In-depth profile analysis of filled alumina and titania nanostructured templates by radiofrequency glow discharge coupled to optical emission spectrometry

The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodi...

Full description

Saved in:
Bibliographic Details
Published inAnalytical and bioanalytical chemistry Vol. 396; no. 8; pp. 2833 - 2840
Main Authors Alberts, D, Vega, V, Pereiro, R, Bordel, N, Prida, V. M, Bengtson, A, Sanz-Medel, A
Format Journal Article
LanguageEnglish
Published Berlin/Heidelberg Berlin/Heidelberg : Springer-Verlag 01.04.2010
Springer-Verlag
Springer
Subjects
Online AccessGet full text
ISSN1618-2642
1618-2650
1618-2650
DOI10.1007/s00216-009-3327-2

Cover

Abstract The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodic alumina membranes or self-assembled nanotubular titanium dioxide as templates. The chemical characterization of the nanostructured layers is of great importance to assist the optimization of the filling procedure or to determine their manufacturing quality. Radiofrequency glow discharge (RF-GD) coupled to optical emission spectrometry (OES) is a powerful tool for the direct analysis of either conducting or insulating materials and to carry out depth profile analysis of thin layers by multi-matrix calibration procedures. Thus, the capability of RF-GD-OES is investigated here for the in-depth quantitative analysis of self-aligned titania nanotubes and self-ordered nanoporous alumina filled with arrays of metallic and magnetic nanowires obtained using the template-assisted filling method. The samples analysed in this work consisted of arrays of Ni nanowires with different lengths (from 1.2 up to 5 µm) and multilayer nanowires of alternating layers with different thicknesses (of 1-2 µm) of Ni and Au, or Au and FeNi alloy, deposited inside the alumina and titania membranes. Results, compared with other techniques such as scanning electron microscopy and energy-dispersive X-ray spectroscopy, show that the RF-GD-OES surface analysis technique proves to be adequate and promising for this challenging application. [graphic removed]
AbstractList The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodic alumina membranes or self-assembled nanotubular titanium dioxide as templates. The chemical characterization of the nanostructured layers is of great importance to assist the optimization of the filling procedure or to determine their manufacturing quality. Radiofrequency glow discharge (RF-GD) coupled to optical emission spectrometry (OES) is a powerful tool for the direct analysis of either conducting or insulating materials and to carry out depth profile analysis of thin layers by multi-matrix calibration procedures. Thus, the capability of RF-GD-OES is investigated here for the in-depth quantitative analysis of self-aligned titania nanotubes and self-ordered nanoporous alumina filled with arrays of metallic and magnetic nanowires obtained using the template-assisted filling method. The samples analysed in this work consisted of arrays of Ni nanowires with different lengths (from 1.2 up to 5 µm) and multilayer nanowires of alternating layers with different thicknesses (of 1–2 µm) of Ni and Au, or Au and FeNi alloy, deposited inside the alumina and titania membranes. Results, compared with other techniques such as scanning electron microscopy and energy-dispersive X-ray spectroscopy, show that the RF-GD-OES surface analysis technique proves to be adequate and promising for this challenging application. Figure SEM image of nanoporous alumina template with in-depth profile obtained by RF-GD-OES
The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodic alumina membranes or self-assembled nanotubular titanium dioxide as templates. The chemical characterization of the nanostructured layers is of great importance to assist the optimization of the filling procedure or to determine their manufacturing quality. Radiofrequency glow discharge (RF-GD) coupled to optical emission spectrometry (OES) is a powerful tool for the direct analysis of either conducting or insulating materials and to carry out depth profile analysis of thin layers by multi-matrix calibration procedures. Thus, the capability of RF-GD-OES is investigated here for the in-depth quantitative analysis of self-aligned titania nanotubes and self-ordered nanoporous alumina filled with arrays of metallic and magnetic nanowires obtained using the template-assisted filling method. The samples analysed in this work consisted of arrays of Ni nanowires with different lengths (from 1.2 up to 5 microm) and multilayer nanowires of alternating layers with different thicknesses (of 1-2 microm) of Ni and Au, or Au and FeNi alloy, deposited inside the alumina and titania membranes. Results, compared with other techniques such as scanning electron microscopy and energy-dispersive X-ray spectroscopy, show that the RF-GD-OES surface analysis technique proves to be adequate and promising for this challenging application.The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodic alumina membranes or self-assembled nanotubular titanium dioxide as templates. The chemical characterization of the nanostructured layers is of great importance to assist the optimization of the filling procedure or to determine their manufacturing quality. Radiofrequency glow discharge (RF-GD) coupled to optical emission spectrometry (OES) is a powerful tool for the direct analysis of either conducting or insulating materials and to carry out depth profile analysis of thin layers by multi-matrix calibration procedures. Thus, the capability of RF-GD-OES is investigated here for the in-depth quantitative analysis of self-aligned titania nanotubes and self-ordered nanoporous alumina filled with arrays of metallic and magnetic nanowires obtained using the template-assisted filling method. The samples analysed in this work consisted of arrays of Ni nanowires with different lengths (from 1.2 up to 5 microm) and multilayer nanowires of alternating layers with different thicknesses (of 1-2 microm) of Ni and Au, or Au and FeNi alloy, deposited inside the alumina and titania membranes. Results, compared with other techniques such as scanning electron microscopy and energy-dispersive X-ray spectroscopy, show that the RF-GD-OES surface analysis technique proves to be adequate and promising for this challenging application.
