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1 UV-Visible spectroscopy, and field-emission scanning electron microscopy.
2 as analyzed by micro-computed tomography and scanning electron microscopy.
3 Surface topography was also viewed under scanning electron microscopy.
4 microscopy, and visualised by environmental scanning electron microscopy.
5 rated with anatomical examination using i.e. scanning electron microscopy.
6 analyzed using microcomputed tomography and scanning electron microscopy.
7 ion distance, which were characterized using scanning electron microscopy.
8 conut endosperm were investigated using cryo-scanning electron microscopy.
9 loaded ChNPs, was obtained by field emission-scanning electron microscopy.
10 characterized by atomic force microscopy and scanning electron microscopy.
11 The device layers were characterized by scanning electron microscopy.
12 rogels with higher porosity, as confirmed by scanning electron microscopy.
13 rehydrated leaf sections were analysed using scanning electron microscopy.
14 udies were performed by optical, stereo- and scanning electron microscopy.
15 were subject to computerized tomography and scanning electron microscopy.
16 ter the jumps by methylene blue staining and scanning electron microscopy.
17 R spectroscopy, dynamic light scattering and scanning electron microscopy.
18 n/removal was quantitated using confocal and scanning electron microscopy.
19 voxels collected by focused ion-beam milling scanning electron microscopy.
20 l, as well as pyramidal, MN, as confirmed by scanning electron microscopy.
21 tained with AT were compared with those from scanning electron microscopy.
22 Disk surface morphology was evaluated by scanning electron microscopy.
23 which we visualized using serial block-face scanning electron microscopy.
24 rphology of the treated bacteria revealed by scanning electron microscopy.
25 i and pulmonary emboli using high-resolution scanning electron microscopy.
26 , strips in treated samples were observed by scanning electron microscopy.
27 ve voltammetry, atomic force microscopy, and scanning electron microscopy.
28 s were calculated by using serial block-face scanning electron microscopy.
29 que retina was generated by serial blockface scanning electron microscopy.
30 ast, fluorescence in situ hybridization, and scanning electron microscopy.
31 tennules and antennae using fluorescence and scanning electron microscopy.
32 l post-mortem analysis; X-ray tomography and scanning electron microscopy.
33 All mucus structures were also visualised by scanning electron microscopy.
34 mpled from MPAACH skin were visualized using scanning electron microscopy.
35 iddle, and hind legs of multiple flies using scanning electron microscopy.
36 e damages were investigated with optical and scanning electron microscopies.
37 s well-supported by atomic force microscopy, scanning electron microscopy, 3D nano-profilometry, high
38 copy, second harmonic generation imaging and scanning electron microscopy, among other vital biologic
39 ipitation assays, and immunofluorescence and scanning electron microscopy analyses, we report the ide
42 length dispersive spectrometer) and SEM-EDS (scanning electron microscopy analysis using an energy di
44 ule accident, Greenland has been analyzed by Scanning Electron Microscopy and a large-geometry Second
46 y and cyclic voltammetry) and morphological (scanning electron microscopy and atomic force microscopy
47 trodes produced by ESD have been analysed by scanning electron microscopy and characterised electroch
51 ctroscopy, X-ray photoelectron spectroscopy, scanning electron microscopy and Energy Dispersion Spect
