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Magnesium hydride for energy storage applications: The kinetics of dehydrogenation under different working conditions

Abstract

A new approach to the kinetics of magnesium hydride dehydrogenation is considered. A model able to predict the dehydrogenation under different experimental conditions has been proposed. A new combined kinetic analysis method, which considers the thermodynamic of the process according to the microreversibility principle, has been used for performing the kinetic analysis of data obtained under different thermal schedules at hydrogen pressures ranging from high vacuum up to 20 bar. The kinetic analysis shows that the dehydrogenation mechanism of magnesium hydride depends on the experimental conditions. Thus, the reaction follows a first order kinetics, equivalent to an Avarmi-Erofeev kinetic model with an Avrami coefficient equal to 1, when carried out under high vacuum, while a mechanism of tridimensional growth of nuclei previously formed (A3) is followed under hydrogen pressure. An explanation of the change of mechanism is given. It has been shown that the activation energy is closed to the Mg-H bond breaking energy independently of the hydrogen pressure surrounding the sample, which suggests that the breaking of this bond would be the rate limiting step of the process. The reliability of the calculated kinetic parameters is tested by comparing simulated and experimental curves.

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Magnesium hydride for energy storage applications: The kinetics of dehydrogenation under different working conditions

Author: Perejón Pazo, Antonio; Sánchez Jiménez, Pedro Enrique; Criado Luque, José Manuel; Pérez Maqueda, Luis Allan
Publisher: Elsevier
Year: 2016
DOI: 10.1016/j.jallcom.2016.04.191
Source: https://idus.us.es/bitstreams/5f03bc65-f752-4bbf-9311-814250cf54af/download
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Magnesium hyd ide o ene gy s o age applica ions: The kine ics o
dehyd ogena ion unde di e en wo king condi ions
An onio Pe ejóna,b,*, Ped o E. Sánchez-Jiméneza, José M. C iadoa, Luis A. Pé ez-
Maquedaa,*
aIns i u o de Ciencia de Ma e iales de Se illa (C.S.I.C.-Uni . Se illa). C. Amé ico
Vespucio 49, Se illa 41092. Spain
bDepa amen o de Química Ino gánica, Facul ad de Química, Uni e sidad de Se illa,
Se illa 41071, Spain
Abs ac
A new app oach o he kine ics o magnesium hyd ide dehyd ogena ion is conside ed. A
model able o p edic he dehyd ogena ion unde di e en expe imen al condi ions has
been p oposed. A new combined kine ic analysis me hod, which conside s he
he modynamic o he p ocess acco ding o he mic o e e sibili y p inciple, has been
used o pe o ming he kine ic analysis o da a ob ained unde di e en he mal
schedules a hyd ogen p essu es anging om high acuum up o 20 ba .
The kine ic analysis shows ha he dehyd ogena ion mechanism o magnesium hyd ide
depends on he expe imen al condi ions. Thus, he eac ion ollows a i s o de kine ics,
equi alen o an A a mi-E o ee kine ic model wi h an A ami coe icien equal o 1,
