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Revealing dynamic-mechanical properties of precipitates in a nanostructured thin film using micromechanical spectroscopy

Abstract

Nanostructured materials with their remarkable properties are key enablers in many modern applications. For example, industrial dry-milling processes would not be as widely spread without the use of hard, wear-resistant metal nitride coatings to protect the cutting tools. However, improving these nanostructured thin films with regard to dynamical properties is demanding as probing respective parameters of (sub-)micron layers without any substrate influence is still challenging. To extend the scientific toolbox for such spatially confined systems, a novel methodological approach based on resonance peak measurements of a cantilever-transducer system termed micromechanical spectroscopy (mu MS) is developed and applied to a Al0.8Cr0.2N model system. The mainly wurtzite type supersaturated Al0.8Cr0.2N system showed precipitation of cubic CrN at grain boundaries and local Cr variations upon annealing at 1050 degrees C. This was accompanied by an increase in the previously unknown damping capability of 63 percent and an increase in Young's modulus by 36 percent.

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Revealing dynamic-mechanical properties of precipitates in a nanostructured thin film using micromechanical spectroscopy

Author: Alfreider, Markus; Meindlhumer, Michael; Ziegelwanger, Tobias; Daniel, Rostislav; Keckes, Jozef; Kiener, Daniel
Publisher: SPRINGER HEIDELBERG
Year: 2023
DOI: 10.1557/s43577-023-00549-w
Source: https://dspace.vut.cz/bitstreams/a8c0c6c9-9d3c-48b9-87a9-25726d3f0076/download
MRS BULLETIN • VOLUME 49 • JANUARY 2024 • m s.o g/bulle in
49
Re ealing dynamic‑mechanical
p ope ies o p ecipi a es
in a nanos uc u ed hin ilm using
mic omechanical spec oscopy
Ma kusAl eide ,* MichaelMeindlhume , TobiasZiegelwange ,
Ros isla Daniel, Joze Keckes, and DanielKiene
Nanos uc u ed ma e ials wi h hei ema kable p ope ies a e key enable s in many
mode n applica ions. Fo example, indus ial d y-milling p ocesses would no be
as widely sp ead wi hou he use o ha d, wea - esis an me al ni ide coa ings o
p o ec he cu ing ools. Howe e , imp o ing hese nanos uc u ed hin ilms wi h
ega d o dynamical p ope ies is demanding as p obing espec i e pa ame e s o
(sub-)mic on laye s wi hou any subs a e in luence is s ill challenging. To ex end
he scien i ic oolbox o such spa ially con ined sys ems, a no el me hodological
app oach based on esonance peak measu emen s o a can ile e - ansduce
sys em e med mic omechanical spec oscopy (µMS) is de eloped and applied
o a Al0.8C 0.2N model sys em. The mainly wu zi e ype supe sa u a ed Al0.8C 0.2N
sys em showed p ecipi a ion o cubic C N a g ain bounda ies and local C
a ia ions upon annealing a 1050°C. This was accompanied by an inc ease in he
p e iously unknown damping capabili y o 63pe cen and an inc ease in Young’s
modulus by 36pe cen .
Impac s a emen
The e is a wide a ie y o applica ions o nano- o
mic ome e -sized hin ilms in oday’s enginee ing
echnology, om he mal ba ie - and wea - esis an
coa ings in u bines and bea ings, o e di usion ba -
ie s and hea sinks in mic oelec onic de ices, o op i-
cally ac i e laye s in lase s o mi o s. The mechanical
p ope ies o such hin ilms a e o en imes go e ned
by hei he mal his o y, leading o ei he in en ional
o undesi ed changes in he mic os uc u e (e.g., he
o ma ion o p ecipi a es). While he in es iga ion o
such ea u es is usually cons ic ed o s a ic analysis
using high- esolu ion echniques, such as ansmission
elec on mic oscopy, unde s anding hei impac on
dynamic p ope ies o he ilm emains a challenge.
Howe e , hese a e highly ele an in many enginee -
ing applica ions whe e cyclic beha io is common,
such as high-speed d y milling. In he p esen wo k,
we in es iga e he change in mechanical damping
capabili y upon annealing o a 6-µm hin AlC N ilm,
commonly used in demanding d y-milling applica-
ions, using mic omechanical spec oscopy (µMS)
o can ile e -shaped specimens. A e a ca e ully
adjus ed hea ea men , he ilm exhibi s he o ma-
ion o cubic C N p ecipi a es in an o he wise wu zi e
AlC N ma ix, which leads o a p e iously unknown
bene icial inc ease in damping capabili y o he ilm.
