Ternary borides and borohydrides for hydrogen storage and method of synthesis
11192783 · 2021-12-07
Assignee
Inventors
Cpc classification
C01B3/0084
CHEMISTRY; METALLURGY
C01B6/21
CHEMISTRY; METALLURGY
C01B3/0078
CHEMISTRY; METALLURGY
C01B6/24
CHEMISTRY; METALLURGY
Y02E60/32
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
C01B3/00
CHEMISTRY; METALLURGY
C01B6/24
CHEMISTRY; METALLURGY
C01B6/21
CHEMISTRY; METALLURGY
Abstract
A method and a system is provided for obtaining solid-state hydrogen storage and release in materials with at least theoretical loaded hydrogen densities of 11 wt % or greater that can deliver hydrogen and be recharged at moderate temperatures enabling incorporation into hydrogen storage systems suitable for transportation applications. These materials comprise ternary boride materials comprising certain light transition metals and alkaline or alkaline earth metals, and ideally have no or very little phase separation. A process of making these materials is also provided.
Claims
1. A process for making a mixed-metal ternary boride/borohydride hydrogen storage material, comprising the steps of: mixing an M.sup.a metal source, an M.sup.b metal source, and a borane adduct in hydrocarbon solvent; wherein M.sup.a is one or more metals selected from the group consisting of Li, Na, K, Mg, and Ca, and M.sup.b is one or more metals selected from Ti, V, Cr, Mn, Fe, Co, Ni, Cu and Zn; removing excess solvent and liquid by-products by drying and applying a vacuum.
2. The process of claim 1, wherein the borane adduct in hydrocarbon solvent is borane-dimethyl sulfide adduct in heptane.
3. The process of claim 1, wherein the vacuum, measured at 20° C., is 0.001 to 0.1 atm.
4. The process of claim 1, wherein the M.sup.a metal source is an Mg alkyl and the M.sup.b metal source is an Mn alkyl or Co alkyl.
5. The process of claim 1, wherein the material is essentially free of phase segregation.
6. The process of claim 1, wherein the mixing step is performed with heating up to a maximum of 120° C.
7. The process of claim 1, further comprising dissolving a catalyst or dopant in the solvent.
8. A process for making a mixed-metal ternary boride/borohydride hydrogen storage material, comprising the steps of: reacting an M.sup.a metal source, an M.sup.b metal source, and a borane adduct, forming a mixed-metal borohydride; wherein M.sup.a is one or more metals selected from the group consisting of Li, Na, K, Mg, and Ca, and M.sup.b is one or more metals selected from Ti, V, Cr, Mn, Fe, Co, Ni, Cu and Zn; dehydrogenating the mixed metal borohydride into a ternary boride phase.
9. The process of claim 8, wherein the hydrogen storage is essentially free of phase segregation.
10. The process of claim 8, wherein M.sup.a is Mg and M.sup.b is Mn or Co.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(9) Disclosed herein is a method and a system of obtaining solid-state hydrogen storage and release in materials with loaded hydrogen densities of 11 wt % or greater or 80 g/L or greater that can deliver hydrogen and be recharged at moderate temperatures and pressures enabling incorporation into hydrogen storage systems suitable for transportation and stationary applications. These materials include ternary boride materials comprising certain light transition metals and alkaline or alkaline earth metals, and ideally have no or very little phase separation.
(10) Borohydrides of alkaline and alkaline earth metals display a high hydrogen content; however their decomposition temperatures are rather high. In contrast, most of transition metal borohydrides, especially those of 3d metals, are thermally unstable. Here a new approach to synthesizing borohydrides containing both transition metals and the alkaline or alkaline earth metals is disclosed. More specifically, the method comprises hydrogenating a single-phase ternary boride M.sup.aM.sup.bB.sub.x material, wherein M.sup.a is an alkali or alkaline earth metal selected from one or more of Li, Na, K, Mg, and Ca; and M.sup.b is a 3d transition metal selected from one or more of Ti, V, Cr, Mn, Fe, Co, Ni, Cu and Zn, and forming a composite solid-state material with little or no phase segregation, e.g., less than 1% phase segregation.