when ca ied ou unde high acuum, while a mechanism o idimensional g ow h o
nuclei p e iously o med (A3) is ollowed unde hyd ogen p essu e. An explana ion o
he change o mechanism is gi en. I has been shown ha he ac i a ion ene gy is closed
o he Mg-H bond b eaking ene gy independen ly o he hyd ogen p essu e su ounding
he sample, which sugges s ha he b eaking o his bond would be he a e limi ing s ep
o he p ocess. The eliabili y o he calcula ed kine ic pa ame e s is es ed by
compa ing simula ed and expe imen al cu es.
Keywo ds: magnesium hyd ide; hyd ogen s o age; he mal ene gy s o age; kine ic analysis;
dehyd ogena ion-hyd ogena ion eac ions; kine ic model
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1. In oduc ion
Magnesium hyd ide is a ma e ial o he mos in e es o a numbe o echnical
applica ions, mainly as hyd ogen s o age ma e ial o PEM uel cells, due o i s la ge
e e sible s o age capaci y (7.6 mass%) o high pu i y hyd ogen [1-5], and as a he mal
ene gy s o age sys em in he mosola plan s due o he high en halpy o he
hyd ogena ion-dehyd ogena ion eac ions [6-10]. Mo eo e , magnesium has a ela i ely
high abundance in ea h. Fo any o hese wo applica ions, he kine ics o he
dehyd ogena ion-hyd ogena ion eac ions is o pa amoun impo ance. I has been
epo ed in li e a u e ha he dehyd ogena ion eac ion is a e y sensi i e p ocess ha
depends on a numbe o pa ame e s such as he mal his o y o he sample ( o example,
ac i a ion cycles o hyd ogena ion-dehyd ogena ion) [4],s uc u al de ec s in he
sample p oduced by mechanical milling [11], p esence o addi i es wi h o wi hou
ca aly ic e ec [12-16], gas p essu e [17-18], e c. Mo eo e i has been shown in
li e a u e ha he in luence o he anspo o hyd ogen h ough he Mg/MgH2 bed on
he kine ics o hyd ogena ion/dehyd ogena ion eac ions mus be conside ed when
ei he la ge o compac ed samples a e being p ocessed [18-20]. This is no he case o
his wo k, in which e y small amoun s o powde samples will be used o minimizing
he in luence o gas anspo phenomena on he o wa d eac ion.
A deep knowledge o he kine ics o abso p ion and deso p ion p ocesses in
nonca alyzed MgH2-based ma e ials is c ucial o u u e applica ions bo h as hea
s o age o hyd ogen s o age ma e ial and is o he mos in e es o be e unde s and he
beha io o milled and ca alyzed MgH2.
A e y la ge numbe o s udies o abso p ion and deso p ion o hyd ogen in MgH2 and
ela ed compounds ha e been pe o med employing ei he olume ic analysis unde
iso he mal condi ions o he mog a ime y (TG) and di e en ial scanning calo ime y
(DSC) a linea ising empe a u e unde a low o hyd ogen o an ine gas [11, 17-18,
21-28]. Howe e , in mos o he cases he hyd ogen p essu e has no been ca e ully
con olled and, p o ided ha he dehyd ogena ion o MgH2 is e e sible, he
uncon olled g adien s o hyd ogen p essu e gene a ed du ing he eac ion could lead o
un ealis ic kine ic models and alse kine ic pa ame e s. Mo eo e , in many cases he
kine ic analysis has been ca ied ou by p e iously assuming a gi en kine ic model o
i ing he expe imen al da a, bu i is known, i s ly, ha a same se o expe imen al
da a can be simul aneously i ed by a numbe o kine ic models and, secondly, ha he
4