In oduc ion
Ha d nanoce amic coa ings a e commonly
used in mode n enginee ing applica ions
whe e du abili y and he mal s abili y ma -
e , such as cu ing inse s o high-speed
d y milling1,2 o he mal ba ie coa ings o
u bines.3–5
Commonly, such sys ems a e based on
ansi ion-me al ni ide hin ilms such
as TiN and C N deposi ed by plasma-
assis ed physical apo deposi ion ech-
niques (e.g., ca hodic a c e apo a ion).6
Adding Al in o TiN and C N leads o he
o ma ion o Ti1−xAlxN and C 1−xAlxN,
espec i ely, which ha e signi ican ly
highe ha dness and oxida ion esis -
ance compa ed o hei ep esen a i e
bina y coun e pa s.7 In u n, cubic (B1)
Ti1−xAlxN and C 1−xAlxN o m me as a-
ble supe sa u a ed solid solu ions, whe e
Al eplaces Ti o C up o x = 0.678,9
o 0.7,7 espec i ely. Upon annealing,
hese hin ilms unde go a complex em-
pe a u e and ( esidual) s ain-dependen
decomposi ion p ocesses,10,11 which al e
hei unc ional and mechanical p ope -
ies.7 Typically, o Ti1−xAlxN spinodal
decomposi ion in o Ti- ich and Al- ich
cubic zones is obse ed a empe a u es
be ween 800° and 900°C leading o a
sligh inc ease o ha dness12 and ough-
ness,13 while a e exceeding 950°C, he
o ma ion o wu zi e (B4) Al(Ti)N is
p omo ed, esul ing in a signi ican d op
in mechanical p ope ies.12–14 Compa a-
bly, cubic C 1−xAlxN (x < 0.7) di ec ly
© The Au ho (s) 2023
doi:10.1557/s43577-023-00549-w
Ma kusAl eide , Depa men o Ma e ials Science, Mon anuni e si ä Leoben, Leoben, Aus ia; [email p o ec ed]
MichaelMeindlhume , Depa men o Ma e ials Science, Mon anuni e si ä Leoben, Leoben, Aus ia
TobiasZiegelwange , Depa men o Ma e ials Science, Mon anuni e si ä Leoben, Leoben, Aus ia
Ros isla Daniel, Depa men o Ma e ials Science, Mon anuni e si ä Leoben, Leoben, Aus ia
Joze Keckes, Depa men o Ma e ials Science, Mon anuni e si ä Leoben, Leoben, Aus ia
DanielKiene , Depa men o Ma e ials Science, Mon anuni e si ä Leoben, Leoben, Aus ia
*Co esponding au ho
Impac A icle
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decomposes in o cubic C (Al)N and wu zi e Al(C )N a
empe a u es abo e ~700–900°C, whe e he o me ans-
o ms la e on a empe a u es su passing 1000°C and
1350°C in o C 2N and me allic C unde he elease o
gaseous ni ogen.15
In he case o C 1−xAlxN hin ilms wi h x > 0.7, he ilms
o m p edominan ly a wu zi e B4 c ys al s uc u e du ing
deposi ion,9 whe e C eplaces Al in he wu zi e c ys al
s uc u e. The e, decomposi ion s a s a signi ican ly highe
empe a u es (>950°C), o ming again cubic C (Al)N and
wu zi e Al(C )N composi e.16,17 As shown o Al0.9C 0.1N,
acuum annealing a 1100°C esul ed in he o ma ion o
globula cubic C (Al)N and elonga ed cubic C N p ecipi a es
a in a- and in e g anula posi ions, which, in u n, simul ane-
ously enhanced Young’s modulus, ha dness, ac u e s ess,
and ac u e oughness.17
The hickness o hese ilms is ypically in he ange
o a ew mic ome e s, which makes he cha ac e iza ion
o mechanical p ope ies wi hou subs a e in luence gen-
e ally challenging. In ecen yea s, a ious me hods ha e
been de eloped o ob ain eliable expe imen al da a, om
ha dness and modulus using nanoinden a ion,18 o e ac-
u e p ope ies using pilla spli ing19 o mic ocan ile e
bending20 o esidual s esses using laye emo al21–23 o
c oss-sec ional x- ay nanodi ac ion echniques.24–26 How-
e e , all o hese app oaches de e mine quasis a ic ma e ial
pa ame e s, whe eas in mos applica ions (e.g., high-speed
d y milling), hese sys ems a e loaded wi h a a he s ong
dynamic componen due o he high o a ion speeds. In
ac , dynamic p ope ies such as damping can ha e a ben-
e icial o de imen al impac on he pe o mance. Highe
damping capabili ies enable he dissipa ion o ib a ional
ene gy, which could occu h ough sligh eccen ici ies and
misalignmen s.
Fu he mo e, damping con ols dissipa ion o ene gy gi en
e e sible elas ic de o ma ion and is he e o e nondes uc-
i e independen o measu emen echnique. This means ha
damping measu emen s can be used o de e mine inhe en
changes due o he mal o en i onmen al his o y in a sys em,
and because a change in damping capabili y is commonly he
di ec esul o mic os uc u al changes i can be used o p obe
mic os uc u al modi ica ions, such as p ecipi a ion o g ain
g ow h.
Al hough such in es iga ions can be expe imen ally eal-
ized on whole de ices (e.g., cu ing inse s), he esul s a e
challenging o esol e in o he indi idual cons i uen s o
he sys em (e.g., subs a e o ha d nanoce amic coa ing).
The e o e, i would be desi able o ha e a echnique capa-
ble o esol ing he damping beha io o hese indi idual
cons i uen s.
In his a icle, we showcase such an expe imen al app oach,
e med mic omechanical spec oscopy (µMS, ecen ly in o-
duced in Re e ence 27), on a Al0.8C 0.2N coa ing on cemen ed
ca bide as commonly ound in he high-speed d y-milling indus-
y. The measu emen s a e based on de e mining esonance
peaks o an in si u nanoinden a ion ansduce sys em in con ac
wi h a can ile e -shaped mic ospecimen o he coa ing ma e ial
inside a scanning elec on mic oscope (SEM). The absence o
ai -damping inside he SEM chambe enables a high- esolu ion
analysis o he esonance peak and he e o e de e mina ion o he
damping capabili y o such spa ially con ined specimens. The
measu ed change in damping upon hea ea men o he coa ing
is co ela ed o he o ma ion o p ecipi a es using µMS in es-
iga ions in conce wi h complemen a y ansmission elec on
mic oscopy (TEM) and x- ay di ac ion (XRD), espec i ely.
Resul s
Mic os uc u al andchemical analysis
Figu e 1a shows a c oss-sec ional SEM image o he
Al0.8C 0.2N ilm in as-deposi ed condi ion. The e, indi idual
b igh ea u es co espond o esidual C xAly d ople s om
he deposi ion p ocess. Upon annealing o only 5 min a
1050°C, he mic os uc u e exhibi s ob ious p ecipi a ion,
as e iden by he da k and b igh (depending on channeling
con as ) ea u es in Figu e 1b. De ailed scanning ansmis-
sion elec on mic oscope (STEM) images in conjunc ion wi h
ene gy-dispe si e spec oscopy (EDS) analysis, as depic ed
in Figu e 1c e eal a laye ed mic os uc u e wi h a sligh
undula ing magni ude o Al and C con en s, espec i ely.