54 ctroscopy, X-ray diffraction, field emission scanning electron microscopy and energy dispersive X-ray
55 's color, S and Fe were commonly detected by scanning electron microscopy and energy-dispersive spect
59 e advanced NMR spectroscopy experiments with scanning electron microscopy and soft X-ray absorption s
60 ating the data with the cell morphologies by scanning electron microscopy and the ion-concentration a
64 erent transcriptomic states, while cryogenic-scanning-electron-microscopy and micro-X-ray diffraction
65 s retained better morphology (confirmed with scanning electron microscopy) and higher in vitro basal
66 d on the surface of the MB were confirmed by scanning electron microscopy, and among other experiment
67 y the colony counting method, field emission scanning electron microscopy, and atomic force microscop
69 me, Fourier-transform infrared spectroscopy, scanning electron microscopy, and measurements of rheolo
71 le spectroscopy, thermogravimetric analysis, scanning electron microscopy, and other spectroscopic te
72 ze reconstructions, stable isotope analysis, scanning electron microscopy, and sediment analyses, we
74 y dynamic light scattering and environmental scanning electron microscopy, and with porcine mucin as
75 ectrode, identical location transmission and scanning electron microscopy, as well as X-ray absorptio
78 cryogenic electron microscopy, combined with scanning electron microscopy, broadband femtosecond tran
80 A small wax seal fragment was observed by scanning electron microscopy combined with energy disper
81 rrelative epifluorescence and field emission scanning electron microscopy, combined with energy-dispe
85 nalysis, micro-computed tomographic imaging, scanning electron microscopy, corrosion casting, and dir
86 ced by scanning Raman spectroscopy (SRS) and scanning electron microscopy coupled with energy-dispers
88 e compartments were analyzed using cryogenic-scanning electron microscopy (cryo-SEM), confocal laser
89 ectrodeposition and characterized them using scanning electron microscopy, cyclic voltammetry, and el
94 nd fundamental rheological measurements, and scanning electron microscopy, differential scanning calo
95 cles (SiO2@PEI MPs) were characterized using scanning electron microscopy, dynamic light scattering,
96 ing confocal Raman spectroscopy, optical and scanning electron microscopy, electron microprobe analys
98 eatments were analyzed utilizing optical and scanning electron microscopy, encapsulation yield, parti
99 isible (Vis) and ultraviolet light (UV), and scanning electron microscopy - energy-dispersive X-ray s
100 terized by transmission electron microscopy, scanning electron microscopy, energy dispersive X-ray sp
101 ctroscopy, X-ray diffraction, field emission scanning electron microscopy, energy dispersive X-ray sp
102 rode was characterized by field emission gun scanning electron microscopy, energy dispersive X-ray sp
103 g open circuit potential (OCP) measurements, scanning electron microscopy/energy-dispersive X-ray spe
104 kernel were investigated using Environmental Scanning Electron Microscopy (ESEM) and 3D X-ray Micro C
105 rface was characterised using field emission-scanning electron microscopy (FE-SEM) and cyclic voltamm
107 tomic force microscopy (AFM), Field emission-scanning electron microscopy (FE-SEM), and Fourier-trans
108 orm-infrared analyses (FTIR), field emission scanning electron microscopy (FESEM), UV-visible and ele
110 The recent emergence of focused ion beam scanning electron microscopy (FIB-SEM) has provided unpa
111 krikos kofoidii in 3D using focused ion beam scanning electron microscopy (FIB-SEM) in conjunction wi
113 e.g., nanoscale-resolution focused ion beam-scanning electron microscopy (FIB-SEM) nano-tomography.