(11) A few mixed-metal borohydrides are known, but they phase segregate upon hydrogenation/dehydrogenation cycling. For example, main group/transition metal borohydrides such as LiSc(BH.sub.4).sub.4, Na.sub.2Mn(BH.sub.4).sub.4, and LiZn.sub.2(BH.sub.4).sub.5, dehydrogenate to form phase segregated LiH or NaH and the corresponding transition metals or metal borides. In contrast to those materials, the materials disclosed herein can suppress phase segregation by selecting metal ions M.sup.a and M.sup.b so that isostructural borides and/or borohydrides are formed, where M.sup.b also functions to destabilize or tune thermodynamic properties within a single phase. The maintaining of single material phases permits hydrogenation/dehydrogenation cycling while suppressing phase segregation, promoting hydrogen storage with more controlled chemistry and morphologies as well as faster reaction kinetics.
(12) Moreover, the intrinsic limitations in boron-metallic systems of high diffusion barriers and interfacial energy barriers discussed above, are addressed by systems with minimal, preferably single, hydrogenated and dehydrogenated phases. For boron-based materials, ternary borides M.sup.aM.sup.bB.sub.x that hydrogenate to single phase mixed-metal borohydrides M.sup.aM.sup.b(BH.sub.4).sub.x via the reaction (I) satisfy this criteria.
M.sup.aM.sup.bB.sub.x+2(H.sub.2).sub.x←.fwdarw.M.sup.aM.sup.b(BH.sub.4).sub.x (I)
(13) Depending on the choice of metals M.sup.a and M.sup.b, high hydrogen capacities (11 wt % H.sub.2 or greater) can be achieved, thermodynamics can be improved, and the storage material can potentially act catalytically.
(14) Ternary borides and mixed metal borohydrides based on Mg (as M.sup.a) with the first row transition metals V, Cr, Mn, Fe, and Co (as M.sup.b) were explored as disclosed herein. Magnesium forms a hexagonal binary boride (MgB.sub.2, P6/mmm). The transition metals V, Cr, Mn, Fe, and Co also form hexagonal borides isostructural with MgB.sub.2 (
(15) TABLE-US-00001 TABLE 1 Metal (M.sup.b) Mg Mn V Cr Fe Co χ.sub.P 1.31 1.55 1.63 1.66 1.83 1.88 wt % H, 14.9 11.6 12.0 11.9 11.6 11.3 Mg.sup.aM.sup.b(BH.sub.4).sub.x
(16) In embodiments, M.sup.a and M.sup.b are selected to comprise matched pairs of ternary borides and mixed-metal borohydrides that can exchange hydrogen with only one hydrogenated phase (the ternary borohydride) and only one dehydrogenated phase (the ternary boride).
(17) In the Examples below, pairs of ternary borides and mixed-metal borohydrides based on Mg with various first row transition metals were investigated experimentally. In particular, the Mg/Mn ternary boride and associated ternary borohydride were found to be a particularly suitable pair and synthesized using novel synthetic approaches. Dehydrogenation of the Mg/Mn ternary borohydride with a capacity of about 8 wt % was shown to begin at 170° C., which is about 100° C. lower than the temperature for pure magnesium borohydride. Similarly, significantly more hydrogen uptake was demonstrated in the Mg/Mn ternary boride compared to pure magnesium boride, with faster kinetics for the uptake.
(18) In an embodiment, a ternary hydrogen-storage material includes an isomorphic crystalline solid corresponding to formula (1) in a hydrogenated state:
M.sup.aM.sup.b(BH.sub.4).sub.x (1)
(19) wherein x is 1 to 6, inclusive.
(20) In a dehydrogenated state the hydrogen-storage material corresponds to the ternary boride of formula 2:
M.sup.aM.sup.bB.sub.x (2)
(21) wherein x is 1 to 6, inclusive.
(22) M.sup.a is one or more metals selected from the group consisting of Li, Na, K, Mg, and Ca. M.sup.b is one or more metals selected from Ti, V, Cr, Mn, Fe, Co, Ni, Cu and Zn. X is 1 to 6, inclusive, in embodiments it may range from 2 to 5, inclusive, or 3 to 4 inclusive. The metals M.sup.a and M.sup.b are selected to form isomorphic metal boride crystalline structures. Any isomorphic crystalline structures are compatible with this concept. In particular, cubic (including simple cubic, body centered cubic, and face centered cubic), orthorhombic, tetragonal, or hexagonal structures are preferred in some embodiments. The metals are also chosen for similarity in ionic radii such that the structures of the borides and borohydrides are similar, thus preventing phase segregation. Ideally, both the hydrogenated and dehydrogenated states are single phase, although in an embodiment, at least one is single phase.