ac i a ion ene gy is s ongly dependen on he kine ic model p e iously assumed [29-
33]. A p ope kine ic analysis o e e sible he mal decomposi ion eac ions unde a
gi en cons an p essu e o he gas sel -gene a ed in he eac ion would imply o conside
he he modynamic o he p ocess by aking in o accoun he mic o e e sibili y p inciple
[26, 30, 34-35]. On he o he hand, i would be ad isable o associa e he
mic o e e sibili y p inciple wi h me hods o kine ic analysis ha would allow
de e mining bo h he kine ic pa ame e s and he kine ic model obeyed by he eac ion
wi hou any p e ious assump ion on he kine ic model.
The objec i e o his wo k is he s udy o he dehyd ogena ion kine ics o magnesium
hyd ide a p essu es anging om high acuum up o 20 ba s o hyd ogen in o de o ge
a uni ied eac ion mechanism ha would allow p edic ing he kine ic beha io o he
dehyd ogena ion o magnesium hyd ide as a unc ion o he hyd ogen p essu e.
2. Expe imen al
Comme cially a ailable magnesium hyd ide pu chased om Ald ich (p oduc numbe
683043, wi h a e age pa icle size o 50 μm) was used o pe o ming he s udy. In all
cases, he powde s we e weigh ed inside a glo e-box, aken ou o i and immedia ely
placed in he co esponding ins umen in o de o minimize he exposi ion o he
samples o he ai .
The mog a ime ic measu emen s we e pe o med using a high sensi i i y (2 × 10-7 g)
CI Elec onics he mobalance and a as esponse u nace connec ed o a high- acuum
sys em ( o a y and u bomolecula pumps) ha is able o educe p essu e o ~5 × 10-5
mba . A se o calib a ion weigh s whe e used o calib a e he mass ou pu o he
hemobalance, while he empe a u e calib a ion was pe o med using hyd ous calcium
oxala e hea ed a 10 K min-1. The expe imen s we e pe o med a ~5 × 10-5 mba in
con en ional linea hea ing a e condi ions, a 0.2 K min-1, 0.5 K min-1 and 1 K min-1.
The s eady-s a e o he sys em was eached a e ou gassing o e nigh a oom
empe a u e and ull pumping a e. A quad upole mass spec ome e (P ism, P ei e )
was employed o pe o m he e ol ed gas analysis. A shu o al e allows ca ying ou
he expe imen s ei he unde high acuum o in a gas low. Typical sample size was ~85
mg, which was placed in alumina pan.
Di e en ial scanning calo ime y (DSC) expe imen s we e pe o med unde 10 ba and
20 ba o hyd ogen p essu e on a p essu e DSC sys em (Q20P, TA Ins umen s,
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C awley, UK) ha p o ides hea low measu emen s on p essu e sensi i e ma e ials.
The p essu e cell employs s anda d hea lux DSC echnology and inco po a es p essu e
con ol al es, a p essu e gauge, and o e -p essu e p o ec ion. The sys em was
connec ed o a mass low con olle and a p essu e con olle in o de o ca y ou he
expe imen s unde 50 cm3 min-1 hyd ogen low and a cons an p essu e. The hea low
and empe a u e calib a ion we e ca ied ou employing s anda d sapphi e discs and
indium. The me al was hea ed h ough i s mel ing ansi ion and he calcula ed hea o
usion compa ed o he heo e ical alue. Mo eo e , he eco ded mel ing poin o his
s anda d is compa ed o he known mel ing poin and he di e ence is calcula ed o
empe a u e calib a ion. The DSC expe imen s we e ca ied ou in open alumina pans a
di e en hea ing a es, β: 1 K min-1, 2.5 K min-1, 5 K min-1 and 7.5 K min-1. Typical
sample size was ~5 mg. Be o e pe o ming he expe imen s, he sys em was ou gassed
using a o a y al e du ing 20 min, o p e en sample oxida ion. The expe imen al DSC
cu es we e no malized in such a way ha he o al a ea enclosed co esponds o ull
con e sion (i.e; α = 1). Thus, he alues o dα/dT a a gi en empe a u e a e equal o he
alue o he o dina e (y axis) a his empe a u e and he co esponding alue o dα/d is
ob ained h ough he exp ession dα/d = β(dα/dT). The α-T plo s we e ob ained by
nume ical in eg a ion o he no malized DSC plo s.
X- ay di ac ion pa e ns we e eco ded in acuum in a Philips X’Pe P o
di ac ome e wo king a 45 kV and 40 mA, using CuKα adia ion and equipped wi h
an X’Cele a o de ec o and a g aphi e di ac ed beam monoch oma o .
3. Theo e ical
The dehyd ogena ion o magnesium hyd ide akes place acco ding o he ollowing
e e sible eac ion:
←
→ (1)
Acco ding o he mic o e e sibili y p inciple, in a e e sible eac ion he mechanism in
one di ec ion is exac ly he e e se o he mechanism in he o he di ec ion. This
p inciple has been employed by di e en au ho s o s udy he in luence o p oduc gas
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
p essu e on e e sible eac ions, leading o he ollowing exp ession o he eac ion a e
[26, 30, 34-37]:


󰇛󰇜1
∗󰇛2󰇜
whe e α is he eac ed ac ion calcula ed no malizing he mass loss in
he mog a ime y o in eg a ing and no malizing he DSC cu es, A is he
p eexponen ial ac o , E he ac i a ion ene gy, (α) he kine ic model ollowed by he
eac ion, p he p essu e o he gas gene a ed in he eac ion (which is main ained
cons an in ou expe imen s) and p* is he equilib ium p essu e o he gas (hyd ogen in
ou case). I he eac ion is ca ied ou unde high acuum in such a way ha he
p essu e p is ex emely low wi h ega d o he equilib ium p essu e, he e m p/p* would
be close o ze o and equa ion (2a) becomes:


󰇛󰇜󰇛2󰇜
The equilib ium p essu e in equa ion (2a) would be de e mined as a unc ion o he
empe a u e om he Van’ Ho equa ion:
ln∗
∆
∆
󰇛3󰇜,
whe e p* is he equilib ium p essu e a he absolu e empe a u e T, p0 is he a mosphe ic
p essu e, H and S a e he en halpy and en opy o hyd ide o ma ion and R is he
uni e sal gas cons an .
3.1. Model ee me hods
F iedman isocon e sional me hod allows de e mining he ac i a ion ene gy as a
unc ion o α wi hou conside ing he kine ic model o he p ocess [38-39]. Thus,
equa ion (2a) can be ea anged in loga i hmic o m as ollows:

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

ln1
∗󰇟󰇛󰇜󰇠
󰇛4󰇜
I we a e a om equilib ium like in he expe imen s conduc ed unde high acuum we
ge om equa ion (2b):

󰇡
󰇢󰇟󰇛󰇜󰇠
 (4b)
The ac i a ion ene gy a a cons an α is calcula ed om he slope o he plo o he le -
hand side o ei he equa ion (4a) o (4b) agains he in e se o empe a u e a a gi en
alue o α.
3.2. Combined kine ic analysis
The combined kine ic analysis is a me hod o ob aining bo h he kine ic model and he
kine ic pa ame e s associa ed o a p ocess om he simul aneous analysis o a se o
da a ob ained unde di e en he mal schedules wi hou p e iously assuming nei he o
he kine ic pa ame e s o he kine ic model o he p ocess [40-41]. The modi ied Ses ak-
Be gg en equa ion, i.e. 󰇛󰇜󰇛1󰇜, has been conside ed o his pu pose.
This is because his empi ical equa ion beha es like an umb ella ha i all he kine ic
equa ions p oposed in li e a u e o desc ibing solid s a e eac ions, including de ia ions
om ideal models [40, 42-43].Thus, he equa ion o Ses ak–Be gg en simpli ies
conside ably he kine ic analysis, allowing he disc imina ion o he kine ic model in a
second s ep wi h he help o mas e plo s.
The equa ion o he combined kine ic analysis is ob ained ea anging he equa ion (2a)
in loga i hmic o m a e eplacing he (α) unc ion by he Ses ak-Be gg en equa ion:
󰇯 /
󰇛1󰇜󰇡1
∗󰇢󰇰ln󰇛󰇜
󰇛5󰇜
o
 /
󰇛1󰇜ln󰇛󰇜
󰇛5󰇜,
8