This laye o ma ion is known o be esul an o he dis-
ibu ion o chemical species inside he deposi ion plasma
in conjunc ion wi h he o a ion o he subs a e in and ou
o he line o sigh o he ca hode.28–30 Fu he mo e, i is
e iden ha d ople s (Figu e 1c, b igh ea u e) appea o
be mainly in e me allic C xAly, as he N con en is dimin-
ished in ha egion, while i is app oxima ely cons an e e-
ywhe e else. Thus, wi h he excep ion o indi idual d ople s,
he ilm appea s o be ully homogenous, sugges ing a e y
high con en o supe sa u a ed wu zi e ype Al0.8C 0.2N, as
de ailed in p e ious wo ks.17 A e hea ea men he ilm
exhibi s a clea decomposi ion, displayed in Figu e 1d, whe e
dis inc C - ich p ecipi a es a e e iden . These appea o
nuclea e p e e en ially a he posi ions o p e iously highe
ini ial C con en (i.e., along he C -en iched laye s).
Phase analysis
To analyze he phase con en s in as-deposi ed and hea - ea ed
condi ions, XRD in es iga ions we e conduc ed on he espec-
i e ilms and a e summa ized in Figu e 2. The e he peak
posi ions o wu zi e AlN and cubic C N a e deno ed by
g een del oids and blue squa es, espec i ely. The posi ions
o he WC subs a e (g ay iangles) and he TiN bonding
laye (o ange squa es) a e addi ionally added o e e ence.
I is e iden ha he dis inc AlN peaks (100: 33.211°; 101:
37.924°; 110: 59.338°) a e shi ed owa d lowe alues in he
as-deposi ed s a e and mo e owa d hei equilib ium posi ions
upon annealing, in acco dance wi h p e ious wo ks on compa-
able composi ion.17 Howe e , a con ibu ion o he emo al
o esidual s ess by de ec annihila ion as a consequence o
he hea ea men canno be excluded om he peak shi o
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REVEALiNg dYNAMic‑MEchANicAL pROpER iEs O pREcipi A Es iN A NANOs RUc UREd hiN iLM UsiNg MicROMEchANicAL spEc ROscOpY
he AlN la ice.17 In ac , he peak shi oge he wi h he con-
comi an inc ease in magni ude o he 200 C N peak a 43.693°
(Figu e 2, op igh inse ) sugges s ha C di uses ou o he
supe sa u a ed Al0.8C 0.2N s uc u e, lea ing a ela i ely highe
con en o Al in he wu zi e AlN la ice, while he p ecipi a ed
C o ms cubic C N c ys als.
Mic omechanical spec oscopy
Mic omechanical spec oscopic (µMS) in es iga ions we e con-
duc ed on ou as-deposi ed and h ee hea - ea ed can ile e -
shaped specimens. This echnique was de eloped ecen ly in a
p e ious wo k27 and is capable o e ealing changes in damping
capabili y o e y con ined olumes by in es iga ing he shape
o he i s esonance peak o he used inden a ion se up. Fig-
u e 3a depic s an SEM mic og aph o he specimen and inden a-
ion se up wi h ele an geome ic dimensions: leng h L, heigh
W, and hickness B (in imaging di ec ion). Quan i a i e alues
a
b
cd
Figu e1. Scanning elec on mic oscope images o (a) he as-deposi ed and (b) hea - ea ed Al0.8C 0.2N ilms, espec i ely. The
lowe pa o he igu e con ains scanning ansmission elec on mic oscope mic og aphs, wi h co esponding ene gy-dispe si e
spec oscopy da a o N (blue, op igh ), Al (g een, lowe le ), and C ( ed, lowe igh ) o (c) as-deposi ed and (d) hea - ea ed
s a es, espec i ely.
Figu e2. X- ay di ac ion da a o he hin- ilm samples in as-depos-
i ed (blue) and hea - ea ed ( ed) s a es, espec i ely. The inse de ails
he 200 peak o cubic C N, showing e iden inc ease o his phase
upon annealing.
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a e ga he ed by i ing he esonance peak based on a physical
single deg ee o eedom (SDOF) oscilla o model, as shown
schema ically in Figu e 3b using he lm i package ( e sion
1.0.0) wi hin he Py hon 3.8 p og amming en i onmen .27
Ini ial da a a e ga he ed as dynamic compliance c o
he whole sys em as a unc ion o equency, whe eby
c(
ω
)=�
x
(
ω
)/�
F , wi h displacemen ampli ude Δx and load
ampli ude ΔF. To compa e he specimens among hemsel es, i
is use ul o no malize he adial equency by he esonance e-
quency
ω0=√
k
/m
and he compliance by he s a ic compliance
c0(
ω
=
0
)=
1
/
k , wi h mass m and s i ness k. The esul ing da a
a e summa ized in Figu e 4, whe ein he as-deposi ed specimens
a e depic ed by open symbols and he hea - ea ed ones a e indi-
ca ed by illed symbols. The damping capabili y o a ma e ial is
commonly quan i ied as in e se quali y ac o Q−1, which is he
a io be ween dissipa ed wo k ΔW and o al conduc ed wo k W
du ing one oscilla ion cycle and can be w i en as:
wi h he iscous damping cons an b. In Figu e 4 he a e age
esonance cu e o all as-deposi ed specimens (Qad
−1 = 1.0
6 × 10–2 ± 1 × 10–4) is depic ed wi h a blue solid line and he
a e age esonance cu e o all hea - ea ed specimens (Qh
−1 =
1.124 × 10–2 ± 1 × 10–4) is gi en by a dashed ed line. As he
damping o he sys em is la ge in compa ison o ha o he
indi idual can ile e s, obse ing he di e ence is a he chal-
lenging in he whole da a g aph. The e o e, he yellow inse
in Figu e 4 ( op igh co ne ) de ails he peak ip egion and
shows he e iden di e ence in peak heigh o he wo speci-
men s a es. Fu he mo e, all o he as-deposi ed s a es show
a e y dis inc damping peak on he igh -hand side o he
main esonance peak a an absolu e a e age adial equency
posi ion o ω = 1849 ± 4 Hz, which is no e iden in he hea -
ea ed specimens. These peaks a e shown as de ailed inse
1
Q
−1
=
�
W
2
π
W
=
b
√km
in Figu e 4 (lowe igh co ne ). No e ha hose a e sligh ly
shi ed among hemsel es as he esonance equency o he
indi idual can ile e s is no iden ical due o mino geome ical
a ia ions.