(23) The isomorphic crystalline solid is in a single phase meaning it is essentially free of phase segregation, in one or both of the hydrogenated and dehydrogenated states. This is determined through XRD as disclosed in the examples herein. The XRD pattern of a composition that is essentially free of phase segregation has a well defined set of peaks and integration of peaks attributed to a different phase that is 1% or less of the total peak area for those peaks attributed to the single dominant phase. The absence of phase segregation is believed to be a factor in improved hydrogen cycling reaction kinetics.
(24) The ratio of M.sup.a and M.sup.b can be varied. In an embodiment, the ratio of M.sup.a to M.sup.b is 1:1.1 to 1:0.05, such as 1:1 to 1:0.1, or 1:0.75 to 1:0.25.
(25) Characteristics of the hydrogen storage material can be modified by varying its electronegativity. Table 1 above shows the electronegativity of certain M.sup.a or M.sup.b elements, ranging from 1.3 to 1.9. In particular, the introduction of a transition metal M.sup.b with a larger electronegativity into the ternary boride M.sup.aM.sup.bB.sub.x, should facilitate hydrogen molecule splitting and enabling diffusion during ternary boride hydrogenation.
(26) In an embodiment, the hydrogen storage composition also includes a catalytic amount of one or more catalytic additives such as potassium compounds to improve the kinetics of both dehydrogenation and rehydrogenation. For example, a catalytic amount, may be about 0.01 to 5 mole percent, such as 0.1 to 3 mol percent, or 1.5 to 3.5 mol percent.
(27) In an embodiment, one or more catalysts may be selected from titanium trichloride, titanium tetrachloride, titanium hydride, potassium hydride, potassium fluoride, potassium chloride, nickel, nickel chloride and combinations thereof. Further, the catalyst can include other materials such as, but not limited to, aluminum, aluminum hydride, AlCl.sub.3, MnCl.sub.2, TiCl.sub.3, TiF.sub.3, FeCl.sub.2, CoCl.sub.2 and combinations thereof. By incorporating catalysts in the storage material, a higher hydrogen storage capacity can be achieved. It is anticipated that these catalysts are present in such small amounts that they do not affect the isomorphic crystalline structure or the ternary metal borides and ternary metal borohydrides, which are so designed as to prevent undesired phase segregation.
(28) Although other additives or catalysts may be present, in embodiments the hydrogen storage compositions of the present invention predominantly (essentially) consist of the above-mentioned ternary materials M.sup.aM.sup.bB.sub.x and M.sup.aM.sup.b(BH.sub.4).sub.x.
(29) Preparation methods for ternary metal borides can be classified into several groups: 1) direct reaction of the elements; 2) borothermic reduction; 3) carbothermic reduction; 4) electrochemical reduction in molten salt electrolytes; and 5) molecular precursor decomposition. In addition, a new method involving a direct alloying reaction of MgB.sub.2 with a transition metal or a transition metal boride may be advantageously used herein to make the mixed metal compounds.
(30) Two synthetic approaches to the mixed-metal ternary boride systems are demonstrated in the examples below: i) synthesis of main group-transition metal ternary borides followed by hydrogenation into the corresponding single-phase mixed-metal borohydride species and (ii) direct synthesis of mixed-metal borohydrides followed by their dehydrogenation into a single ternary boride phase. Dehydrogenation of alkali and alkaline-earth borohydrides often leads to the formation of kinetically stable polyboron anion clusters, such as [B.sub.12H.sub.12].sup.2−, that can limit reversibility. The advantage of the new direct synthesis method for storing hydrogen is that ternary transition metal borohydrides dehydrogenate directly into ternary borides without formation of polyboron anions avoiding reaction paths leading to unwanted stable intermediates and enabling reversibility under milder conditions of temperature and hydrogen pressure. In an embodiment, the mixed-metal borohydride product of the dehydrogenation reaction is essentially free of polyboron anions, such as containing less than 0.1% by weight of the compound, less than 0.01%, or less than 0.001%.
(31) In an embodiment of the process, a process for making a mixed-metal borohydride hydrogen storage material, includes the steps of mixing a first metal source (M.sup.a metal source), a second metal source (M.sup.b metal source), and a borane adduct in hydrocarbon solvent. After mixing, excess solvent and liquid by-products are removed under vacuum and gentle heating. The solid product is then dried.