114 of parental genomes we used focused ion beam scanning electron microscopy (FIB-SEM) to study the arch
116 nits in Anln-mutant mice by focused ion beam-scanning electron microscopy (FIB-SEM); myelin outfoldin
117 reconstruction method using Focused Ion Beam/Scanning Electron Microscopy (FIB/SEM) can be applied to
119 depth of the nanoholes were investigated by scanning electron microscopy for a broad range of etchin
121 as characterized by various techniques like scanning electron microscopy, Fourier-transform infrared
122 ng nitrogen adsorption/desorption isotherms, scanning electron microscopy, Fourier-transform infrared
126 r X-ray diffraction (p-XRD), high-resolution scanning electron microscopy (HRSEM), and SEM with energ
127 SA can be qualitatively reproduced employing scanning electron microscopy-image-based stochastic anal
128 ric field had the main role in inactivation; scanning electron microscopy images revealed that both p
130 nfrared spectrometry, X-ray diffraction, and scanning electron microscopy indicated that the synthesi
131 ce, and chemical properties were assessed by scanning electron microscopy, ISO standard flexural stre
132 fourier transform infrared spectroscopy and scanning electron microscopy, it was indicated that hemi
136 to alleviate RGO aggregation as disclosed by scanning electron microscopy, most likely due to the ele
137 of human fetal meconium at mid-gestation by scanning electron microscopy (n = 4), and a sparse bacte
142 35 patients shows a bristle-like appearance; scanning electron microscopy of patient hair shafts reve
145 ass and identified using optical microscopy, scanning electron microscopy plus energy-dispersive X-ra
147 ystalline axes of the V2O3; atomic force and scanning electron microscopy reveal oriented rips in the
148 rect surface imaging of fibroblast nuclei by scanning electron microscopy revealed a large increase i
149 histology, immunofluorescence microscopy and scanning electron microscopy revealed temporal differenc
155 carotenoids, and whole-cell focused ion-beam scanning-electron microscopy revealed a deficiency of ca
156 bdomens of the Macrotermes subhyalinus; with scanning electron microscopy revealing small spherical s
157 e in the uptake of a therapeutic cargo while Scanning Electron Microscopy reveals that specific sites
160 ed tomography (CT)-steered Serial Block Face Scanning Electron Microscopy (SBF-SEM) and transmission
165 r transform infrared spectrometry (FTIR) and scanning electron microscopy (SEM) and applied as a sorb
166 counts, biofilm removal, surface changes via scanning electron microscopy (SEM) and atomic force micr
168 by employing atomic force microscopy (AFM), scanning electron microscopy (SEM) and electrochemical t
170 er (DSC), X-Ray Diffraction (XRD), Rheology, Scanning electron microscopy (SEM) and Fourier transform
171 ersive X-ray spectroscopy, variable pressure scanning electron microscopy (SEM) and high vacuum SEM.
174 well as morphological characterizations with scanning electron microscopy (SEM) and transmission elec
175 rier-transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM) and, energy-dispersiv
176 rier Transform Infrared Spectroscopy (FTIR), scanning electron microscopy (SEM) as well as alamar blu
177 devices enables gap spacing visualization by scanning electron microscopy (SEM) before performing NFR
179 -transform infrared spectroscopy (FTIR), and scanning electron microscopy (SEM) equipped with energy
188 ave different morphology as was evident from scanning electron microscopy (SEM) imaging of their xero
189 tive image analysis, supported by (13)C NMR, scanning electron microscopy (SEM) imaging, and fiber le
196 ively characterized for the first time using scanning electron microscopy (SEM) with energy dispersiv
198 ellac, and uses uniaxial mechanical testing, scanning electron microscopy (SEM), and biophysical mode
199 FTIR) spectroscopy, X-ray diffraction (XRD), scanning electron microscopy (SEM), and differential sca
200 transform infrared spectroscopy (ATR-FTIR), scanning electron microscopy (SEM), and energy-dispersiv
201 with X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and in situ X-ray di
202 n tomography (PET)/computed tomography (CT), scanning electron microscopy (SEM), and transition elect
203 ier Transform Infrared spectroscopy (FT-IR), Scanning Electron Microscopy (SEM), and X-ray Diffractio
204 ite sorbents with X-ray computed tomography, scanning electron microscopy (SEM), and X-ray diffractio
205 rier transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM), atomic force microsc