The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodic alumina membranes or self-assembled nanotubular titanium dioxide as templates. The chemical characterization of the nanostructured layers is of great importance to assist the optimization of the filling procedure or to determine their manufacturing quality. Radiofrequency glow discharge (RF-GD) coupled to optical emission spectrometry (OES) is a powerful tool for the direct analysis of either conducting or insulating materials and to carry out depth profile analysis of thin layers by multi-matrix calibration procedures. Thus, the capability of RF-GD-OES is investigated here for the in-depth quantitative analysis of self-aligned titania nanotubes and self-ordered nanoporous alumina filled with arrays of metallic and magnetic nanowires obtained using the template-assisted filling method. The samples analysed in this work consisted of arrays of Ni nanowires with different lengths (from 1.2 up to 5 µm) and multilayer nanowires of alternating layers with different thicknesses (of 1-2 µm) of Ni and Au, or Au and FeNi alloy, deposited inside the alumina and titania membranes. Results, compared with other techniques such as scanning electron microscopy and energy-dispersive X-ray spectroscopy, show that the RF-GD-OES surface analysis technique proves to be adequate and promising for this challenging application. [graphic removed]
The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodic alumina membranes or self-assembled nanotubular titanium dioxide as templates. The chemical characterization of the nanostructured layers is of great importance to assist the optimization of the filling procedure or to determine their manufacturing quality. Radiofrequency glow discharge (RF-GD) coupled to optical emission spectrometry (OES) is a powerful tool for the direct analysis of either conducting or insulating materials and to carry out depth profile analysis of thin layers by multi-matrix calibration procedures. Thus, the capability of RF-GD-OES is investigated here for the in-depth quantitative analysis of self-aligned titania nanotubes and self-ordered nanoporous alumina filled with arrays of metallic and magnetic nanowires obtained using the template-assisted filling method. The samples analysed in this work consisted of arrays of Ni nanowires with different lengths (from 1.2 up to 5 μm) and multilayer nanowires of alternating layers with different thicknesses (of 1-2 μm) of Ni and Au, or Au and FeNi alloy, deposited inside the alumina and titania membranes. Results, compared with other techniques such as scanning electron microscopy and energy-dispersive X-ray spectroscopy, show that the RF-GD-OES surface analysis technique proves to be adequate and promising for this challenging application. © 2009 Springer-Verlag.
The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodic alumina membranes or self-assembled nanotubular titanium dioxide as templates. The chemical characterization of the nanostructured layers is of great importance to assist the optimization of the filling procedure or to determine their manufacturing quality. Radio-frequency glow discharge (RF-GD) coupled to optical emission spectrometry (OES) is a powerful tool for the direct analysis of either conducting or insulating materials and to carry out depth profile analysis of thin layers by multi-matrix calibration procedures. Thus, the capability of RF-GD-OES is investigated here for the in-depth quantitative analysis of self-aligned titania nanotubes and self ordered nanoporous alumina filled with arrays of metallic and magnetic nanowires obtained using the template-assisted filling method. The samples analysed in this work consisted of arrays of Ni nanowires with different lengths (from 1.2 up to 5 gm) and multilayer nanowires of alternating layers with different thicknesses (of 1-2 µm) of Ni and Au, or Au and FeNi alloy, deposited inside the alumina and titania membranes. Results, compared with other techniques such as scanning electron microscopy and energy-dispersive X-ray spectroscopy, show that the RF-GD-OES surface analysis technique proves to be adequate and promising for this challenging application. Keywords Glow discharge * Optical emission spectrometry * Nanostructures * In-depth profile * Metal nanowires
The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing interest due to the peculiar magnetic properties of such materials at the nanoscale. These nanostructures can be fabricated using nanoporous anodic alumina membranes or self-assembled nanotubular titanium dioxide as templates. The chemical characterization of the nanostructured layers is of great importance to assist the optimization of the filling procedure or to determine their manufacturing quality. Radiofrequency glow discharge (RF-GD) coupled to optical emission spectrometry (OES) is a powerful tool for the direct analysis of either conducting or insulating materials and to carry out depth profile analysis of thin layers by multi-matrix calibration procedures. Thus, the capability of RF-GD-OES is investigated here for the in-depth quantitative analysis of self-aligned titania nanotubes and self-ordered nanoporous alumina filled with arrays of metallic and magnetic nanowires obtained using the template-assisted filling method. The samples analysed in this work consisted of arrays of Ni nanowires with different lengths (from 1.2 up to 5 microm) and multilayer nanowires of alternating layers with different thicknesses (of 1-2 microm) of Ni and Au, or Au and FeNi alloy, deposited inside the alumina and titania membranes. Results, compared with other techniques such as scanning electron microscopy and energy-dispersive X-ray spectroscopy, show that the RF-GD-OES surface analysis technique proves to be adequate and promising for this challenging application.
