コーパス検索結果 (1語後でソート)
通し番号をクリックするとPubMedの該当ページを表示します
1 s during nanoindentation with the integrated Atomic Force (AFM) and spinning disk confocal (SDC) micr
2 and wide-angle X-ray scattering (SAXS/WAXS), atomic force and cryogenic transmission electron microsc
4 attering, negative stain, and cryo-EM and by atomic force and IR-photoinduced force microscopy establ
5 e attachment methods have been used both for atomic force and optical microscopy (including super res
8 ex-situ characterized by scanning electron, atomic-force, and transmission electron microscopy combi
10 to paper and their effect was analyzed using atomic force microscope (AFM) and scanning electron micr
12 oNI/ angstromI implemented with a commercial atomic force microscope (AFM) is such that a dynamic ran
15 d membrane stiffness was also measured using atomic force microscope (AFM) to identify a possible mod
16 light sheet fluorescence microscope with an atomic force microscope (AFM), providing simultaneous vo
20 So far, the field has relied primarily on atomic force microscope and optical tweezers assays that
22 we attach a micrometric-sized droplet to an atomic force microscope cantilever to directly measure a
25 thod uses piezoresponse force microscopy, an atomic force microscope modality that locally measures e
28 applied voltage (overpotential) against the atomic force microscope tip, generating a growth stress
31 ticular, we highlight the development of the atomic force microscope to investigate interactions with
33 characterized the bonding interface with an atomic force microscope, conducted micro-Raman analysis,
38 energy dispersive X-ray spectroscopy (EDS), atomic force microscopy (AFM) and grazing incidence X-ra
39 characterized at nanoscale with contact-mode atomic force microscopy (AFM) and Kelvin force microscop
40 kes have been characterized in nano-range by atomic force microscopy (AFM) and Kelvin force microscop
42 ammetry, Scanning Electron Microscopy (SEM), Atomic Force Microscopy (AFM) and Raman Spectroscopy.
43 ys and single-molecule techniques, including atomic force microscopy (AFM) and the DNA tightrope assa
45 properties in musculotendinous tissues using atomic force microscopy (AFM) and ultrasound elastograph
48 ide) (PNiPAM) with a combined approach using atomic force microscopy (AFM) based single molecule forc
49 ical probing of light-matter interactions by atomic force microscopy (AFM) bypasses the diffraction l
55 re and morphology of adsorbed PS films using atomic force microscopy (AFM) has been proven to be tech
56 ycero-3-phosphocholine (DPPC) bilayers using atomic force microscopy (AFM) imaging and AFM-based nano
61 ies of key technological improvements turned atomic force microscopy (AFM) into a nanoscopic laborato
65 r transform infrared (FTIR) spectroscopy and atomic force microscopy (AFM) methods were utilized for
66 resent a novel method for the fabrication of atomic force microscopy (AFM) probes for force spectrosc
67 wafer surfaces were activated locally using atomic force microscopy (AFM) probes to deliver mechanic
75 ips is hard to characterize by either SEM or atomic force microscopy (AFM) that has been employed for
76 tical reconstruction microscopy (dSTORM) and atomic force microscopy (AFM) to characterize the DNA or
81 the archaeon Sulfolobus acidocaldarius using atomic force microscopy (AFM) to understand how this mac
83 ble causes for this flow resistance, we used atomic force microscopy (AFM) with 10-um spherical tips
84 we characterize using low-temperature (5 K) atomic force microscopy (AFM) with CO-terminated tips as
85 tion of scanning tunneling microscopy (STM), atomic force microscopy (AFM) with CO-tip, scanning tunn
86 -using four different probe technologies: 1) atomic force microscopy (AFM) with sharp tip, 2) AFM wit
87 e the membrane structural features imaged by atomic force microscopy (AFM) with the dynamics measured
88 ng (QCM-D), surface plasmon resonance (SPR), atomic force microscopy (AFM), and fluorescence microsco
89 V/vis, CD, fluorescence and IR spectroscopy, atomic force microscopy (AFM), and theoretical calculati
90 s via scanning electron microscopy (SEM) and atomic force microscopy (AFM), and Ti dissolution via li
91 onal techniques, such as Raman spectroscopy, atomic force microscopy (AFM), and transmission electron
92 (FTIR), scanning electron microscopy (SEM), atomic force microscopy (AFM), differential pulse (DPV),
93 were assessed by scanning electron (SEM) and atomic force microscopy (AFM), electrochemical impedance
94 investigated using cyclic voltammetry (CV), atomic force microscopy (AFM), Field emission-scanning e
95 mbining surface plasmon resonance (SPR) with atomic force microscopy (AFM), here we studied two compl