206 aphene is confirmed with Cyclic Voltammetry, Scanning Electron Microscopy (SEM), Atomic Force Microsc
207 rials were extensively characterized through scanning electron microscopy (SEM), Brunauer-Emmett-Tell
208 mples were analyzed for cooking time, color, scanning electron microscopy (SEM), damaged grains, amyl
209 rier Transform Infrared Spectroscopy (FTIR), Scanning Electron Microscopy (SEM), Dynamic Light Scatte
210 de was performed by X-ray diffraction (XRD), scanning electron microscopy (SEM), electrochemical impe
211 s including powder X-ray diffraction (pXRD), scanning electron microscopy (SEM), energy dispersive X-
212 by light microscopy, fluorescent microscopy, scanning electron microscopy (SEM), Fourier-Transform In
214 ion beam (FIB) system which, assembled with scanning electron microscopy (SEM), is the most popular
215 roperties of PES/AG membranes was studied by scanning electron microscopy (SEM), Raman spectroscopy,
218 c oxide nanocomposite was characterised with scanning electron microscopy (SEM), transmission electro
220 red spectroscopy (FTIR), Raman spectroscopy, scanning electron microscopy (SEM), transmission electro
221 Sputtered neutral-mass spectroscopy (SNMS), Scanning electron microscopy (SEM), UV-Vis spectroscopy
222 alysis (EDX), atomic force microscopy (AFM), scanning electron microscopy (SEM), UV-Vis spectroscopy,
223 us electron-optical methods (high-resolution scanning electron microscopy (SEM), wavelength-dispersiv
224 rier transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM), X-ray diffraction (X
227 rmation of the bulk material was analyzed by Scanning Electron Microscopy (SEM), X-ray-tomography and
245 using various range of measurements such as scanning electron microscopy, (SEM), transmission electr
256 st for the postexposure silver birch leaves; scanning electron microscopy showed that UFPs were conce
258 is, Fourier-transform infrared spectroscopy, scanning electron microscopy, size particle, X-ray diffr
259 ce morphology studies using atomic force and scanning electron microscopy suggest a smooth and homoge
260 xperimentation within a focused ion beam and scanning electron microscopy system, the oxide-assisted
261 icroscopy (SECCM), together with co-location scanning electron microscopy that enables the correspond
262 mitochondria for use with serial block face scanning electron microscopy to carry out semiautomated
265 ery of mineral-organic interactions; and (2) scanning electron microscopy to quantify elemental distr
266 se atomic force microscopy and environmental scanning electron microscopy to show that during fluid-r
267 ization, confocal laser scanning microscopy, scanning electron microscopy, transmission electron micr
268 nsform infrared spectroscopy, field emission-scanning electron microscopy, transmission electron micr
269 area of about 1635 m(2) g(-1), confirmed by scanning electron microscopy, transmission electron micr
270 r the strength is discussed with the help of scanning electron microscopy, transmission electron micr
272 res were characterized by photoluminescence, scanning electron microscopy, UV-Visible spectra and X-r
275 Focused ion beam-extreme high-resolution scanning electron microscopy was used to generate a thre
278 Microparticle architecture, as determined by scanning electron microscopy, was lipid-length dependent
282 based techniques with Raman spectroscopy and scanning electron microscopy, we investigated 10 papyri
286 Fourier transform infrared microscopy and scanning electron microscopy were employed to test the m
287 ourier-transformed infrared spectroscopy and scanning electron microscopy while the voltammetric resu
288 of the limb with an image quality similar to scanning electron microscopy, while simultaneously visua
289 h SWy-2 were identified and characterized by scanning electron microscopy with energy dispersive spec
290 (FT-IR), Raman spectroscopy, Field emission scanning electron microscopy with energy dispersive X-ra
291 n this study, using single-cell sampling and scanning electron microscopy with energy-dispersive X-ra
292 scopy method that combines serial block-face scanning electron microscopy with in situ hybridization
294 10.50 using batch experiments combined with scanning electron microscopy, X-ray absorption spectrosc
296 Characterization by atomic force microscopy, scanning electron microscopy, X-ray diffraction, high-re
298 h hybrid was characterized by field emission scanning electron microscopy, X-ray diffraction, Raman a
300 The electrode surface was characterized by scanning electron microscopy, X-ray powder diffraction a