Audience Academic
Author Alberts, D
Vega, V
Sanz-Medel, A
Prida, V. M
Pereiro, R
Bordel, N
Bengtson, A
Author_xml – sequence: 1
  fullname: Alberts, D
– sequence: 2
  fullname: Vega, V
– sequence: 3
  fullname: Pereiro, R
– sequence: 4
  fullname: Bordel, N
– sequence: 5
  fullname: Prida, V. M
– sequence: 6
  fullname: Bengtson, A
– sequence: 7
  fullname: Sanz-Medel, A
BackLink http://pascal-francis.inist.fr/vibad/index.php?action=getRecordDetail&idt=22744480$$DView record in Pascal Francis
https://www.ncbi.nlm.nih.gov/pubmed/19960338$$D View this record in MEDLINE/PubMed
https://urn.kb.se/resolve?urn=urn:nbn:se:ri:diva-12872$$DView record from Swedish Publication Index
BookMark eNqFksuO1DAQRSM0iHnAB7ABb3hIKIMfaSdZtobXSCOxgGFrVRy7x6O0HWxHo_4VvpaK0jQSi2blyDl1XXXrnhcnPnhTFM8ZvWSU1u8TpZzJktK2FILXJX9UnDHJmpLLFT05fFf8tDhP6Z5StmqYfFKcsraVVIjmrPh17cvejPmOjDFYNxgCHoZdcokES_BiMD2BYdo6D_irJ9ll8A6IBx9SjpPOU0Qkm-04QDaJdDsSoXfBRvNzMl7vyGYID6R3Sd9B3BiiwzTOqjmQMGanYSBm61JywZM0Gp1j2Jocd0-LxxaGZJ7tz4vi9tPH71dfypuvn6-v1jellozlsqcd7ytGGeXcdK3lIKumb3XDdK2FtFK0lOveNmAZg16I2nS21qBtx6htK3FRvFt004MZp06N0W0h7lQApz64H2sV4kZFpxhvao70m4VGv3C-lBX2rs0wgDdhSqpeCbliTS3_T2IrrWBi1nx9lKzkqqlERRF8exRkdVVJKXnbInq5oBsYjHLehhwBp4YezdaYo3nZao2idEUFZ1jwYq89dVvTH2z4kxUEXu0BSLg0G8Frlw4c5_h41cxNsoXTMaQUjf0rRdWcW7XkVmFu1ZxbNTtQ_1OjMWcZI4Fdu-FoJd9vD1_xGxPVfZgiZjgdLXq5FFkICjYRx7j9xikTlDWc1mjKb3vfDMA
CitedBy_id crossref_primary_10_1039_C6RA15874A
crossref_primary_10_1016_j_sab_2012_06_040
crossref_primary_10_1016_j_aca_2010_08_031
crossref_primary_10_1039_c2ja30106g
crossref_primary_10_1039_C0JA00160K
crossref_primary_10_1149_2_077204jes
crossref_primary_10_1007_s00216_014_8186_9
crossref_primary_10_1021_ac3031459
crossref_primary_10_1039_D2JA00043A
crossref_primary_10_1039_C0JA00094A
Cites_doi 10.1016/S0584-8547(98)00185-2
10.1146/annurev.matsci.31.1.203
10.1016/j.ssc.2005.02.028
10.1063/1.1687539
10.1140/epjb/e2004-00163-4
10.1039/B517273J
10.1016/j.sab.2007.07.003
10.1002/pssa.200566176
10.1039/B416166A
10.1126/science.261.5126.1316
10.1016/j.apsusc.2007.12.024
10.1007/s00216-004-2531-3
10.1007/s00216-006-0503-5
10.1039/b400918p
10.1021/nl048301k
10.1039/b300026p
10.1088/0957-4484/16/11/038
10.1126/science.268.5216.1466
10.1021/ac035113q
10.1166/jnn.2007.18023
10.1021/ac040052x
10.1007/s11671-006-9026-4
10.1016/j.sab.2006.03.012
10.1016/j.scriptamat.2006.12.032
ContentType Journal Article
Copyright Springer-Verlag 2009
2015 INIST-CNRS
COPYRIGHT 2010 Springer
Copyright_xml – notice: Springer-Verlag 2009
– notice: 2015 INIST-CNRS
– notice: COPYRIGHT 2010 Springer
DBID FBQ
AAYXX
CITATION
IQODW
NPM
7QF
7QQ
7SR
7SU
7U5
8BQ
8FD
C1K
FR3
JG9
L7M
7S9
L.6
7X8
7QH
7UA
ADTPV
AOWAS
DOI 10.1007/s00216-009-3327-2
DatabaseName AGRIS
CrossRef
Pascal-Francis
PubMed
Aluminium Industry Abstracts
Ceramic Abstracts
Engineered Materials Abstracts
Environmental Engineering Abstracts
Solid State and Superconductivity Abstracts
METADEX
Technology Research Database
Environmental Sciences and Pollution Management
Engineering Research Database
Materials Research Database
Advanced Technologies Database with Aerospace
AGRICOLA
AGRICOLA - Academic
MEDLINE - Academic
Aqualine
Water Resources Abstracts
SwePub
SwePub Articles
DatabaseTitle CrossRef
PubMed
Materials Research Database
Engineered Materials Abstracts
Aluminium Industry Abstracts
Technology Research Database
Environmental Engineering Abstracts
Solid State and Superconductivity Abstracts
Ceramic Abstracts
Engineering Research Database
Advanced Technologies Database with Aerospace
METADEX
Environmental Sciences and Pollution Management
AGRICOLA
AGRICOLA - Academic
MEDLINE - Academic
Aqualine
Water Resources Abstracts
DatabaseTitleList
MEDLINE - Academic


AGRICOLA

PubMed
Database_xml – sequence: 1
  dbid: NPM
  name: PubMed
  url: https://proxy.k.utb.cz/login?url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?db=PubMed
  sourceTypes: Index Database
– sequence: 2
  dbid: FBQ
  name: AGRIS
  url: http://www.fao.org/agris/Centre.asp?Menu_1ID=DB&Menu_2ID=DB1&Language=EN&Content=http://www.fao.org/agris/search?Language=EN
  sourceTypes: Publisher
DeliveryMethod fulltext_linktorsrc
Discipline Chemistry
EISSN 1618-2650
EndPage 2840
ExternalDocumentID oai_DiVA_org_ri_12872
A403050321
19960338
22744480
10_1007_s00216_009_3327_2
US201301820740
Genre Journal Article
GroupedDBID ---
-58
-5G
-BR
-EM
-Y2
-~C
.86
.VR
06C
06D
0VY
199
1N0
203
23M
2J2
2JN
2JY
2KG
2KM
2LR
2P1
2VQ
2~H
30V
3V.
4.4
406
408
409
40D
40E
53G
5VS
67Z
6NX
78A
7X7
88E
8FE
8FG
8FH
8FI
8FJ
8TC
8UJ
95-
95.
95~
96X
A8Z
AAAVM
AABHQ
AABYN
AAFGU
AAGCJ
AAHNG
AAIAL
AAIKT
AAJKR
AANZL
AARHV
AARTL
AATNV
AATVU
AAUCO
AAUYE
AAWCG
AAYFA
AAYIU
AAYOK
AAYQN
AAYTO
ABBBX
ABBXA
ABDBF
ABDZT
ABECU
ABFGW
ABFTV
ABHLI
ABHQN
ABIPD
ABJCF
ABJNI
ABJOX
ABKAS
ABKCH
ABKTR
ABLJU
ABMNI
ABMQK
ABNWP
ABPTK
ABQBU
ABSXP
ABTEG
ABTHY
ABTKH
ABTMW
ABULA
ABUWG
ABWNU
ABXPI
ACBMV
ACBRV
ACBXY
ACBYP
ACGFS
ACHSB
ACHXU
ACIGE
ACIPQ
ACIWK
ACKNC
ACMDZ
ACMLO
ACOKC
ACOMO
ACPRK
ACTTH
ACVWB
ACWMK
ADBBV
ADHIR
ADIMF
ADINQ
ADJJI
ADKNI
ADKPE
ADMDM
ADOXG
ADPHR
ADRFC
ADTPH
ADURQ
ADYFF
ADZKW
AEBTG
AEEQQ
AEFTE
AEGAL
AEGNC
AEJHL
AEJRE
AEKMD
AENEX
AEOHA
AEPYU
AESKC
AESTI
AETLH
AEVLU
AEVTX
AEXYK
AFEXP
AFGCZ
AFKRA
AFLOW
AFNRJ
AFQWF
AFRAH
AFWTZ
AFZKB
AGAYW
AGDGC
AGGBP
AGGDS
AGJBK
AGMZJ
AGQMX
AGWIL
AGWZB
AGYKE
AHAVH
AHBYD
AHIZS
AHKAY
AHMBA
AHSBF
AHYZX
AIAKS
AIIXL
AILAN
AIMYW
AITGF
AJBLW
AJDOV
AJGSW
AJRNO
AJZVZ
AKQUC
ALMA_UNASSIGNED_HOLDINGS
ALWAN
AMKLP
AMXSW
AMYLF
AOCGG
ARMRJ
ASPBG
AVWKF
AXYYD
AYJHY
AZFZN
B-.