when a om equilib ium (i.e.; p/p* = 0). The se o expe imen al da a, co esponding
o di e en hea ing schedules, is subs i u ed ei he in o equa ion (5a) o (5b) and he
le -hand side o he equa ions is plo ed e sus he in e se o empe a u e. The Pea son
linea co ela ion coe icien is se as an objec i e unc ion o op imiza ion, and he
alues o he pa ame e s n and m ha p o ide he bes linea i o he plo a e
de e mined. The alues o E and ln(cA) a e calcula ed om he slope and in e cep
espec i ely.
4. Resul s and discussion
4.1. Kine ics o magnesium hyd ide dehyd ogena ion in acuum.
Figu e 1 p esen s he XRD pa e n o he as ecei ed magnesium hyd ide eco ded in
acuum a oom empe a u e in he 2θ ange om 25° o 50°. The Rie eld e inemen
o he XRD p o ile shows ha he sample is cons i u ed by a mix u e o 86% o MgH2
and 14 % o me allic magnesium. The la ice pa ame e s de e mined om he Rie eld
me hod a e a = 0.4518(4) and c = 0.3019(3) ha a e in excellen ag eemen wi h he
alues epo ed o he e agonal β-MgH2 phase acco ding o he powde di ac ion ile
JCPDS 12-0697. These esul s sugges ha he sample is cons i u ed by quasi-
s oichiome ic MgH2 and un eac ed magnesium. I is no ewo hy o poin ou ha i has
been heo e ically demons a ed in li e a u e ha he β-MgH2 phase is capable o
accommoda ing only e y small concen a ions o hyd ogen acancies ha a e mainly
isola ed a he han o ming clus e s [44]. I has been sugges ed ha he o ma ion o
non-s oichiome ic magnesium hyd ide is es ic ed o nanome ic pa icles, al hough
s uc u al e idence has no been epo ed un il now [3, 22, 45]. On he o he hand, i is
known ha , o bulk mic on sized pa icles a shell o magnesium hyd ide is o med,
which p e en s he hyd ogena ion o he emaining me al co e a e he maximum
hyd ogena ion o magnesium is achie ed [3, 45-47]. Thus, i can be conside ed ha he
pe cen age o magnesium p esen in he sample is no coming om he pa ial
decomposi ion o MgH2 du ing he s o age unde ine a mosphe e bu i co esponds o
un eac ed me al. The e o e, i is easonable o pe o m he kine ic analysis in he o e all
eac ed ac ion ange, conside ing ha α = 0 o he s a ing sample and α = 1 o he
comple ely dehyd ogena ed ma e ial.
9

Figu e 1. XRD pa e n o he as ecei ed magnesium hyd ide eco ded in acuum a oom empe a u e.
The kine ics o MgH2 dehyd ogena ion was i s s udied by he mog a ime y unde
high acuum o p e en oxida ion a he ime o app oach o ze o he a io p/p* in o de
o ob ain di ec ly he ac i a ion ene gy o he o wa d eac ion (1) om equa ion (4b)
and o pe o m he combined kine ic analysis by means o equa ion (5b). Expe imen s
we e pe o med a low hea ing a es wi h a double pu pose: i s ly, o educe he
decomposi ion empe a u es in o de o a oid Mg sublima ion and secondly, o
minimize he in luence o hea and mass ans e phenomena on he o wa d eac ion.
Figu e 2 shows he mass loss and he a e o mass loss p o iles o he he mal
dehyd ogena ion o magnesium hyd ide eco ded unde ~5 × 10-5 mba a 0.2 K min-1,
and he co esponding e olu ion o he H2 signals egis e ed by mass spec ome y as a
unc ion o empe a u e. I is clea om Figu e 2a ha hyd ogen is eleased in a single
p ocess and he mass loss is 6.5%, wha indica es ha he s a ing sample is cons i u ed
by 86% o MgH2, which con i ms he esul p e iously ob ained om he XRD analysis
by he Rie eld me hod. Figu e 2b con i ms ha H2 is e ol ed in a single s age, as
obse ed in he he mog a ime ic ace.
10