To ob ain he damping capabili y o he ma e ial sys em inde-
penden o he p obing inden e one needs o ake in o accoun
he wo k ha is dissipa ed by he inden e sys em ou o con ac
(i.e.,
Q−
1
s=
Q
−
1
−
Q−1
i
)
,
whe eby he subsc ip s s and i deno e
he specimen and inden e , espec i ely. The indi idual specimen
in e se quali y ac o Qs
−1 is summa ized in Figu e 5a, whe e he
da a o each as-deposi ed can ile e a e depic ed by open blue
hexagons (le -hand side) and ha o each hea - ea ed can ile e
by open ed squa es ( igh -hand side). All unce ain y es ima es
a e conside ed based on unco ela ed inpu quan i ies31 wi h geo-
me ic measu emen e o s o ± 3 px (±50 nm) and all pa ame e
e o s aken as one s anda d de ia ion, gi en by he i ing p oce-
du e. The illed da a poin s in Figu e 5 depic he in e se a iance
weigh ed a e age o all indi idual µMS expe imen s o he wo
espec i e ma e ial s a es. The e he e o ba s deno e he s and-
a d e o o he weigh ed a e age. F om Figu e 5a i is e iden
ha he damping capabili y inc eases qui e signi ican ly by abou
66% om Qs,ad
−1 = 2.3 × 10–3 ± 2 × 10–4 o he as-deposi ed s a e o
Qs,h
−1 = 3.8 × 10–3 ± 3 × 10–4 o he hea - ea ed s a e, espec i ely.
Fu he mo e, µMS expe imen s allow o he de e mina ion
o Young’s modulus based on he equency shi o he peak, as
his co esponds o he can ile e specimen s i ness ks. How-
e e , o de e mine he indi idual specimen’s s i ness om he
o al s i ness k wi hou he con ibu ions o he inden e sys em
Figu e3. (a) Scanning elec on mic oscope mic og aph o a
can ile e -shaped specimen posi ioned inside he Al0.8C 0.2N ilm wi h
geome ic pa ame e s leng h L and heigh W. (b) The single deg ee
o eedom oscilla o model, depic ing he s i ness k and damping
elemen s b o inden e ( ed), con ac (g een), and specimen (blue),
espec i ely, as well as (c) he educed sp ing model o Young’s
modulus de e mina ion.
Figu e4. Resonance peaks o all es ed specimens, no malized by
esonance equency ω0 and s a ic compliance o he o al sys em
c o al (ω = 0). The as-deposi ed specimens a e deno ed by open
symbols and he hea ea ed by illed symbols, espec i ely. The
solid blue line ep esen s he a e age esonance shape o he whole
sys em o all as-deposi ed da a wi h Q−1 = 0.0106, whe eas he
dashed ed line ep esen s he same o all hea - ea ed da a wi h
Q−1 = 0.0124. Two inse s show de ails o he esonance peak o bo h
s a es and an occu ing damping peak in as-deposi ed s a e a highe
esolu ion, espec i ely.
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and he con ac be ween ip and specimen su ace, one needs
o conside a educed model as shown in Figu e 3c, whe e
he specimen s i ness ks and con ac s i ness kc a e se ies-
connec ed and he inden e s i ness ki is in pa allel o bo h o
hem. This is due o he ac ha bo h he specimen and he
inden e ip a e connec ed wi h he igid base inside he SEM,
gi ing hem a common g ound in analogy o elec ic ci cui s.
The specimen s i ness ks is calcula ed as ollows:
While he inden e s i ness is ob ained du ing he cali-
b a ion ou ine o he ins umen , he con ac s i ness is a
unc ion o he con ac o ce and needs o be measu ed on
he base o he can ile e .32 Fo he gi en expe imen s a an
a e age cons an con ac o ce o 500 µN a con ac s i ness
o kc = 44,030 N/m was de e mined. Using he ac ha du -
ing he expe imen only small o al load line displacemen s o
2
k
s
=
1
k
−
k
i
−
1
k
c
−1
.
≈250 nm, leading o small o a ion angles o ≈1.5°, a e used,
one can u ilize he simple Eule –Be noulli beam heo y33 o
calcula e he Young’s modulus E as:
The da a a e summa ized in Figu e 5b, whe e he same colo
scheme and unce ain y p opaga ion calcula ions as o he Q−1
da a a e employed. I is e iden ha he modulus inc eases by
abou 36% om Ead = 205 ± 6 o Eh = 280 ± 9 GPa, om he
as-deposi ed o he hea - ea ed s a es, espec i ely.
Discussion
The discussion will be s uc u ed in o sec ions ega ding phase
o ma ion, change in damping capabili y and inc ease in mod-
ulus, espec i ely.
Cubic C N phase o ma ion
The e iden phase o ma ion o he cubic C N phase a e
annealing, as de ailed in a ecen p e ious wo k on a sim-
ila composi ion (Al0.9C 0.1N),17 is d i en by he supe -
sa u a ion o C a oms inside he equilib ium AlN c ys al
s uc u e as a mainly wu zi e ype Al0.8C 0.2N solid solu-
ion (Figu e 2).
To es ima e he amoun o cubic C N phase ha o ms
upon annealing, Rie eld e inemen (Powde Cell 2.434) was
used on he da a p esen ed in Figu e 2, u ilizing he ac ual
c ys allog aphic spacing o he simila supe sa u a ed wu z-
i e Al0.9C 0.1N s uc u e (a = 313.3 pm, c = 500.3 pm17) as
ini ia ion pa ame e s. A e sub ac ion o he dis inc peaks
o he TiN bonding laye and he WC subs a e he con en s
o he wu zi e- ype ma ix s uc u e compu e o 94 and 85%,
while he cubic C N con en s enume a e o 6 and 15% o
he as-deposi ed and hea - ea ed ma e ial s a es, espec-
i ely. This sugges s ha al eady in he as-deposi ed s a e a
mino amoun o cubic C N is p esen , bu upon annealing he
amoun inc eases by abou 9 pe cen . As he mic os uc u e
is a he homogeneous in he as-deposi ed s a e (Figu e 1c),
hese mic os uc u al egions seem o be below he esolu ion
limi o he ga he ed STEM images, so in he ange o a ew
nanome e s. Fu he mo e, he ac ha only 15% C N is e i-
den a e annealing sugges s ha s ill abou 5% o C emain
inco po a ed inside he wu zi e AlN ma ix, as he d i ing
o ce o he C o di use ou is educed by he elaxa ion o
eigens esses, due o de ec annihila ion and seg ega ion as
e iden om he AlN peak shi (Figu e 2). As complemen a y
analysis, mul iple STEM mic og aphs o he hea - ea ed s a e
(simila o Figu e 1d) ha e been analyzed by image h eshold-
ing (ImageJ 1.54s35) using manual h eshold inpu s o ob ain
es ima es o he a ea ac ion o he C N phase. The esul s
anged om app oxima ely 5 o 16%, which includes he in lu-
ence o human inpu pa ame e s as well as locally di e en
C N con en ha could occu due o he s ochas ic dis ibu ion
o C . Howe e , hese alues show easonable ag eemen wi h
3
E=
4ksL3
BW
3
.