B0M
BA0
BBNVY
BDATZ
BENPR
BGLVJ
BGNMA
BHPHI
BPHCQ
BVXVI
CAG
CCPQU
COF
CS3
CSCUP
D1I
DDRTE
DL5
DNIVK
DPUIP
EAD
EAP
EBD
EBLON
EBS
EIOEI
EJD
EMK
EMOBN
EPAXT
EPL
ESBYG
ESTFP
ESX
F5P
FBQ
FEDTE
FERAY
FFXSO
FIGPU
FINBP
FNLPD
FRRFC
FSGXE
FWDCC
FYUFA
G-Y
G-Z
GGCAI
GGRSB
GJIRD
GNWQR
GQ6
GQ7
GQ8
GXS
HCIFZ
HF~
HG5
HG6
HMCUK
HMJXF
HQYDN
HRMNR
HVGLF
HZ~
H~9
I09
IAO
IFM
IGS
IHE
IJ-
IKXTQ
IMOTQ
INH
INR
ITC
ITM
IWAJR
IXC
IZIGR
IZQ
I~X
I~Z
J-C
J0Z
JBSCW
JCJTX
JZLTJ
KB.
KDC
KOV
LAS
LK8
LLZTM
M1P
M4Y
M7P
MA-
ML-
N2Q
N9A
NB0
NDZJH
NPVJJ
NQJWS
NU0
O93
O9G
O9I
O9J
OAM
P19
P2P
P9N
PDBOC
PF0
PQQKQ
PROAC
PSQYO
PT4
PT5
QOK
QOR
QOS
R89
R9I
RIG
RNI
RNS
ROL
RPX
RRX
RSV
RZK
S16
S1Z
S26
S27
S28
S3B
SAP
SCLPG
SCM
SDH
SDM
SHX
SISQX
SJYHP
SNE
SNPRN
SNX
SOHCF
SOJ
SPISZ
SQXTU
SRMVM
SSLCW
STPWE
SV3
SZN
T13
T16
TSG
TSK
TSV
TUC
TUS
U2A
U9L
UG4
UKHRP
UNUBA
UOJIU
UTJUX
UZXMN
VC2
VFIZW
W23
W48
W4F
WH7
WJK
WK8
YLTOR
Z45
Z5O
Z7R
Z7S
Z7U
Z7V
Z7W
Z7X
Z7Y
Z7Z
Z81
Z82
Z83
Z85
Z86
Z87
Z88
Z8M
Z8N
Z8O
Z8P
Z8Q
Z8R
Z8S
Z8T
Z8U
Z8V
Z8W
Z8Z
Z91
Z92
ZMTXR
~8M
~KM
0R~
AACDK
AAHBH
AAJBT
AASML
AAYZH
ABAKF
ABQSL
ACAOD
ACDTI
ACPIV
ACUHS
ACZOJ
AEFQL
AEMSY
AEUYN
AFBBN
AGQEE
AGRTI
AIGIU
ALIPV
BSONS
H13
IHR
AAPKM
AAYXX
ABBRH
ABDBE
ABFSG
ACSTC
ADHKG
AEZWR
AFDZB
AFHIU
AFOHR
AGQPQ
AHPBZ
AHWEU
AIXLP
ATHPR
AYFIA
CITATION
PHGZM
PHGZT
ABRTQ
IQODW
PJZUB
PPXIY
PQGLB
NPM
AEIIB
PMFND
7QF
7QQ
7SR
7SU
7U5
8BQ
8FD
C1K
FR3
JG9
L7M
7S9
L.6
7X8
7QH
7UA
ADTPV
AOWAS
PUEGO
ID FETCH-LOGICAL-c611t-d0b2d4101022eb9f2a648d9c81c7c36f63902cdf8af11ad337ebf7cacfb10f943
IEDL.DBID U2A
ISSN 1618-2642
1618-2650
IngestDate Wed Sep 24 03:37:32 EDT 2025
Mon Sep 08 18:03:44 EDT 2025
Mon Sep 08 02:56:18 EDT 2025
Sat Sep 27 19:35:49 EDT 2025
Sat Sep 27 20:38:12 EDT 2025
Tue Jun 10 20:48:32 EDT 2025
Mon Jul 21 06:04:04 EDT 2025
Mon Jul 21 09:18:39 EDT 2025
Thu Apr 24 23:11:56 EDT 2025
Tue Jul 01 04:32:35 EDT 2025
Fri Feb 21 02:41:17 EST 2025
Wed Dec 27 19:27:58 EST 2023
IsDoiOpenAccess false
IsOpenAccess true
IsPeerReviewed true
IsScholarly true
Issue 8
Keywords In-depth profile
Optical emission spectrometry
Nanostructures
Metal nanowires
Glow discharge
Self assembly
Conducting material
Optimization
Characterization
Direct method
Emission spectrometry
Magnetic material
Depth profile
Quality
Titanium
Membrane
Manufacturing
Quantitative analysis
Tool
Scanning electron microscopy
Optical spectrometry
Multilayer
Sample
Alloys
Nanostructure
Calibration
Radiofrequency
Layer thickness
Array
Energy dispersion
Technique
Alumina
Language English
License http://www.springer.com/tdm
CC BY 4.0
LinkModel DirectLink
MergedId FETCHMERGED-LOGICAL-c611t-d0b2d4101022eb9f2a648d9c81c7c36f63902cdf8af11ad337ebf7cacfb10f943
Notes http://dx.doi.org/10.1007/s00216-009-3327-2
ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 23
OpenAccessLink http://hdl.handle.net/10651/5831
PMID 19960338
PQID 1744666299
PQPubID 23500
PageCount 8
ParticipantIDs swepub_primary_oai_DiVA_org_ri_12872
proquest_miscellaneous_753651876
proquest_miscellaneous_733793132
proquest_miscellaneous_46584340
proquest_miscellaneous_1744666299
gale_infotracacademiconefile_A403050321
pubmed_primary_19960338
pascalfrancis_primary_22744480
crossref_primary_10_1007_s00216_009_3327_2
crossref_citationtrail_10_1007_s00216_009_3327_2
springer_journals_10_1007_s00216_009_3327_2
fao_agris_US201301820740
ProviderPackageCode CITATION
AAYXX
PublicationCentury 2000
PublicationDate 2010-04-01
PublicationDateYYYYMMDD 2010-04-01
PublicationDate_xml – month: 04
  year: 2010
  text: 2010-04-01
  day: 01
PublicationDecade 2010
PublicationPlace Berlin/Heidelberg
PublicationPlace_xml – name: Berlin/Heidelberg
– name: Heidelberg
– name: Germany
PublicationTitle Analytical and bioanalytical chemistry
PublicationTitleAbbrev Anal Bioanal Chem
PublicationTitleAlternate Anal Bioanal Chem
PublicationYear 2010
Publisher Berlin/Heidelberg : Springer-Verlag
Springer-Verlag
Springer