Figu e 2. (a) In eg al TG (mass loss) and di e en ial TG cu es o he he mal dehyd ogena ion o
magnesium hyd ide eco ded unde ~5 × 10-5 mba a 0.2 K min
-1. (b) Co esponding H2 signals
egis e ed by mass spec ome y as a unc ion o empe a u e.
Figu e 3 p esen s he he mog a ime ic cu es eco ded a 0.2 K min-1, 0.5 K min-1 and
1 K min-1. Mass losses ha e been no malized o u n i in o eac ed ac ions.
Ne e heless, an o e all mass loss equal o 6.5% was ob ained in he whole se o
expe imen s shown in Figu e 3. The shape o he α-T plo s included in his igu e
suppo s ha he dehyd ogena ion o MgH2 occu s h ough a single s ep. The ac ha
some au ho s ha e obse ed mo e han one s ep pe haps would be explained
conside ing he con amina ion o hei samples wi h Mg(OH)2 coming om a ce ain
hyd olysis o he hyd ide [17, 21]. Thus, he he mal decomposi ion o MgH2 and
Mg(OH)2 could be o e lapping.
The appa en ac i a ion ene gy o MgH2 dehyd ogena ion as a unc ion o he eac ed
ac ion was calcula ed by means o he F iedman isocon e sional me hod desc ibed in
sec ion 3.1, analyzing simul aneously all expe imen al cu es included in Figu e 3 a
di e en α alues by means o equa ion (4b), p o ided ha p/p* is close o ze o. In ac ,
17

Figu e 6. Tempe a u e dependence o he p essu e co ec ion e m (1-p/p*) a p essu es o 10 ba and 20
ba .
Figu e 7. No malized dα/d plo s o he dehyd ogena ion o magnesium hyd ide, calcula ed om he
DSC aces shown in igu e 5 (do ed lines). a) Hyd ogen p essu e o 10 ba s; b) hyd ogen p essu e o 20
ba s. The cu es econs uc ed using he kine ic pa ame e s ob ained om he kine ic analysis a e plo ed
as solid lines.

18

Table 2. Ac i a ion ene gy alues as a unc ion o α, ob ained om he F iedman isocon e sional analysis
o he expe imen al cu es shown in Figu e 7 wi hou accoun ing o he p essu e e m (1-p/p*).
Table 3 shows he ac i a ion ene gies ob ained by he isocon e sional me hod om he
expe imen al cu es included in Figu e 7 acco ding o equa ion (4a), namely
conside ing he p essu e e m. The ac i a ion ene gies a e easonably cons an du ing
he en i e p ocesses and, he e o e, magnesium hyd ide dehyd ogena ion unde 10 ba
and 20 ba o hyd ogen p essu e can be desc ibed as a single eac ion wi h ac i a ion
ene gies a e aging 124±7 kJ mol-1 and 127±4 kJ mol-1 espec i ely. These ac i a ion
ene gies ma ch inside he e o ange a ained. Hence, when he p essu e e m is aken
in o accoun , he ac i a ion ene gy ob ained is p ac ically cons an be ween 10 and 20
ba s and jus sligh ly highe han ha calcula ed o magnesium hyd ide
dehyd ogena ion unde high acuum.
Table 3. Ac i a ion ene gy alues as a unc ion o α, ob ained om he F iedman isocon e sional analysis
o he expe imen al cu es shown in Figu e 7 accoun ing o he p essu e e m (1-p/p*).
dehyd ogena ion a 10 ba
α 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9
0.996 0.996 0.997 0.998 0.997 0.998 0.998 0.998 0.999
E
(kJ mol-1) 226 ± 9 208 ± 8 201 ± 9 197 ± 7 195 ± 6 195 ± 6 197 ± 5 201 ± 8 208 ± 11
dehyd ogena ion a 20 ba
α 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9
0.970 0.991 0.994 0.994 0.994 0.995 0.996 0.997 0.996
E
(kJ mol-1) 292 ± 11 291 ± 9 283 ± 7 275 ± 8 268 ± 7 263 ± 6 259 ± 8 255 ± 8 252 ± 10
dehyd ogena ion a 10 ba
α 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9
0.995 0.999 0.999 0.999 0.999 0.999 0.999 0.999 0.997
E
(kJ mol-1) 131 ± 11 123 ± 6 119 ± 5 118 ± 7 118 ± 5 120 ± 5 125 ± 4 127 ± 7 135 ± 12
dehyd ogena ion a 20 ba
α 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9
0.968 0.991 0.993 0.994 0.994 0.995 0.996 0.997 0.996
E
(kJ mol-1) 121 ± 7 128 ± 4 129 ± 5 127 ± 3 126 ± 3 125 ± 3 126 ± 4 128 ± 5 131 ± 8
19