Figu e5. Summa y o (a) damping capabili y Qs−1 and (b) Young’s
modulusE o all specimens o as-deposi ed (blue hexagons) and
hea - ea ed ( ed squa es) s a es; espec i ely. The open symbols
deno e he indi idual da a ga he ed om µMS expe imen s, whe eas
he illed symbols deno e he in e se a iance weigh ed a e age o
he speci ic ma e ial s a es.

54 MRS BULLETIN • VOLUME 49 • JANUARY 2024 • m s.o g/bulle in
REVEALiNg dYNAMic‑MEchANicAL pROpER iEs O pREcipi A Es iN A NANOs RUc UREd hiN iLM UsiNg MicROMEchANicAL spEc ROscOpY
he Rie eld analysis and co obo a e ha he majo amoun
o cubic C N o ms hese e iden app oxima ely 10–20-nm-
sized p ecipi a es.
Elas ic modulus change
The elas ic modulus o he as-deposi ed mainly wu zi e
Al0.8C 0.2N is conside ably lowe a 205 ± 6 GPa han he elas ic
modulus o pu e wu zi e AlN would be wi h ~ 301 GPa36 (cal-
cula ed by he Voig –Reuss–Hill (VRH) app oxima ion37,38)
om simula ions o ~340 GPa39 om expe imen al measu e-
men s. One could a gue ha his dec ease o elas ic modulus is
a esul o he la ge uni cell gi en he C inco po a ion. Using
he p opo ionali y ela ions be ween elas ic modulus E, bulk
modulus K, and he second de i a i e o he binding ene gy
o e uni cell olume
6
2U
6
V
2 , as commonly desc ibed by he
Bi ch–Mu naghan equa ion o s a e,40,41 in conjunc ion wi h
he di e ence be ween supe sa u a ed and elaxed uni cell size
om Meindlhume e al.17 ( oughly 0.5%), i is possible o
es ima e he change o elas ic modulus o be app oxima ely
2 pe cen . This would mean he modulus change based on he
inc eased uni cell size in he as-deposi ed Al0.8C 0.2N in com-
pa ison o he equilib ium AlN, would amoun o only abou
6 GPa ( om 301 o 295 GPa), which seems no enough o a
di e ence o explain he disc epancy obse ed he ein. How-
e e , conside ing on he o he hand he ac ha C is mos
likely subs i u ional on Al posi ions wi hin he wu zi e s uc-
u e, one can a gue ha he change in bonding ene gy be ween
he species could al e he elas ic esponse. Al hough he p e-
cise bonding ene gies o he indi idual species combina ions
inside he c ys al s uc u e a e nea impossible o ob ain, bind-
ing ene gies o wo-a omic s uc u es a e abula ed and can ac
as a i s -o de es ima e.42 The s eng hs o ei he Al–N bonds
(3.81 eV) and C –N bonds (3.92 eV) di e only sligh ly by
abou 3%, whe eas he Al–Al bonds (2.74 eV) a e signi ican ly
s onge han he Al–C bonds (2.31 eV) by abou 16 pe cen .
As he elas ic p ope ies o c ys als a e a di ec esul o he
bonding s eng hs, his could ac as a sou ce o he educed
modulus gi en he o ced inco po a ion o C wi hin he wu z-
i e AlN s uc u e. Conside ing now he hea - ea ed specimens
sugges s wo possible sou ces o an inc eased modulus. Fi s
he p ecipi a ion o la ge cubic C N egions wi h an inhe en ly
highe elas ic modulus o 358 GPa43 (using again he VRH
app oxima ion37,38), o second he s a is ical inc ease in
s onge Al–Al bonds, wi hin he wu zi e AlxC 1−xN s uc u e,
due o dissolu ion o he C ou o he ma ix.
The ini ial elas ic modulus in he as-deposi ed Al0.8C 0.2N
is also in good ag eemen wi h he single-c ys al ab ini io
calcula ions by May ho e e al.,44 who ound elas ic moduli
anging om 188 o 195 GPa o he wu zi e AlxC 1−xN sys-
em, espec i ely.
To alida e he p esen esul s, nanoinden a ion expe imen s
we e pe o med on he ilms wi hou any p io su ace p epa a-
ion. As nanoinden a ion expe imen s only de e mine a educed
modulus, hey a e no di ec ly compa able o he µMS esul s
as hese de e mine he ac ual ma e ial’s elas ic modulus. The e-
o e, he Poisson’s a io o AlN ν = 0.24 was assumed o cal-
cula e he ma e ial’s inden a ion moduli as Ei,ad = 266 ± 34 GPa
and Ei,h = 326 ± 82 GPa o he as-deposi ed and hea - ea ed
s a es, espec i ely. While a simila end o modulus inc ease
is e iden in he nanoinden a ion da a, he ough su ace o he
unpolished ilms as well as he unknown mic os uc u al ea-
u es unde nea h he inden s (e.g., d ople s [see Figu e 1c]) lead
o a a he la ge sca e in compa ison wi h he µMS esul s.
One could imp o e he nanoinden a ion esul s by p io pol-
ishing s eps. Howe e , gi en ha he sys em is only 6 µm in
hickness and a ce ain hickness mus be e ained o nanoin-
den a ion o de e mine a subs a e-in luence ee modulus,
his could be a he challenging. Simila limi a ions apply o a
c oss-sec ional app oach.45 The e o e, i appea s ha al hough
he p epa a ion ia FIB milling is mo e cumbe some, he mod-
ulus de e mina ion using µMS could be bene icial in sys ems
wi h a high su ace oughness o small geome ic spacing, such
as he Al0.8C 0.2N laye as s udied he ein. Fu he mo e, he
ac ha no ini ial Poisson’s a io es ima e is necessa y means
ha unknown changes in his a io upon p ecipi a ion o o he
mic os uc u al changes ha e no in luence on he inal esul .