(32) M.sup.a and M.sup.b are selected as described above, i.e., M.sup.a is one or more metals selected from the group consisting of Li, Na, K, Mg, and Ca, and M.sup.b is one or more metals selected from Ti, V, Cr, Mn, Fe, Co, Ni, Cu and Zn. The first and second metal sources may be, for example, the respective metals bonded to one or more alkyl groups, such as, for example, one or more linear or branched, C.sub.2 to C.sub.26 alkyl groups, such as C.sub.3 to C.sub.12, or C.sub.4 to C.sub.8 alkyl groups. Alternatively, the metal sources may be other counterions that dissociate in solvent and are removable from the final product.
(33) The borane adduct is a boron containing material that serves as a source for boron that will bond with the M.sup.a and M.sup.b metals. In an embodiment, the borane adduct is borane-dimethylsulfide adduct. Other compounds, such as diborane or borane etherates (where ether is diethylether, tetrahydrofurane, dioxane) can be also used for these purposes.
(34) The solvent may be a hydrocarbon solvent, such as, for example, liquid hydrocarbons comprising C.sub.2 to C.sub.26 groups, such as C.sub.3 to C.sub.12, or C.sub.4 to C.sub.8 alkyl groups, as well as aryl derivatives, such as phenyl or benzyl groups. In an embodiment, the solvent is n-heptane.
(35) All handling involving the metal borohydrides is done under inert atmosphere with, for example, argon gas. Recovery of the mixed-metal borohydride storage material from the solvent is done with care to avoid high heating and is performed under vacuum. Mild temperatures are used, and include applying heat to ramp the temperature from room temperature (about 20° C.) to 120° C., such as a maximum of 40° C. to 100° C., or 45° C. to 85° C. The product is kept under a vacuum until the solvents and liquid by-products have evaporated or otherwise been removed and the product is dried. Vacuum pressure at 20° C., may, for example, be 0.001 to 0.5 atm, such as 0.01 to 0.1 atm, or 0.02 to 0.2 atm. The vacuum pressure is measured inside a sealed chamber where the reaction takes place. Other methods of removal of the supernatant may also be used, such as filtration including vacuum filtration, or decanting.
(36) The catalysts or dopants mentioned above can be incorporated in the material by adding the catalyst to the solution along with the boron adduct. This allows for a one-pot synthesis of a catalyzed mixed-metal borohydride hydrogen storage material.
(37) The synthesized nanoconfined materials can be pelletized, compacted, or formed into a suitable form for incorporation into a hydrogen storage vessel.
(38) In an embodiment, a method of cycling the mixed-metal ternary hydrogen-storage material comprises the steps of: charging hydrogen to a mixed-metal ternary boride material to form a mixed-metal ternary borohydride structure in the hydrogenated state; discharging hydrogen from the mixed-metal ternary borohydride structure to form the mixed-metal ternary boride in the dehydrogenated state.
(39) The ternary hydrogen-storage material corresponds to formula (1) in the hydrogenated state and formula (2) in the dehydrogenated state as disclosed above. The cycling reaction also corresponds to reaction (I).
(40) In the hydrogenated state the borohydride material can contain over 11 wt % hydrogen, such as 11.5 to 18%, or 12 to 15% hydrogen based on the total weight of the composition, such as Table 1. It is desired that 100% of the hydrogen is released, but in an embodiment, of the method using the materials disclosed herein at least 60% by weight of the total hydrogen stored in the mixed-metal borohydride material is discharged during the discharge cycle, such as 75% to 99.99%, or 90% to 99%.
(41) The charged and discharged states can be reached with reaction temperatures ranging from 50° C. to 500° C., 100° C. to 400° C., or 250° C. to 315° C. but, more typically, at lower temperatures for hydrogen storage materials, such as 150° C. to 380° C., or 180° C. to 350° C. Charging pressure may range, for example, from 50 bar to 700 bar, such as 100 bar to 350 bar, or 150 bar to 200 bar H.sub.2.
(42) The kinetics of the hydrogen cycling were significantly improved for cycling the mixed-metal borohydride materials disclosed herein compared to a non-mixed metal. For example, in the hydrogen release cycle, the hydrogen storage materials disclosed herein may release half of the hydrogen desorption capacity in 3 hours or less, such as 30 to 90 minutes, or 60 minutes to 150 minutes at 100 bar and 300° C.
(43) In certain fuel cell applications, lower pressure and temperature discharge conditions are highly desirable, such as in fuel cell electric vehicles. In embodiments of the ternary borohydride materials disclosed herein, the discharge reaction can proceed at temperatures and pressures suitable for such applications, such as, for example, 80° C. to 120° C., or 85° C. to 100° C., or 90° C. to 105° C., and at 40 to 150 bar, such as 50 to 100 bar, or 60 to 80 bar.