98 The AuNP-MIPs were investigated by employing atomic force microscopy (AFM), scanning electron microsc
99 iques such as optical and magnetic tweezers, atomic force microscopy (AFM), single-molecule fluoresce
101 sing small-angle X-ray scattering (SAXS) and atomic force microscopy (AFM), we investigated the overa
122 ), were interrogated via magnetic conducting atomic force microscopy (mC-AFM), spin-dependent electro
123 roscopy/spectroscopy (STM/S) and non-contact atomic force microscopy (nc-AFM) combined with first-pri
126 Synchrotron resonance-enhanced infrared atomic force microscopy (RE-AFM-IR) is a near-field phot
130 nning, transmission electron microscopy, and atomic force microscopy analysis reveals that as the thr
132 hotoreceptor outer-segment disc membranes by atomic force microscopy and cryo-electron tomography has
133 mission electron microscopy, high-resolution atomic force microscopy and Cs-corrected scanning transm
134 bumin (BSA) was investigated at pH 3.0 using atomic force microscopy and differential scanning calori
135 nanoscopic spatial mapping using conductive atomic force microscopy and in operando tip-enhanced Ram
137 ase at different thermal conditions by using atomic force microscopy and Kelvin probe force microscop
139 ation of the polymer was characterized using atomic force microscopy and Raman microspectroscopy.
141 trodes were morphologically characterized by atomic force microscopy and scanning electron microscopy
142 ransistor has been studied with contact-mode atomic force microscopy and scanning Kevin probe microsc
143 a combination of high-resolution noncontact atomic force microscopy and scanning tunneling microscop
144 cle adsorption kinetics were evaluated using atomic force microscopy and the theoretical modeling.
145 cans on the fungal surface using single-cell atomic force microscopy and their influence on biofilm i
146 times, and transmission electron microscopy, atomic force microscopy and x-ray diffraction to investi
150 perties of these isoforms were studied using atomic force microscopy at high resolution in air and bu
155 nm resolution by infrared nanospectroscopy (atomic force microscopy coupled to infrared spectroscopy
159 ative oligomeric arrangement was revealed by atomic force microscopy demonstrating that Rh exists as
160 eanwhile, scanning tunnelling microscopy and atomic force microscopy enable us to see chemical bonds,
162 supramolecular polymer, light scattering and atomic force microscopy experiments show that water incr
165 ey of electron cryo-microscopy (cryo-EM) and atomic force microscopy images, we identify key intermed
168 ctions and self-association, as confirmed by atomic force microscopy imaging of proteins exhibiting t
170 direct transmission electron microscopy and atomic force microscopy imaging upon attaching polystyre
174 l spectroscopic imaging techniques including Atomic Force Microscopy Infrared (AFM-IR) and confocal R
175 tothermal infrared (O-PTIR) spectroscopy and atomic force microscopy infrared (AFM-IR) spectroscopy t
176 sing photothermal-induced resonance-enhanced atomic force microscopy infrared spectroscopy (AFM-IR) t
178 Here, we demonstrate that time-resolved atomic force microscopy is capable of temporally and spa
179 olution transmission electron microscopy and atomic force microscopy is used to quantify the size of
182 oretical results are confronted with QCM and atomic force microscopy measurements of positively charg
185 the gradient of mechanical properties using atomic force microscopy nanoindentation measurements for
186 g free-energy landscape by combining in-situ atomic force microscopy observations of assembly with th
187 ical experiments with the system, as well as atomic force microscopy of the 3D gel constructs during
189 he nanoscale binding kinetics measured using atomic force microscopy reveal that dendrimer-coated sur
191 zation of cyclo[18]carbon by high-resolution atomic force microscopy revealed a polyynic structure wi
194 ld emission scanning electron microscopy and atomic force microscopy revealed that tungsten oxide has
204 nd neutron scattering experiments as well as atomic force microscopy to access molecular properties o
208 Here we use cryo-electron microscopy and atomic force microscopy to examine the structure of high
213 nduced injury to the actin cytoskeleton, and atomic force microscopy to quantify impairment to cellul
214 minescence and reflectance spectroscopy with atomic force microscopy to reveal the presence of a dire
217 e limitations by employing CO-functionalized atomic force microscopy to visualize structures correspo
220 t 700 degrees C in 20 mTorr O(2) is shown by atomic force microscopy to yield nearly pinhole-free fil
221 tructural integrity upon repeated scans with Atomic Force Microscopy up to a peak force of 1 nN.