Change indamping capabili ies
Commonly he damping capabili y is educed a e anneal-
ing as dissipa i e elemen s such as esidual de ec s a e
ei he emo ed (e.g., disloca ions,46 acancies)47 o elaxed
(e.g., g ain bounda ies).27,48,49 The e o e, he p esen inc ease
o damping by abou 66% upon annealing seems a he coun-
e in ui i e. Especially, conside ing he small damping peak a
ω = 1849 ± 4 Hz in he as-deposi ed s a e, which is no appa -
en a e hea ea men sugges s ha some easy o ac i a e
anelas ic elaxa ion p ocesses we e emo ed (e.g., annealing
o de ec s om a me as able, o a mo e s able (equilib ium)
s a e ook place). Independen o he ac ual unde lying p o-
cess, hese peaks a e known o ollow an A henius ela ion-
ship,50,51 as:
whe e , 0 a e he elaxa ion ime and limi elaxa ion ime, H
is an ac i a ion en halpy, k is he Bol zmann cons an , and T is
he empe a u e. While classical in e nal ic ion expe imen s
change empe a u e as well as equency o measu e 0 and H,
one can use he in e se o he Debye equency o wu zi e AlN
as 0 ≈ 10–13 –10–15 52,53 o ob ain a i s -o de app oxima ion o
H. In conjunc ion wi h he cons an oom empe a u e T = 22°C
(ai condi ioned), he ac i a ion en halpy o a peak wi h a elax-
a ion ime o = 0 ω−1 s, equa es o H ≈ 0.57 – 0.69 eV. Com-
monly, c ys alline dissipa i e mechanisms can be sepa a ed in o
h ee main ca ego ies, namely sho - ange di usion, o exam-
ple, Snoek elaxa ion,54 disloca ion-based mechanisms,55–57 o
g ain-bounda y (phase bounda y)-based mechanisms.58–60 Con-
side ing ha any ype o oscilla o y disloca ion mo ion in his
ha d nanoce amic coa ing is unlikely o occu unde he small
load ampli ude o 5 µN, which co esponds o a maximum s ess
4
=
0
e
H
kT
,
MRS BULLETIN • VOLUME 49 • JANUARY 2024 • m s.o g/bulle in
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ampli ude o app oxima ely 10 MPa a he base o he can ile e ,
his mechanism can be neglec ed.
I bulk di usion p ocesses would ha e a majo con ibu-
ion o he damping peak, he es ima ed ac i a ion en halpy
should ag ee wi h ac i a ion ene gies o he co esponding
di usional p ocess.
Densi y unc ional heo y calcula ions o acancy di usion
wi hin wu zi e AlN sugges an ac i a ion ene gy o app oxi-
ma ely 2.33 eV61 and Okumu a e al.62 measu ed he ac i a ion
ene gy o impu i y di usion (Si and O) wi hin wu zi e AlN as
app oxima ely 1.3 eV using posi on annihila ion. None o hese
ene gies a e low enough o be compa able wi h he es ima e o
0.57–0.69 eV om he obse ed damping peak. The e o e, he
p ocesses co ela ed wi h his damping peak mos likely esul s
o he nonequilib ium c ys al s uc u e in he as-deposi ed s a e
(i.e., me as able a om posi ions due o he o ced inco po a ion o
C o e y small local wu zi e-cubic s uc u al in e aces ha a e
al eady p esen ), as sugges ed by he XRD da a (Figu e 2). This
is u he suppo ed by he ac ha acancy o ma ion ene gies
seem o be gene ally educed in un elaxed (i.e., de o med), in
compa ison o he elaxed (i.e., annealed s a e in (Ti,Al)N/AlN
in e aces), as epo ed om ab ini io simula ions.63
The disappea ance o his small peak upon annealing
would imply a lowe amoun o dissipa ing p ocesses, and i
he p ocesses co esponding o his peak would con ibu e o
he o e all damping in a majo ex en , also he main esonance
damping peak should dec ease, leading o a lowe Q−1 in he
hea - ea ed s a e.
Howe e , he obse ed p ecipi a ion o he C N phase
esul s in an inc ease in phase bounda y a ea, which can also
con ibu e o he damping capabili y o he sys em. Schoeck64
de i ed an analy ical exp ession o he change in Q−1 upon
p ecipi a ion based on he shape change, elas ic modulus
misma ch, and occu ence o incohe en phase bounda ies,
espec i ely. He a gued ha he i s wo cases seem un ea-
sonable due o he ac ha a change in shape would need o
inco po a e some kind o di usional componen o anelas ic
elaxa ion o occu , and a misma ch in elas ic modulus leads
o ins an aneous changes (no ime dependence— he e o e no
anelas ic elaxa ion) upon load e e sal, lea ing only elaxa-
ion p ocesses wi hin incohe en bounda ies as easonable
sou ces o damping. His ea men was based on a quasi-
degene a e ellipsoidal egime wi h hal -axis a, which con ains
he incohe en bounda y and leads o:
whe e τ, τi a e a global homogeneous and a local ac ing shea
s ess, espec i ely, and V is he o al specimen olume. This
a he abs ac geome ical desc ip ion is challenging o co -
ela e wi h expe imen al da a. Idealizing he sys em by assum-
ing ha he homogeneous global shea s ess is a he a shea
s ess dis ibu ion being equal o he shea s ess dis ibu ion
ac ing on he in e aces emo es τ and τi om he equa ion.
5
Q
−1
=
1
τ2
8(1−ν)
3π
(
2
−
ν
)

ia3
iτ2
i
V
≈
0.0194Vp ecipi a es
V
,
Fu he mo e, assuming ha all p ecipi a es a e dodecahed al
in shape and a e o he same size allows o es ablish a ela ion-
ship be ween he ellip ical hal -axis a and he (a e age) p e-
cipi a e olume Vp ecipi a es, by se ing he c oss-sec ional a ea
o he ellipsoid and one o he 12 sides’ a eas o he dodeca-
hed on o be equal, as schema ically depic ed in Figu e 6a.