(44) An exemplary application of the systems disclosed herein is to store hydrogen, reversibly or in a single discharge application, although other uses are not excluded. Other uses, for example, are thermal energy storage systems, in which the mixed-metal borohydride material is used to reversibly store heat. Solar energy can also be used to decompose the mixed-metal material to release gaseous H.sub.2; the mixed-metal borohydride material is then regenerated via the (exothermic) reaction of the mixed-metal borohydride with H.sub.2 at night. The hydrogen storage material may also be used in a single hydrogen discharge application, such as, for example, rapid inflation devices.
(45) In an embodiment, the reversible hydrogen storage composition can be packaged in a tank for subsequent use in a fuel cell using standard methods and systems. For example, the composition can be filled into a modular container having a gas outlet and a hydrogen inlet for refilling/recharging and a component for thermal control of the hydrogen storage material.
(46) Discharging the system, to provide the hydrogen needed for hydrogen-based clean energy, can be performed at moderate temperatures and pressures as disclosed herein. This allows the system to be potentially used in a fuel cell for powering applications such as electric vehicles.
EXAMPLES
(47) The following section, describes a detailed example of synthesis and characterization of a mixed-metal borohydride material using the novel and mild methods disclosed herein, producing a hydrogen storage material with improved properties.
Example 1: Synthesis of Mg/Mn Ternary Metal Borides by Milling
(48) Initially, phase pure MgB.sub.2 was synthesized by reaction of (excess) elemental Mg and B at 680° C. in a sealed stainless steel container under argon atmosphere.
(49) Using the synthesized MgB.sub.2, a direct alloying reaction with Mn was used to synthesize the Mg/Mn ternary metal boride. Commercial MnB.sub.2 was milled together with the MgB.sub.2 in a 1:1 molar ratio. Milling was conducted in a SPEX 8000 mill for 16 hr at room temperature with hardened steel balls. The results are shown in
(50) To characterize the distribution of Mg and Mn in the product phase, energy dispersive x-ray spectroscopy (EDS) was performed (data not shown). At the resolution of the analysis (about 100 nm), the Mg and Mn appear well-mixed and stable.
Examples 2 and 3
(51) In addition to Mg.sub.0.5Mn.sub.0.5B.sub.2, ternary borides with the compositions of Mg.sub.0.75Mn.sub.0.25B.sub.2 (Example 2) and Mg.sub.0.9Mn.sub.0.1B.sub.2 (Example 3) were also synthesized by the same manner as Example 1. To check the thermal stability of Mg.sub.0.75Mn.sub.0.25B.sub.2 and Mg.sub.0.9Mn.sub.0.1B.sub.2 samples were annealed at 500° C. for 72 hr and characterized by XRD. The results are shown in
(52) XRD from the Mg.sub.0.75Mn.sub.0.25B.sub.2 thermal test are shown as the top two panels in
Example 4 Hydrogen Adsorption of Mg/Mn Ternary Metal Borides
(53) The hydrogen cycling behavior of the Example 3 (Mg.sub.0.9Mn.sub.0.1B.sub.2) compound was investigated, with the results shown in
Example 5: Hydrogen Desorption from Mg/Mn Ternary Borohydrides
(54) Achieving a single phase hydrogen storage material was also investigated beginning with the mixed metal Mg/Mn borohydride. A common synthesis scheme was used to make the separate Mg and Mn borohydrides.
Example 6: Synthesis and Characterization of the Mixed-Metal Borohydrides Mg.SUB.1-x.Mn.SUB.x.(BH.SUB.4.).SUB.2
(55) The MgMn(BH.sub.4).sub.4 material with a nominal Mg:Mn ratio of 1:1 was isolated in pure form. The synthesis was performed using a new procedure which involves the reaction of a mixture of equimolar amounts of Mg(n-Bu).sub.2 and Mn(n-Bu).sub.2 with borane-dimethylsulfide adduct in heptane. The as-synthesized powder was dried by removing excess solvent and Me.sub.2S in vacuum upon mild heating.
(56) The solvent and dimethylsulfide removal procedure with gentle heating greatly facilitates obtaining a pure material. Low temperature leads to a material which contains significant amounts of sulfur (according to elemental analysis), while heating in vacuum over 100° C. leads to partial decomposition of the material.