225 ze multimodal chemical imaging that combines atomic force microscopy with time-of-flight secondary ma
226 eloped tiv-AFM, combining time-lapse in vivo atomic force microscopy with upright fluorescence imagin
230 occurring in decellularized ECM during HF by atomic force microscopy, 2-photon microscopy, high-resol
231 super-resolution fluorescence microscopy and atomic force microscopy, a feat only obtained until now
232 loped a unique approach based on tomographic atomic force microscopy, achieving a fully-3D, photogene
233 scanning tunneling microscopy/spectroscopy, atomic force microscopy, and density functional theory c
234 namic light scattering, transmission EM, CD, atomic force microscopy, and fluorimetry to analyze the
235 cyclic voltammetry, square wave voltammetry, atomic force microscopy, and scanning electron microscop
236 resolution X-ray photoelectron spectroscopy, atomic force microscopy, and scanning tunneling microsco
238 blot, dot blot analysis, Raman spectroscopy, atomic force microscopy, and transmission electron micro
240 , we apply an integrative approach combining atomic force microscopy, cryo-electron tomography, netwo
241 ue measurement approach, in which correlated atomic force microscopy, dynamic light scattering, high
242 ter-SEI, thanks to a combination of operando atomic force microscopy, electrochemical strain microsco
243 This is achieved using photo-conductive atomic force microscopy, grazing-incidence wide-angle X-
246 PD mouse model, along with CD spectroscopy, atomic force microscopy, immunofluorescence-based imagin
247 parative reversed-phase (RP) chromatography, atomic force microscopy, in vitro biochemical and cell a
248 , cationic, anionic, and dianionic states by atomic force microscopy, obtaining atomic resolution and
249 ed under a series of biases using conductive atomic force microscopy, revealing negligible difference
251 Here, we combine low-temperature non-contact atomic force microscopy, scanning tunneling microscopy a
253 l characterization was performed by means of atomic force microscopy, tensile biaxial deformation, an
254 n CA and nucleotides were corroborated using atomic force microscopy, transmission electron microscop
255 ectrochemical and electrical measurements in atomic force microscopy, we demonstrate that at a buried
256 tensile-force assays, immunofluorescence and atomic force microscopy, we demonstrate that immunoglobu
258 imaging, mechanochemical reconstitution and atomic force microscopy, we find that mammalian Par3 cou
263 bining oxygen sensing, X-ray scattering, and Atomic Force Microscopy, we show that mammalian pulmonar
270 electric polymer nanocomposites by combining atomic force microscopy-infrared spectroscopy (AFM-IR) w
294 in crystals of hexagonal boron nitride using atomic-force microscopy and nano-infrared spectroscopy.
296 cterized these species with transmission EM, atomic-force microscopy, CD spectroscopy, FTIR spectrosc
299 ent the modification of conductive colloidal atomic force-scanning electrochemical microscopy (AFM-SE
300 performed and combined with single-molecule atomic force spectroscopy experiments, can predict and e