Based on his simpli ied sys em one can es ima e he inc ease
in olume ac ion o p ecipi a es wi hin he specimen based
on he change in damping capabili y (ΔQ−1 ≈ 1.5 × 10–3) o
be app oxima ely 7.7%, which ag ees con incingly well wi h
he inc ease o he cubic C N phase deduced om Rie eld
analysis (9%), and sugges s ha he dissipa ing p ocesses
wi hin incohe en in e aces ha e a majo con ibu ion o he
obse ed damping inc ease upon annealing. Simila beha -
io has been p e iously obse ed only in me allic sys ems
(Ni–Al,65 Cu–O,66 Al–Cu,67 Al–Mg68), whe e semi-cohe en
o incohe en p ecipi a ion o ma ion lead o he occu ence
o a empe a u e independen elaxa ion peak in in e nal ic-
ion expe imen s.
Al hough i is gene ally no known whe he cubic C N
p ecipi a es o m comple ely incohe en ly wi hin he wu z-
i e AlN ma ix, he p ecipi a es ha o m on g ain bounda-
ies will mos likely ha e a leas one incohe en in e ace,
as i will be nea ly impossible o exhibi wo (o mo e—
conside ing iple junc ions) cohe en in e aces du ing
o ma ion be ween wo andomly o ien ed g ains. This is
shown ep esen a i ely in he high- esolu ion TEM mic o-
g aph in Figu e 6b, whe e a C N p ecipi a e wi h wo dis-
inc ly di e en c ys al o ien a ions on ei he side (uppe ,
lowe ) is depic ed. The lowe bounda y is de ailed in Fig-
u e 6c, wi h he zoomed egion on he le -hand side and he
co esponding Fou ie - il e ed image (using only he i s -
o de peaks) on he igh -hand side. The e, he con inua ion
o he la ice planes as e idenced in he Fou ie - il e ed
image demons a es cohe ency be ween he p ecipi a e and
he ma ix. In Figu e 6d, a same-sized egion o he uppe
bounda y as well as he co esponding Fou ie - il e ed
image a e depic ed. While he comple e h ee-dimensional
s uc u e o he bounda y is no esol able, he e iden loss
o cohe ency in he image sugges s an incohe en bound-
a y. This, in conjunc ion wi h he a guable absence o o he
majo dissipa i e mechanisms makes anelas ic elaxa ion
wi hin incohe en cubic C N–wu zi e AlN bounda ies he
mos likely mechanism o he obse ed inc ease in o e all
damping capaci y.
Al hough his no el me hodology p obes a a he wide
ensemble o inhe en de ec s, he analysis and sepa a ion o
hese indi idual de ec s’ s uc u es is no s aigh o wa d. Fo
chemically simple ma e ials (i.e., single species), an a emp
o ma ch he ob ained Q−1 alues o di e en de ec ypes
could be he co ela i e molecula dynamics app oach69 whe e
indi idual de ec s (disloca ions, acancy clus e s, GBs) unde
load esul in a ying phase shi s be ween shea s ess and
s ain, which can be di ec ly co ela ed o damping magni ude.
56 MRS BULLETIN • VOLUME 49 • JANUARY 2024 • m s.o g/bulle in
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Summa y andconclusion
In he p esen wo k an Al0.8C 0.2N hin ilm o abou 6-µm
hickness was deposi ed on cemen ed ca bide by ca hodic a c
e apo a ion as commonly ound in comme cially a ailable
high-speed d y-milling ools. A hea ea men o 1050°C
o only 5 min led o he o ma ion o cubic C N p ecipi a es
wi hin he o he wise wu zi e Al(C )N ma ix, as e idenced
by TEM and XRD in es iga ions. The dynamic-mechanical
p ope ies o he ilm in bo h ma e ial s a es, as-deposi ed
and hea - ea ed, we e in es iga ed using he no el µMS
me hodology and e ealed an inc ease o Young’s modulus
by abou 36% om Ead = 205 ± 6 GPa o Eh = 280 ± 9 GPa, as
well as an inc ease in damping capabili y o abou 66%, om
Qs,ad
−1 = 2.3 × 10–3 ± 2 × 10–4 o Qs,h
−1 = 3.8 × 10–3 ± 3 × 10–4,
upon annealing. The modulus om µMS expe imen s is in
ag eemen o heo e ical and expe imen al li e a u e alues, as
well as nanoinden a ion esul s, which alida es he new me h-
odology. The lowe sca e o he µMS esul s (app oxima ely
3%) in compa ison o he nanoinden a ion da a (up o 25%),
sugges s ha his echnique could be bene icial in sys ems wi h
high su ace oughness and/o a limi ed spa ial ex en , such as
he hin- ilm sys em s udied he ein. Fu he mo e, he e alua-
ion is independen o he o en imes unknown Poisson’s a io.
The inc ease in damping upon annealing is mos likely a esul
o he o ma ion o incohe en phase bounda ies be ween he
cubic C N p ecipi a es and he wu zi e Al(C )N ma ix. This
p e iously un esol able inc ease in damping can be bene i-
cial conside ing he applica ion o high-speed d y milling,
as i de ains mechanical ib a ion and he e o e s ess spikes,
which can lead o ac u e o he ha d coa ing. Fu he mo e,
i unde lines ha he no el
µMS me hodology is able
o esol e mic os uc u al
changes, e en in he g ain/
phase bounda y egime o
e y con ined olumes o
only a ew mic ome e s.
This makes i a use ul
complemen a y echnique
o b idge he gap be ween
high- esolu ion single-
bounda y in es iga ions
(i.e., by TEM and mac o-
scopic in es iga ions on
he whole de ice).