(57) The as-synthesized mixed-metal Mg—Mn borohydride was characterized by means elemental analysis and FTIR spectroscopy. The elemental analysis shows a boron content of 29.8% and a hydrogen content of 10.93% by weight, close to the calculated 31.19% and 11.63% for B and H in MgMn(BH.sub.4).sub.4. The FTIR spectra of Mg(BH.sub.4).sub.2, Mn(BH.sub.4).sub.2 and the newly-synthesized MgMn(BH.sub.4).sub.4 are shown in
(58) The Example 6 material with a 1:1 metal ratio was further characterized by x-ray diffraction (XRD). The XRD pattern of the solvent-free MgMn(BH.sub.4).sub.4 and the experimental spectra for Mg(BH.sub.4).sub.2 and Mn(BH.sub.4).sub.2 are shown in
Example 7: Hydrogen Desorption from Mg/Mn Borohydride
(59) The as-synthesized, solvent-free Mg.sub.0.9Mn.sub.0.1(BH.sub.4).sub.2 material was transferred into a stainless steel sample holder, which was subsequently attached to a Sieverts apparatus for dehydrogenation experiments. A thermocouple was placed in the center of the sample holder for accurate temperature measurements during the experiments. Pressure changes during the dehydrogenation and rehydrogenation of the samples were quantified with calibrated pressure transducers and recorded using a Lab View-based software program. During the dehydrogenation step the temperature was ramped from ambient to about 375° C., then maintained at this temperature for up to 5.5 hours (
Example 8: Phase Segregation Testing
(60) To test whether single or multiple phases are formed upon thermal decomposition of Mg.sub.0.9Mn.sub.0.1(BH.sub.4).sub.2 (of Example 3), this material was decomposed at 580° C. in an evacuated stainless steel vessel. The XRD pattern of the as-decomposed Mg.sub.0.9Mn.sub.0.1(BH.sub.4).sub.2 material, shown in
(61) An SEM picture of the decomposed Mg.sub.0.9Mn.sub.0.1(BH.sub.4).sub.2 material is also shown in
(62) In summary, the introduction of a transition metal M.sup.b with a larger electronegativity to form the ternary boride M.sup.aM.sup.bB.sub.x decreases the kinetic barriers by facilitating hydrogen molecule splitting and enabling diffusion during ternary boride hydrogenation. This method introduces the concept of intramolecular destabilization in mixed-metal borohydrides through compositional tuning of the metals M.sup.a and M.sup.b. Additionally, at the same time the M.sup.aM.sup.b(BH.sub.4).sub.x←.fwdarw.M.sup.aM.sup.bB.sub.x+2(H.sub.2).sub.x reaction system is limited to a single hydrogenated and dehydrogenated phase, eliminating phase segregation and promoting reaction kinetics.
(63) The direct synthesis method of making the mixed-metal ternary borohydrides followed by their dehydrogenation into a ternary boride phase has the advantage of storing hydrogen and dehydrogenating directly into ternary borides without formation of polyboron anions, which avoids reaction paths leading to unwanted stable intermediates and enabling reversibility under milder conditions of temperature and hydrogen pressure.
(64) The term “consisting essentially” as used herein means the specified materials or steps and those that do not materially affect the basic and novel characteristics of the material or method. Here those characteristics are set forth herein and include, hydrogen storage capacity with light metals, and the ability to use less extreme temperature and pressure conditions in using the hydrogen storage material. The term “essentially free” as used herein means free of or free, except for trace amounts of the specified material.
(65) What has been described above includes examples of one or more embodiments. It is, of course, not possible to describe every conceivable modification and alteration of the above devices or methodologies for purposes of describing the aforementioned aspects, but one of ordinary skill in the art can recognize that many further modifications and permutations of various aspects are possible. Accordingly, the described aspects are intended to embrace all such alterations, modifications, and variations that fall within the spirit and scope of the appended claims. Furthermore, to the extent that the term “includes” is used in either the details description or the claims, such term is intended to be inclusive in a manner similar to the term “comprising” as “comprising” is interpreted when employed as a transitional word in a claim. The term “consisting essentially” as used herein means the specified materials or steps and those that do not materially affect the basic and novel characteristics of the material or method. All percentages and averages are by weight unless the context indicates otherwise. If not specified above, the properties mentioned herein may be determined by applicable ASTM standards, or if an ASTM standard does not exist for the property, the most commonly used standard known by those of skill in the art may be used. The articles “a,” “an,” and “the,” should be interpreted to mean “one or more” unless the context indicates the contrary.