The combined kine ic analysis, desc ibed in Sec ion 3.2, was applied o he cu es
egis e ed unde 10 ba and 20 ba o H2 sepa a ely. Figu e 8 shows he plo s o he le
hand side o equa ion 5a, using each se o expe imen al da a, e sus he e e se o
empe a u e. The en i e con e sion ange can be easonably i ed o he model o bo h
expe imen s unde 10 ba and 20 ba . The alues ob ained o n and m om he
op imiza ion p ocedu e a e n = 0.881 and m = 0.864 a 10 ba and n = 0.83 and m =
0.745 a 20 ba o hyd ogen p essu e. The slopes o he plo s lead o ac i a ion ene gy
alues o 124 ± 2 kJ mol−1 and 121 ± 4 kJ mol−1 o 10 ba and 20 ba , espec i ely,
while he in e cep s yield o alues o cA o 5.4 (±1.5) × 109 min−1 and 2.9 (±0.8) × 109
min−1. The alue o c canno be disc imina ed bu a combined cA is ob ained ins ead.
The ac i a ion ene gy alues a e in good ag eemen wi h hose calcula ed by he
isocon e sional analysis (Table 3), which demons a es he eliabili y o he alues
ob ained.
Figu e 8. Combined kine ic analysis plo s o he expe imen al cu es p esen ed in Figu e 7, eco ded in
10 ba and 20 ba o hyd ogen p essu e.
Compa ison wi h he heo e ical kine ic unc ions is needed o de e mine he kine ic
model ollowed by he eac ion. In igu e 9, he con e sion unc ions es ima ed by he
combined kine ic analysis a e plo ed oge he wi h he mos commonly used kine ic
models, such as nuclea ion and g ow h, i s o de and di usion. The compa ison
e idences ha he calcula ed (α) unc ions ob ained o MgH2 dehyd ogena ion unde
10 ba and 20 ba ma ch he mas e plo co esponding o he A3 A ami-E o ee
20

kine ic model. I is no ewo hy ema k ha hese esul s ha e been ob ained wi hou any
p e ious assump ion abou he kine ic models o he ac i a ion ene gies. F om a
physical poin o iew, his model implies he ins an o ma ion o idimensional nuclei
ollowed by he g ow h o hese nuclei [61].
In he same way as was done in he p e ious sec ion o MgH2 dehyd ogena ion unde
high acuum, he kine ic pa ame e s calcula ed by he kine ic analysis we e used o
econs uc ing he expe imen al cu es nume ically, in eg a ing he gene al kine ic
equa ion and conside ing he hea ing condi ions used in he di e en expe imen s. Then,
he cu es we e di e en ia ed wi h espec o ime and he esul ing dα/d cu es a e
included in Figu e 7. The kine ic pa ame e s a e alida ed by he close ma ch be ween
he simula ed dα/d -T cu es and he expe imen al ones.
Figu e 9. Compa ison o he (α) unc ions (lines) no malized a α = 0.5 co esponding o some o he
ideal kine ic models wi h he (α) unc ions esul ing om he combined analysis o MgH2
dehyd ogena ion in (a) 10 ba o hyd ogen p essu e and (b) 20 ba o hyd ogen p essu e.
21