Ma e ials
andme hods
Thin‑ ilm deposi ion
andhea ea men
The ini ial Al0.8C 0.2N hin
ilms we e deposi ed on a
cemen ed ca bide (WC,
10 w % Co) subs a es
by ca hodic a c e apo a ion (alpha 400p, oes alpine ei ele
Vaco ec GmbH, Düsseldo , Ge many) a a bias ol age o
UB = − 100 V, subs a e empe a u e Ts = 475°C, and ni o-
gen p essu e pN2 = 4 Pa. The 10 × 10 × 5 mm3 mi o -polished
cemen ed ca bide subs a es we e moun ed a a dis ance
o ~100 mm om he ca hodes in a one old o a ion holde
ope a ed a a speed o 2 pm and we e plasma cleaned be o e
deposi ion. Fi s , a ~200-nm TiN bonding laye was depos-
i ed u ilizing a single Ti ca hode o inhibi di usion be ween
subs a e and ilm du ing annealing ollowed by Al0.8C 0.2N
deposi ed om i e sin e ed Al0.8C 0.2 ca hodes. The same
deposi ion condi ions we e used h oughou he whole depo-
si ion p ocess. The inal ilm hickness was measu ed using
SEM o be ~6 µm.
To ob ain mic os uc u al changes indi idual samples
we e annealed o 5 min a 1050°C in a acuum a mosphe e
(panneal = 5 × 10–4 Pa) using a con en ional high acuum u -
nace (HTM Ree z GmbH, Be lin, Ge many) ope a ed a hea -
ing and cooling a es o 0.5 K/s.
Elec on mic oscopy andx‑ ay di ac ion
Mic os uc u al in es iga ions we e conduc ed using an SEM
(Leo 1525, Ca l Zeiss AG, Obe kochen, Ge many) ope a ed
a 3 kV using seconda y elec on as well as backsca e elec-
on imaging. Fu he mo e, elec on anspa en oils o he
ilm c oss sec ion we e p epa ed ia ocused ion beam mill-
ing (FIB, Helios NanoLab 660, The mo Fishe Scien i ic Inc.,
Wal ham, Mass., USA) and analyzed using a TEM (Ti an
Themis, The mo Fische Scien i ic Inc., Wal ham, Mass.,
ab
d
c
Figu e6. (a) Idealized dodecahed al p ecipi a e shape wi h side leng hs as well as Schoeck’s64 ellipsoidal
egime o hal -axis leng ha. (b) High- esolu ion ansmission elec on mic oscopemic og aph o a C N p e-
cipi a e wi h de ails o (c) a cohe en and (d) an incohe en phase bounda y, whe e he igh -hand side images
o he de ails a e Fou ie - il e ed, espec i ely.
MRS BULLETIN • VOLUME 49 • JANUARY 2024 • m s.o g/bulle in
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USA) ope a ed a 200 kV accele a ing ol age and a p obe
cu en o 1 nA equipped wi h a de ec o o ene gy-dispe si e
spec oscopy (ChemiSTEM Supe -X spec ome e , The mo
Fishe Scien i ic Inc., Wal ham, Mass., USA) o ob ain local
chemical in o ma ion. XRD phase analysis o he samples was
pe o med using a i e-ci cle x- ay di ac ome e (Sma Lab,
Rigaku Co., Tokyo, Japan) equipped wi h Cu–Kα adia ion, a
pa abolic mul ilaye mi o in he p ima y beam, and a second-
a y g aphi e monoch oma o . The XRD cha ac e iza ion was
ca ied ou in g azing incidence geome y wi h 5° incidence
angle.
Nanoinden a ion andmic omechanical spec oscopy
Nanoinden a ion expe imen s we e conduc ed on bo h ma e ial
s a es wi hou p io su ace p epa a ion using a G200 Nanoin-
den e (KLA Co po a ion, Milpi as, Cali ., USA) wi h a dia-
mond Be ko ich ip. Dep h-sensi i e ha dness and educed
modulus we e ga he ed using con inuous s i ness measu e-
men a a equency o 45 Hz, a loading a e o 0.05 s−1, and
was a e aged be ween 170- and 190-nm pene a ion dep h.
Mic omechanical spec oscopy was conduc ed ollowing
he p ocedu e de eloped in p e ious wo ks27 on can ile e -
shaped specimens wi h a geome y o ~2 × 3 × 12 µm3 p o-
cessed by FIB (1540XB, Ca l Zeiss AG, Obe kochen, Ge -
many) ope a ed a 30 kV and wi h subsequen ly educing
cu en s om 10 nA o 50 pA. The expe imen s we e con-
duc ed using a Hysi on PI85 (B uke Co po a ion, Bille ica,
Mass., USA) ansduce wi h a nanoDMA III upg ade, which
exhibi s an inhe en esonance equency a 114 Hz, and was
equipped wi h a 5-µm-wide conduc i e diamond wedge ip
(Syn on-MDP AG, Nidau, Swi ze land). The specimens we e
loaded o a con ac o ce o 500 µN and he oscilla ion ampli-
ude was kep cons an a 5 µN, while he equency sweep
was conduc ed om 200 o 300 Hz wi h a andomized e-
quency pa e n and h ee epe i ions wi h di e ing equency
spacing o ep oducibili y checks and o ob ain a highe eso-
lu ion owa d he con ac esonance peak. The combined ip
and sha mass as well as he inden e s i ness we e measu ed
du ing he usual calib a ion ou ine as m = 805.63 mg and
ki = 419.62 N/m, espec i ely, and he inhe en damping o
he inden e is Q−1
i = 8.34 × 10–3 ± 3.7 × 10–4.
Acknowledgmen s
This p ojec has ecei ed unding om he Eu opean Resea ch
Council (ERC) unde he Eu opean Union’s Ho izon 2020
esea ch and inno a ion p og amme (G an No. 771146
TOUGHIT). The CzechNanoLab p ojec LM2018110 unded
by MEYS CR is g a e ully acknowledged o he inancial
suppo o he measu emen s/sample ab ica ion a CEITEC
Nano Resea ch In as uc u e. Expe imen al suppo wi h he
x- ay equipmen by J. Tod , he nanoinden a ion equipmen
by V. Maie -Kiene , and he ansmission elec on mic oscopy
in es iga ions by J. Zalesak a e g a e ully acknowledged.
Funding
Open access unding p o ided by Mon anuni e si ä Leoben.
Da a a ailabili y
The aw/p ocessed da a equi ed o ep oduce hese indings
a e a ailable om he co esponding au ho upon easonable
eques .
Con lic o in e es
On behal o all au ho s, he co esponding au ho s a es ha
he e is no con lic o in e es .
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