Publisher_xml – name: Berlin/Heidelberg : Springer-Verlag
– name: Springer-Verlag
– name: Springer
References RossCAAnn Rev Mater Res20013120323510.1146/annurev.matsci.31.1.2031:CAS:528:DC%2BD3MXmsFGqsb8%3D
VazquezMHernandez-VélezMPirotaKAsenjoANavasDVelasquezJVargasPRamosCEur Phys JB2004404894971:CAS:528:DC%2BD2cXpt1agt7s%3D
KangYZhaoJTaoJWangXLiYAppl Surf Sci20082543935393810.1016/j.apsusc.2007.12.0241:CAS:528:DC%2BD1cXks1GgsLk%3D
WangZBrustMNanoscale Res Lett20072343910.1007/s11671-006-9026-41:CAS:528:DC%2BD2sXhsVSgtLk%3D
MenendezABordelNPereiroRSanz-MedelAJ Anal At Spectrom20052023323510.1039/b416166a1:CAS:528:DC%2BD2MXhs1agur4%3D
PridaVMPirotaKRNavasDAsenjoAHernández-VélezMVázquezMJ Nanosci Nanotec200772722851:CAS:528:DC%2BD2sXktFSlu7g%3D
MarshallKACasperTJBrushwylerKRMitchellJCJ Anal At Spectrom20031863764510.1039/b300026p1:CAS:528:DC%2BD3sXkt1emtb4%3D
PridaVMNavasDPirotaKRHernandez-VelezMMenéndezABordelNPereiroRSanz-MedelAHernandoBVazquezMPhys Status Solidi A20062031241124710.1002/pssa.2005661761:CAS:528:DC%2BD28XltlGjsrk%3D
Escobar GalindoRGagoRForniésEMuñoz-MartinACliment FontAAlbellaJMSpectrochim Acta Part B20066154555310.1016/j.sab.2006.03.012
WhitneyTMSearsonPCJiangJSChienCLScience19932611316131910.1126/science.261.5126.13161:CAS:528:DyaK3sXmtFGqsL4%3D
MarcusRKBroekaertJACGlow discharge plasmas in analytical spectroscopy2003ChichesterWiley
PérezCPereiroRBordelNSanz-MedelASpectrochim Acta Part B1998531541155110.1016/S0584-8547(98)00185-2
ShimizuKPaylingRHabazakiHSkeldonPThompsonGEJ Anal At Spectrom20041969269510.1039/b400918p1:CAS:528:DC%2BD2cXjvVKmsL4%3D
VazquezMPirotaKHernandez-VélezMPridaVMNavasDSanzRBatallanFVelasquezJJ Appl Phy2004956642664410.1063/1.16875391:CAS:528:DC%2BD2cXksVCrtrY%3D
MasudaHFukudaKScience19952681466146810.1126/science.268.5216.14661:CAS:528:DyaK2MXmtFKktbc%3D
ZhaoJWangXChenRLiLSolid State Comm200513470571010.1016/j.ssc.2005.02.0281:CAS:528:DC%2BD2MXjvVOit70%3D
FernandezBBordelNPereiroRSanz-MedelAAnal Chem2004761039104410.1021/ac035113q1:CAS:528:DC%2BD2cXkvVWlsA%3D%3D
RoutTKScripta Mater20075657357610.1016/j.scriptamat.2006.12.0321:CAS:528:DC%2BD2sXht1Grs7Y%3D
ThereseLGhalemZGuillotPBelenguerPAnal Bioanal Chem200638616316810.1007/s00216-006-0503-51:CAS:528:DC%2BD28Xotl2nurg%3D
PisoneroJCostaJMPereiroRBordelNSanz-MedelAAnal Biochem Chem200437917291:CAS:528:DC%2BD2cXjsVajsr4%3D
PridaVMHernandez-VélezMPirotaKRMenéndezAVazquezMNanotechnology2005162696270210.1088/0957-4484/16/11/0381:CAS:528:DC%2BD2MXhtlels7%2FF
BingsNHBogaertsABroekaertJACAnal Chem2004763313333610.1021/ac040052x1:CAS:528:DC%2BD2cXjt12ktrc%3D
MituraSNanotechnology in materials science2000AmsterdamElsevier Science
MenendezAPereiroRBordelNSanz-MedelAJ Anal At Spectrom20062153153410.1039/b517273j1:CAS:528:DC%2BD28XktVemtr8%3D
www.gladnet.eu
WilkenLHoffmannVWetzigKSpectrochim Acta Part B2007621085112210.1016/j.sab.2007.07.003
MorGKShankarKPauloseMVargheseOKGrimesCANano Lett2005119119510.1021/nl048301k
Y Kang (3327_CR24) 2008; 254
C Pérez (3327_CR16) 1998; 53
K Shimizu (3327_CR18) 2004; 19
KA Marshall (3327_CR12) 2003; 18
A Menendez (3327_CR13) 2005; 20
VM Prida (3327_CR22) 2007; 7
TM Whitney (3327_CR4) 1993; 261
VM Prida (3327_CR17) 2006; 203
J Zhao (3327_CR8) 2005; 134
B Fernandez (3327_CR15) 2004; 76
L Wilken (3327_CR26) 2007; 62
M Vazquez (3327_CR5) 2004; 40
GK Mor (3327_CR7) 2005; 1
L Therese (3327_CR25) 2006; 386
3327_CR27
VM Prida (3327_CR21) 2005; 16
M Vazquez (3327_CR3) 2004; 95
TK Rout (3327_CR19) 2007; 56
J Pisonero (3327_CR11) 2004; 379
Z Wang (3327_CR23) 2007; 2
NH Bings (3327_CR10) 2004; 76
H Masuda (3327_CR6) 1995; 268
A Menendez (3327_CR14) 2006; 21
R Escobar Galindo (3327_CR20) 2006; 61
CA Ross (3327_CR2) 2001; 31
RK Marcus (3327_CR9) 2003
S Mitura (3327_CR1) 2000
References_xml – reference: VazquezMPirotaKHernandez-VélezMPridaVMNavasDSanzRBatallanFVelasquezJJ Appl Phy2004956642664410.1063/1.16875391:CAS:528:DC%2BD2cXksVCrtrY%3D
