng
{"title":"储氢评述:从合成和表征角度看复杂氢化物的纳米融合","authors":"Amanuel Gidey Gebretatios, Fawzi Banat and Chin Kui Cheng","doi":"10.1039/D4SE00353E","DOIUrl":null,"url":null,"abstract":"<p >To meet the growing global energy demand and keep our planet healthy, more than 10 terawatts of carbon-neutral energy will be required by 2050. H<small><sub>2</sub></small>, which has an energy density of 33.33 kW h kg<small><sup>−1</sup></small>, has been identified as a renewable and clean energy carrier to meet this energy demand and as a substitute for fossil fuels. H<small><sub>2</sub></small> storage is crucial for harnessing H<small><sub>2</sub></small> energy to its fullest potential and realizing the H<small><sub>2</sub></small> economy. Although compression and liquefaction are established H<small><sub>2</sub></small> storage techniques, safety concerns, energy consumption (up to 18 and 40% of H<small><sub>2</sub></small>'s LHV for compression and liquefaction, respectively), and boil-off losses of up to 3% per day in liquefaction remain the main limitations. Researchers currently are exploring safe, compact, and efficient solid-state H<small><sub>2</sub></small> storage methods. Complex hydrides such as LiBH<small><sub>4</sub></small>, NaBH<small><sub>4</sub></small>, LiAlH<small><sub>4</sub></small>, and NaAlH<small><sub>4</sub></small>, which are formed by the coordination of complex anions such as [BH<small><sub>4</sub></small>]<small><sup>−</sup></small> and [AlH<small><sub>4</sub></small>]<small><sup>−</sup></small> stabilized by metal cations such as Na<small><sup>+</sup></small>, Li<small><sup>+</sup></small>, Mg<small><sup>2+</sup></small>, and Ca<small><sup>2+</sup></small>, are a class of solid-state H<small><sub>2</sub></small> storage materials with promising storage capacities. In principle, most of them are capable of meeting the ultimate volumetric (0.05 kg H<small><sub>2</sub></small> per L) and gravimetric (6.5 wt%) storage capacity goals set by the U.S. DoE. However, they suffer from unfavorable thermodynamics-<em>T</em><small><sub>des</sub></small> (150–600 °C), high desorption kinetic barrier-<em>E</em><small><sub>ades</sub></small> (50–275 kJ mol<small><sup>−1</sup></small>), and limited reversibility. One intriguing approach to address these limitations is nanoconfinement in suitable host materials, benefiting from the synergetic effects of nanosizing, immobilization, destabilization, and, sometimes, catalysis for scaffolds that mutually induce catalytic effects. In this review, major H<small><sub>2</sub></small> storage techniques are briefly discussed. Developments in the nanoconfinement of complex hydrides, host materials, synthetic methods, characterizations, and advances in improving kinetics, thermodynamics, and reversibility <em>via</em> nanoconfinement are discussed. This paves the way for the use of hydrides in practical H<small><sub>2</sub></small> economy technologies, and contributes to the advancement of clean energy solutions.</p>","PeriodicalId":104,"journal":{"name":"Sustainable Energy & Fuels","volume":" 22","pages":" 5091-5130"},"PeriodicalIF":5.0000,"publicationDate":"2024-10-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A critical review of hydrogen storage: toward the nanoconfinement of complex hydrides from the synthesis and characterization perspectives\",\"authors\":\"Amanuel Gidey Gebretatios, Fawzi Banat and Chin Kui Cheng\",\"doi\":\"10.1039/D4SE00353E\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >To meet the growing global energy demand and keep our planet healthy, more than 10 terawatts of carbon-neutral energy will be required by 2050. H<small><sub>2</sub></small>, which has an energy density of 33.33 kW h kg<small><sup>−1</sup></small>, has been identified as a renewable and clean energy carrier to meet this energy demand and as a substitute for fossil fuels. H<small><sub>2</sub></small> storage is crucial for harnessing H<small><sub>2</sub></small> energy to its fullest potential and realizing the H<small><sub>2</sub></small> economy. Although compression and liquefaction are established H<small><sub>2</sub></small> storage techniques, safety concerns, energy consumption (up to 18 and 40% of H<small><sub>2</sub></small>'s LHV for compression and liquefaction, respectively), and boil-off losses of up to 3% per day in liquefaction remain the main limitations. Researchers currently are exploring safe, compact, and efficient solid-state H<small><sub>2</sub></small> storage methods. Complex hydrides such as LiBH<small><sub>4</sub></small>, NaBH<small><sub>4</sub></small>, LiAlH<small><sub>4</sub></small>, and NaAlH<small><sub>4</sub></small>, which are formed by the coordination of complex anions such as [BH<small><sub>4</sub></small>]<small><sup>−</sup></small> and [AlH<small><sub>4</sub></small>]<small><sup>−</sup></small> stabilized by metal cations such as Na<small><sup>+</sup></small>, Li<small><sup>+</sup></small>, Mg<small><sup>2+</sup></small>, and Ca<small><sup>2+</sup></small>, are a class of solid-state H<small><sub>2</sub></small> storage materials with promising storage capacities. In principle, most of them are capable of meeting the ultimate volumetric (0.05 kg H<small><sub>2</sub></small> per L) and gravimetric (6.5 wt%) storage capacity goals set by the U.S. DoE. However, they suffer from unfavorable thermodynamics-<em>T</em><small><sub>des</sub></small> (150–600 °C), high desorption kinetic barrier-<em>E</em><small><sub>ades</sub></small> (50–275 kJ mol<small><sup>−1</sup></small>), and limited reversibility. One intriguing approach to address these limitations is nanoconfinement in suitable host materials, benefiting from the synergetic effects of nanosizing, immobilization, destabilization, and, sometimes, catalysis for scaffolds that mutually induce catalytic effects. In this review, major H<small><sub>2</sub></small> storage techniques are briefly discussed. Developments in the nanoconfinement of complex hydrides, host materials, synthetic methods, characterizations, and advances in improving kinetics, thermodynamics, and reversibility <em>via</em> nanoconfinement are discussed. This paves the way for the use of hydrides in practical H<small><sub>2</sub></small> economy technologies, and contributes to the advancement of clean energy solutions.</p>\",\"PeriodicalId\":104,\"journal\":{\"name\":\"Sustainable Energy & Fuels\",\"volume\":\" 22\",\"pages\":\" 5091-5130\"},\"PeriodicalIF\":5.0000,\"publicationDate\":\"2024-10-01\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"\",\"citationCount\":\"0\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"Sustainable Energy & Fuels\",\"FirstCategoryId\":\"88\",\"ListUrlMain\":\"https://pubs.rsc.org/en/content/articlelanding/2024/se/d4se00353e\",\"RegionNum\":3,\"RegionCategory\":\"材料科学\",\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"Q2\",\"JCRName\":\"CHEMISTRY, PHYSICAL\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"Sustainable Energy & Fuels","FirstCategoryId":"88","ListUrlMain":"https://pubs.rsc.org/en/content/articlelanding/2024/se/d4se00353e","RegionNum":3,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q2","JCRName":"CHEMISTRY, PHYSICAL","Score":null,"Total":0}
A critical review of hydrogen storage: toward the nanoconfinement of complex hydrides from the synthesis and characterization perspectives
To meet the growing global energy demand and keep our planet healthy, more than 10 terawatts of carbon-neutral energy will be required by 2050. H2, which has an energy density of 33.33 kW h kg−1, has been identified as a renewable and clean energy carrier to meet this energy demand and as a substitute for fossil fuels. H2 storage is crucial for harnessing H2 energy to its fullest potential and realizing the H2 economy. Although compression and liquefaction are established H2 storage techniques, safety concerns, energy consumption (up to 18 and 40% of H2's LHV for compression and liquefaction, respectively), and boil-off losses of up to 3% per day in liquefaction remain the main limitations. Researchers currently are exploring safe, compact, and efficient solid-state H2 storage methods. Complex hydrides such as LiBH4, NaBH4, LiAlH4, and NaAlH4, which are formed by the coordination of complex anions such as [BH4]− and [AlH4]− stabilized by metal cations such as Na+, Li+, Mg2+, and Ca2+, are a class of solid-state H2 storage materials with promising storage capacities. In principle, most of them are capable of meeting the ultimate volumetric (0.05 kg H2 per L) and gravimetric (6.5 wt%) storage capacity goals set by the U.S. DoE. However, they suffer from unfavorable thermodynamics-Tdes (150–600 °C), high desorption kinetic barrier-Eades (50–275 kJ mol−1), and limited reversibility. One intriguing approach to address these limitations is nanoconfinement in suitable host materials, benefiting from the synergetic effects of nanosizing, immobilization, destabilization, and, sometimes, catalysis for scaffolds that mutually induce catalytic effects. In this review, major H2 storage techniques are briefly discussed. Developments in the nanoconfinement of complex hydrides, host materials, synthetic methods, characterizations, and advances in improving kinetics, thermodynamics, and reversibility via nanoconfinement are discussed. This paves the way for the use of hydrides in practical H2 economy technologies, and contributes to the advancement of clean energy solutions.
期刊介绍:
Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.