The dehyd ogena ion mechanism is modi ied by he expe imen al condi ions in which
he expe imen s a e pe o med. Thus, a change om i s -o de d i en p ocess
(equi alen o A1) in high acuum o an A3 nuclea ion mechanism in hyd ogen p essu e
is obse ed. This change o mechanism would be explained aking in o accoun he
la ge inc ease o he decomposi ion empe a u e imposed by he equilib ium
displacemen unde hyd ogen p essu e. This no iceably inc ease o he decomposi ion
empe a u e o he hyd ide would p omo e he g ow h o he po en ial nucleus o ming
si es, un il collapsing in nuclei o idimensional shape. Thus, once ha he equilib ium
empe a u e o he dehyd ogena ion o MgH2 unde a gi en hyd ogen p essu e is
o e passed, he dehyd ogena ion eac ion akes place h ough he idimensional g ow h
o he nuclei p e iously o med.
On he o he hand, i is no ewo hy o poin ou ha he di e ence be ween he
ac i a ion ene gies ob ained unde high acuum and unde hyd ogen p essu e is only
abou a 12%. The ac ha he ac i a ion ene gy o he o wa d eac ion ob ained unde
hyd ogen p essu e ho oughly ag ee wi h he alue o 127 kJ mol-1 epo ed o he Mg-
H bond ene gy sugges s ha he b eaking o his bond is he a e limi ing s ep o
magnesium hyd ide he mal dehyd ogena ion [62]. The ex a ene gy s o ed as la ice
de ec s on he s a ing sample would accoun o he sligh ly lowe ac i a ion ene gy
ob ained o he dehyd ogena ion o MgH2 unde high acuum.
Finally, he ac ha ac i a ion ene gies closed o 120 kJ mol-1 we e de e mined o he
dehyd ogena ion kine ics unde iso he mal condi ions using as aw ma e ials MgH2
samples supplied by di e en manu ac u e s, as shown in a ecen e iew [3], would
sugges ha he Mg-H bond-b eaking could be he a e limi ing s ep o he eac ion as
we ha e p oposed. This would be ue in spi e ha di e en kine ic models we e
assumed o de e mining he ac i a ion ene gies collec ed in he Va in e al. e iew [3].
I has been demons a ed in a ecen pape ha he same ac i a ion ene gy is ob ained
om a se o iso he mal da a, wha e e would be he kine ic model p e iously assumed,
which is no ue i kine ic da a ob ained om ising empe a u e expe imen s a e
conce ned [63].
5. Conclusions
Kine ics o MgH2 dehyd ogena ion has been s udied in h ee di e en expe imen al
condi ions. The kine ic analysis has been pe o med using model- ee isocon e sional
22

analysis ha p o ides he alue o he ac i a ion ene gy as a unc ion o he eac ion
ac ion, and he combined kine ic analysis p ocedu e ha allows ob aining all he
kine ic pa ame e s a oiding any kind o assump ion abou he kine ic model obeyed by
he eac ion, and he e o e he isk o model- i ing he expe imen al da a wi h an
e oneous kine ic model. The eliabili y o he calcula ed kine ic pa ame e s has been
es ed by compa ing simula ed and expe imen al cu es.
In e es ingly, esul s ob ained show ha dehyd ogena ion mechanism o MgH2 depends
on he expe imen al condi ions used o ca y ou he eac ion. Thus, i he eac ion is
pe o med unde high acuum, i ollows a i s o de kine ics, equi alen o an A ami-
E o ee kine ic model wi h an A ami coe icien equal o 1, while a idimensional
g ow h o nuclei p e iously o med (A3) is ollowed when he expe imen is ca ied ou
unde 10 ba o 20 ba o hyd ogen p essu e. A uni ied heo y ha explains his
beha io is gi en. The ac i a ion ene gy o he eac ion is less in luenced by he
expe imen al condi ions, and he alues ob ained ag ee wi h he alue epo ed o Mg-
H bond ene gy, which sugges s ha he b eaking o his bond could be he a e limi ing
s ep o he MgH2 he mal dehyd ogena ion.
6. Acknowledgemen s
I is acknowledged he suppo om p ojec s CTQ2014-52763-C2-1-R (MINECO-
FEDER), TEP-7858 (Jun a Andalucía-FEDER) and TEP-1900 (Jun a Andalucía-
FEDER). The au ho s also hank VPPI-US o he AP cu en con ac . Addi ionally,
one o he au ho s (PESJ) is suppo ed by a Ma ie Cu ie-Jun a de Andalucía Talen ia
g an .
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