– reference: RossCAAnn Rev Mater Res20013120323510.1146/annurev.matsci.31.1.2031:CAS:528:DC%2BD3MXmsFGqsb8%3D
– reference: PridaVMHernandez-VélezMPirotaKRMenéndezAVazquezMNanotechnology2005162696270210.1088/0957-4484/16/11/0381:CAS:528:DC%2BD2MXhtlels7%2FF
– reference: PisoneroJCostaJMPereiroRBordelNSanz-MedelAAnal Biochem Chem200437917291:CAS:528:DC%2BD2cXjsVajsr4%3D
– reference: MarshallKACasperTJBrushwylerKRMitchellJCJ Anal At Spectrom20031863764510.1039/b300026p1:CAS:528:DC%2BD3sXkt1emtb4%3D
– reference: KangYZhaoJTaoJWangXLiYAppl Surf Sci20082543935393810.1016/j.apsusc.2007.12.0241:CAS:528:DC%2BD1cXks1GgsLk%3D
– reference: MenendezABordelNPereiroRSanz-MedelAJ Anal At Spectrom20052023323510.1039/b416166a1:CAS:528:DC%2BD2MXhs1agur4%3D
– reference: PérezCPereiroRBordelNSanz-MedelASpectrochim Acta Part B1998531541155110.1016/S0584-8547(98)00185-2
– reference: PridaVMPirotaKRNavasDAsenjoAHernández-VélezMVázquezMJ Nanosci Nanotec200772722851:CAS:528:DC%2BD2sXktFSlu7g%3D
– reference: PridaVMNavasDPirotaKRHernandez-VelezMMenéndezABordelNPereiroRSanz-MedelAHernandoBVazquezMPhys Status Solidi A20062031241124710.1002/pssa.2005661761:CAS:528:DC%2BD28XltlGjsrk%3D
– reference: ThereseLGhalemZGuillotPBelenguerPAnal Bioanal Chem200638616316810.1007/s00216-006-0503-51:CAS:528:DC%2BD28Xotl2nurg%3D
– reference: WhitneyTMSearsonPCJiangJSChienCLScience19932611316131910.1126/science.261.5126.13161:CAS:528:DyaK3sXmtFGqsL4%3D
– reference: RoutTKScripta Mater20075657357610.1016/j.scriptamat.2006.12.0321:CAS:528:DC%2BD2sXht1Grs7Y%3D
– reference: WilkenLHoffmannVWetzigKSpectrochim Acta Part B2007621085112210.1016/j.sab.2007.07.003
– reference: MituraSNanotechnology in materials science2000AmsterdamElsevier Science
– reference: MorGKShankarKPauloseMVargheseOKGrimesCANano Lett2005119119510.1021/nl048301k
– reference: MasudaHFukudaKScience19952681466146810.1126/science.268.5216.14661:CAS:528:DyaK2MXmtFKktbc%3D
– reference: MarcusRKBroekaertJACGlow discharge plasmas in analytical spectroscopy2003ChichesterWiley
– reference: BingsNHBogaertsABroekaertJACAnal Chem2004763313333610.1021/ac040052x1:CAS:528:DC%2BD2cXjt12ktrc%3D
– reference: ShimizuKPaylingRHabazakiHSkeldonPThompsonGEJ Anal At Spectrom20041969269510.1039/b400918p1:CAS:528:DC%2BD2cXjvVKmsL4%3D
– reference: WangZBrustMNanoscale Res Lett20072343910.1007/s11671-006-9026-41:CAS:528:DC%2BD2sXhsVSgtLk%3D
– reference: MenendezAPereiroRBordelNSanz-MedelAJ Anal At Spectrom20062153153410.1039/b517273j1:CAS:528:DC%2BD28XktVemtr8%3D
– reference: FernandezBBordelNPereiroRSanz-MedelAAnal Chem2004761039104410.1021/ac035113q1:CAS:528:DC%2BD2cXkvVWlsA%3D%3D
– reference: www.gladnet.eu
– reference: ZhaoJWangXChenRLiLSolid State Comm200513470571010.1016/j.ssc.2005.02.0281:CAS:528:DC%2BD2MXjvVOit70%3D
– reference: VazquezMHernandez-VélezMPirotaKAsenjoANavasDVelasquezJVargasPRamosCEur Phys JB2004404894971:CAS:528:DC%2BD2cXpt1agt7s%3D
– reference: Escobar GalindoRGagoRForniésEMuñoz-MartinACliment FontAAlbellaJMSpectrochim Acta Part B20066154555310.1016/j.sab.2006.03.012
– volume-title: Glow discharge plasmas in analytical spectroscopy
  year: 2003
  ident: 3327_CR9
– volume: 53
  start-page: 1541
  year: 1998
  ident: 3327_CR16
  publication-title: Spectrochim Acta Part B
  doi: 10.1016/S0584-8547(98)00185-2
– volume: 31
  start-page: 203
  year: 2001
  ident: 3327_CR2
  publication-title: Ann Rev Mater Res
  doi: 10.1146/annurev.matsci.31.1.203
– volume: 134
  start-page: 705
  year: 2005
  ident: 3327_CR8
  publication-title: Solid State Comm
  doi: 10.1016/j.ssc.2005.02.028
– volume: 95
  start-page: 6642
  year: 2004
  ident: 3327_CR3
  publication-title: J Appl Phy
  doi: 10.1063/1.1687539
– volume: 40
  start-page: 489
  year: 2004
  ident: 3327_CR5
  publication-title: Eur Phys JB
  doi: 10.1140/epjb/e2004-00163-4
– volume: 21
  start-page: 531
  year: 2006
  ident: 3327_CR14
  publication-title: J Anal At Spectrom
  doi: 10.1039/B517273J
– volume: 62
  start-page: 1085
  year: 2007
  ident: 3327_CR26
  publication-title: Spectrochim Acta Part B
  doi: 10.1016/j.sab.2007.07.003
– volume: 203
  start-page: 1241
  year: 2006
  ident: 3327_CR17
  publication-title: Phys Status Solidi A
  doi: 10.1002/pssa.200566176
– volume: 20
  start-page: 233
  year: 2005
  ident: 3327_CR13
  publication-title: J Anal At Spectrom
  doi: 10.1039/B416166A
– volume-title: Nanotechnology in materials science
  year: 2000
  ident: 3327_CR1
– volume: 261
  start-page: 1316
  year: 1993
  ident: 3327_CR4
  publication-title: Science
  doi: 10.1126/science.261.5126.1316
– volume: 254
  start-page: 3935
  year: 2008
  ident: 3327_CR24
  publication-title: Appl Surf Sci
  doi: 10.1016/j.apsusc.2007.12.024
– volume: 379
  start-page: 17
  year: 2004
  ident: 3327_CR11
  publication-title: Anal Biochem Chem
  doi: 10.1007/s00216-004-2531-3
– volume: 386
  start-page: 163
  year: 2006
  ident: 3327_CR25
  publication-title: Anal Bioanal Chem
  doi: 10.1007/s00216-006-0503-5
– volume: 19
  start-page: 692
  year: 2004
  ident: 3327_CR18
  publication-title: J Anal At Spectrom
  doi: 10.1039/b400918p
– volume: 1
  start-page: 191
  year: 2005
  ident: 3327_CR7
  publication-title: Nano Lett
  doi: 10.1021/nl048301k
– volume: 18
  start-page: 637
  year: 2003
  ident: 3327_CR12
  publication-title: J Anal At Spectrom
  doi: 10.1039/b300026p
– volume: 16
  start-page: 2696
  year: 2005
  ident: 3327_CR21
  publication-title: Nanotechnology
  doi: 10.1088/0957-4484/16/11/038
– volume: 268
  start-page: 1466
  year: 1995
  ident: 3327_CR6
  publication-title: Science
  doi: 10.1126/science.268.5216.1466
– volume: 76
  start-page: 1039
  year: 2004
  ident: 3327_CR15
  publication-title: Anal Chem
  doi: 10.1021/ac035113q
– volume: 7
  start-page: 272
  year: 2007
  ident: 3327_CR22
  publication-title: J Nanosci Nanotec
  doi: 10.1166/jnn.2007.18023
– volume: 76
  start-page: 3313
  year: 2004
  ident: 3327_CR10
  publication-title: Anal Chem
  doi: 10.1021/ac040052x
– volume: 2
  start-page: 34
  year: 2007
  ident: 3327_CR23
  publication-title: Nanoscale Res Lett
  doi: 10.1007/s11671-006-9026-4
– volume: 61
  start-page: 545
  year: 2006
  ident: 3327_CR20
  publication-title: Spectrochim Acta Part B
  doi: 10.1016/j.sab.2006.03.012
– ident: 3327_CR27
– volume: 56
  start-page: 573
  year: 2007
  ident: 3327_CR19
  publication-title: Scripta Mater
  doi: 10.1016/j.scriptamat.2006.12.032
SSID ssj0015816
Score 2.0250542
Snippet The development of highly ordered and self-assembled magnetic nanostructures such as arrays of Fe or Ni nanowires and their alloys is arousing increasing...
SourceID swepub
proquest
gale
pubmed
pascalfrancis
crossref
springer
fao
SourceType Open Access Repository
Aggregation Database
Index Database
Enrichment Source
Publisher
StartPage 2833
SubjectTerms Alloys
Aluminum oxide
Analysis
Analytical Chemistry
Biochemistry
Characterization and Evaluation of Materials
Chemistry
Chemistry and Materials Science
Emission analysis
Exact sciences and technology
Food Science
Glow discharge
gold
In-depth profile
insulating materials
iron
Laboratory Medicine
magnetic properties
manufacturing
Mathematical analysis
Metal nanowires
Monitoring/Environmental Analysis
Nanostructure
Nanostructures
nanotubes
nanowires
nickel
Optical emission spectrometry
Original Paper
quantitative analysis
Radiofrequency
sampling
scanning electron microscopy
Spectrometric and optical methods
Spectrometry
Spectroscopy
Spectrum analysis
Titanium dioxide
X-radiation
Title In-depth profile analysis of filled alumina and titania nanostructured templates by radiofrequency glow discharge coupled to optical emission spectrometry
URI https://link.springer.com/article/10.1007/s00216-009-3327-2
https://www.ncbi.nlm.nih.gov/pubmed/19960338
https://www.proquest.com/docview/1744666299
https://www.proquest.com/docview/46584340
https://www.proquest.com/docview/733793132
https://www.proquest.com/docview/753651876
https://urn.kb.se/resolve?urn=urn:nbn:se:ri:diva-12872
Volume 396
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
link http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwlV1ZixNBEG7c3QcFEe8dj9jCgqAMpI-ZnnmMa9ZVcRE1Ep-anj5iIMyEHMj-FX-tVXPpym7Apzykpqapqqmu7qr6ipCjgtnUGC9ik3sbS6ZEnAmTxBAZu0KkvkgDXg18PEtPJ_L9NJm2fdzrrtq9S0nWnrpvdsPtCE6_mKsXXMXgdw8ShJMCI57wUZ86SLJ63ikCwWP5Fu9SmZexuLAZ7QVT9Y755tKsQUihmW5xWfj5V-r0H5jRems6uU1utTElHTVGcIdc8-Vdcv24G-V2j_x6V8bOLzc_aDuim5oWi4RWgQZsB3TUgJualwb-chQ7z8q5oaUpqwZhdrsCEsSxWmBwSotzujJuXoVVU4p9TmeL6ifFHl-EXvLUVtslct1UtFrW9-UUl4N3c7Tu7kSYBFjcfTI5GX89Po3boQyxTRnbxG5YcCdZDUXnizxwk8rM5TZjVlmRBoh4hty6kJnAmHFCKF8EZY0NBRuGXIoHZL-sSn9IqFAJs1kug7NK5izLVWDB88Ij5I1LXUSGnXa0bRHLcXDGQvdYy7VCNShUo0I1j8jL_pFlA9exi_gQVK7NDNypnnzhmMRFPHslhxF5gXag8SuHV8Lym2YFWDhqSY8kOsqh4Cwigwum0r-WI_aizIDV8852NMgZ8zGm9NV2reEwKOH0CAFBRJ5dQSMxQhS4IHoFhQIR5wjAuYMkEWnCYN-LyMPGeP8IB9F5hMgi8qqzZt16sfUuyR01Bt_zQZTyN_NvI12tZno11xD2KP7ov5g-Jjea0gwsi3pC9sG6_VOI-DbFgOypqRqQg9Hb7x_G8Pt6fPbp86D-7n8DlfFSTQ
linkProvider Springer Nature
linkToHtml http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwlV1ZaxRBEG40PkQQ8c54JC0EBGVg-pjrcYmGjSZ5MSt5a3r62Cws08seSP6Kv9aquTSSLPg8NTVFV011dVfVV4QcVsxkWjsR69KZWLJcxIXQaQyRsa1E5qrM49XA2Xk2nsivl-ll18e96qvd-5Rk46mHZjfcjuD0i7l6wfMY_O4DzDLiiWvCR0PqIC2aeacIBI_lW7xPZd7G4sZmdN_rMDjmRwu9gkXy7XSL28LPv1Kn_8CMNlvT8RPyuIsp6ag1gqfknqufkd2jfpTbc_LrpI6tW6yvaDeim-oOi4QGTz22A1qqwU3Nag2PLMXOs3qmaa3r0CLMbpZAgjhWcwxOaXVNl9rOgl-2pdjXdDoPPyn2-CL0kqMmbBbIdR1oWDT35RTFwbs52nR3IkwCCPeCTI6_XByN424oQ2wyxtaxTSpuJWug6FxVeq4zWdjSFMzkRmQeIp6EG-sL7RnTVojcVT432viKJb6U4iXZqUPt9ggVecpMUUpvTS5LVpS5Z97xyiHkjc1sRJJeO8p0iOU4OGOuBqzlRqEKFKpQoYpH5OPwyqKF69hGvAcqV3oK7lRNvnNM4iKefS6TiHxAO1D4l8MnQfy2WQEERy2pkURHmQjOIrJ_w1SGz3LEXpQFsHrf246CdcZ8jK5d2KwUHAYlnB4hIIjIwR00EiNEgQLROyhyWOISATi3kKQiSxnsexF51Rrvn8VBdB4hioh86q1ZdV5stW3lDluDH_ggSvnn2Y-RCsupWs4UhD05f_1fTA_I7vji7FSdnpx_e0MetmUaWCL1luyApbt3EP2tq_3mb_8NYYFRGw
linkToPdf http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwpV3ra9RAEF_0CiqIb218tCsUBCVtNrt5fTzanq3VIuhJ-2nd7OM8PJLjLofUP8W_1pnLQ1vaA_FzJpPJZDI7uzPzG0K2cqZjpSz3VWa1L1jC_ZSryIfI2OQ8tnns8Gjgw3F8MBTvTqKTZs7pvK12b1OSdU8DojQV1c7UuJ2u8Q2XJtgJY96eh4kPPnhN4AiJHlnrvz092u8SCVG6nH6KsPBYzBW2ic3LmJxbmq47VXZu-vZUzUFlrp51cVkw-lci9QLo6HKhGtwlX9tXrOtTvm8vqnxb_7yA_vgfOrhH7jRBLO3XVnefXLPFA3Jzt50d95D8Oix8Y6fVN9rMBKeqAT-hpaMO-w8NVeAXx4WCS4Ziq1sxVrRQRVlD2i5mQILAWROMhml-RmfKjEs3q2u_z-hoUv6g2FSMWE-W6nIxRa5VScvp8oCeojh4GEiX7aSIywDCPSLDwf7n3QO_mQLh65ixyjdBHhrBlth3Ns9cqGKRmkynTCeaxw5CrCDUxqXKMaYM54nNXaKVdjkLXCb4Y9IrysKuE8qTiOk0E87oRGQszRLHnA1zixg7JjYeCVoDkLqBSMdJHRPZgTsvlS5B6RKVLkOPvO5umdb4IKuI18GqpBqB_5bDTyFmjRFAPxGBR16hqUl0K_BIEL_ujgDB8SvJvkDPHPCQeWTjnDV2jw0R7FGkwOpla54S9IwJIFXYcjGXsPsUsF2FCMQjm1fQCAxJOQpEr6BIQMUZIn6uIIl4HDFYaD3ypP4__igH4YA4Tz3ypjVx2bjN-SrNbdX_VMcHYdH3xl_6spyN5GwsIc5Kwqf_xHST3Pi4N5DvD4-PnpFbdVkIlmQ9Jz0wdPsCos0q32g8ym8zKXa5
openUrl ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=In-depth+profile+analysis+of+filled+alumina+and+titania+nanostructured+templates+by+radiofrequency+glow+discharge+coupled+to+optical+emission+spectrometry&rft.jtitle=Analytical+and+bioanalytical+chemistry&rft.au=ALBERTS%2C+D&rft.au=VEGA%2C+V&rft.au=PEREIRO%2C+R&rft.au=BORDEL%2C+N&rft.date=2010-04-01&rft.pub=Springer&rft.issn=1618-2642&rft.volume=396&rft.issue=8&rft.spage=2833&rft.epage=2840&rft_id=info:doi/10.1007%2Fs00216-009-3327-2&rft.externalDBID=n%2Fa&rft.externalDocID=22744480
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=1618-2642&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=1618-2642&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=1618-2642&client=summon