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1 f techniques used to pattern polymers on the nano (1-100 nm) and submicrometre (100-1,000 nm) scale,
4 engineer hierarchical structures with meso-, nano- and atomic architectures that give the final compo
6 ed substrate specificity for applications in nano- and biotechnology and in the enzymatic synthesis o
7 Formulating effective coatings for use in nano- and biotechnology poses considerable technical cha
10 hazard evaluation framework, which combines nano- and bulk-material properties into a hazard score,
12 fective underwater adhesives with adjustable nano- and macroscale characteristics requires an intimat
14 tical tool to examine ballistic transport in nano- and meso-scale junctions, but it necessitates that
16 an be programmed to self-assemble into novel nano- and meso-scopic architectures of desired size and
20 chalcogenide solids, with pore sizes in the nano- and mesoscale, are of potentially broad technologi
21 allows for unprecedented manipulation at the nano- and mesoscales, which has the potential to provide
25 o the development of spectacular luminescent nano- and micro-architectures, through a combination of
27 supramolecular order expressed at molecular, nano- and micro-levels is dramatically enhanced, and, im
28 r the use of bioadhesive polymers to enhance nano- and micro-particle uptake from the small intestine
30 find applications in drug and gene delivery, nano- and micro-reactors, substrates for macromolecular
31 ill offer much potential for the creation of nano- and micro-scale DNA biosensor devices in silicon.
32 f-assembly of molecular building blocks into nano- and micro-scale supramolecular architectures has o
33 precisely fabricate particles across and the nano- and micro-scale with defined shapes and compositio
34 ectrochemical biosensors and newly developed nano- and micro-scaled and aptamers based biosensors for
36 acid (RNA) from three size fractions (pico-, nano- and micro/mesoplankton), as well as from dissolved
37 l particles for the assembly of the shell of nano- and microcapsules holds great promise for the tail
38 ies and the progress made so far of bringing nano- and microcapsules with shells of densely packed co
40 strate that by intelligently exploiting both nano- and microchemical architectures and wiring up the
46 can be harnessed for "on demand" pumping in nano- and microfluidic devices powered by an intrinsic e
47 he use of rare earth tungstate and molybdate nano- and micromaterials as single materials for the gen
50 Particles formed with this combination of nano- and micrometer-scale dimensions possess a greater
51 allization) was used to prepare a mixture of nano- and micrometer-sized crystals of the monoclinic fo
53 singly used for guiding the self-assembly of nano- and micrometer-sized particles into larger scale o
56 on function associated with their locomotion.Nano- and micromotors have been demonstrated in vitro fo
58 ree common approaches to collect and process nano- and micronscale information by STXM and the corres
59 producibility and spatial autocorrelation of nano- and micronscale protein, Fe(II) and Fe(III) densit
61 dy, model drug (vitamin D3, VD3)-loaded PLGA nano- and microparticles (NMP) were prepared by a single
62 spherical, rod-, and disk-shaped polystyrene nano- and microparticles and trastuzumab as the targetin
64 of the current status of the application of nano- and microparticles in the imaging of cardiovascula
66 unctival administration, both budesonide-PLA nano- and microparticles produced sustained budesonide l
68 ubconjunctivally administered budesonide-PLA nano- and microparticles sustain retinal drug delivery.
69 er subconjunctivally administered budesonide nano- and microparticles sustain retinal drug levels.
70 I tract, we orally and rectally administered nano- and microparticles that we confirmed possessed sur
77 DNA origami manipulation and assembly at the nano- and microscale as well as other applications of th
78 phase separation of the ganglioside GM1 into nano- and microscale assemblies in a canonical lipid raf
79 , integration, and structural control on the nano- and microscale associated with the application of
81 re, we review recent strategies that combine nano- and microscale materials and devices to produce la
84 over the past decade have demonstrated that nano- and microscale particles can be organized into a l
86 c semiconductor nanowires are of interest in nano- and microscale photonic and electronic application
88 chanistic connection between peptide-induced nano- and microscale reversible collapse structures (sil
89 binding groups is increasingly used to steer nano- and microscale self-assembly processes, with compl
93 olume-atomic force microscopy, we found that nano- and microscale tendon elastic moduli increase nonl
94 erization of historical gilt silver threads, nano- and microscale textural, chemical, and structural
95 treatment residues (WTRs)], and engineered [nano- and microscale zero valent iron (ZVI)] amendments.
96 ively for their adhesive capabilities at the nano- and microscale, however, much less is known about
99 s of forming and patterning materials at the nano- and microscales are finding increased use as a med
100 earch on reaction-diffusion processes at the nano- and microscales that we find hold particular promi
102 ble indications to design more efficient ECL nano- and microsized labels for ultrasensitive bioanalys
105 logy and dimension-controlled growth of gold nano- and microstructures with a time resolution of 5 ms
107 p self-assembly process for creating surface nano- and microstructures, has been extensively studied
111 ally controlled AA' graphite exhibits unique nano- and single-crystalline feature and shows quasi-lin
112 inorganic compounds which can be regarded as nano- and sub-nano sized molecular relatives of metal-do
113 e aerosols included a significant portion of nano- and submicron-sized particles, and these can be di
114 f-consistent model of tunneling current in a nano- and subnano-meter metal-insulator-metal plasmonic
116 ive as effective ligands in the synthesis of nano- and subnanoscaled materials because of their multi
119 ed THz lasers, with impact in fields such as nano- and ultrafast photonics and optical metrology.
120 bsorption measurements on the femto-, pico-, nano-, and microsecond time scales and are examined by m
121 xamined the effects of exposure to silver in nano-, bulk-, and ionic forms on zebrafish embryos (Dani
122 anization on multiple scales, from macro- to nano-, but nanoscale control of cardiac function has not
123 ein-rich structures that ranges from uniform nano-, meso- and microscale puncta (distinct protein dro
125 terial synthesis and characterization at the nano-, micro- and mesoscales to random library screening
126 now have thousands of studies focused on the nano-, micro-, and whole-animal mechanics of gecko adhes
127 materials as precursors for the synthesis of nano-/micro-sized oxides, and their application as sacri
129 d biodegradable bilayer MN arrays containing nano - microparticles for targeted and sustained intrade
130 ghlight the properties and results of Ac-DEX nano-/microparticles as well as the use of the polymer i
133 n that photoelectrodes made of semiconductor nano-/microwire arrays can have better photoelectrochemi
134 wall nanotubes (MWNTs), and hyperfullerenes (nano-"onions") were synthesized by several techniques an
135 for producing high-quality spherical carbon nano-'onions' in large quantities without the use of vac
138 monstrated thus far, however, have relied on nano- or micro-fabricated artificial composite materials
139 in an appropriate solvent self-assemble into nano- or micro-scale network structures resulting in the
141 H(2)-0.1TiH(2) system is superior to undoped nano- or micrometer-scaled MgH(2) with respect to the hy
143 technique coupled with preconcentration onto nano- or microparticle-based traps prior to analysis for
148 ometers to allow analysis of biomolecules at nano- or picomole quantities, reducing the required amou
149 rent characteristics in microscopic domains (nano-, pico- and femtoliter range) with respect to usual
151 acteristics in microscopic solution volumes (nano-, pico-, and femtoliter range) compared to the usua
152 cally stable microscopic aqueous droplets of nano-, pico-, and femtoliter volumes were made and kept
153 nt of the luminescence intensity at 645nm of nano [Sm-(TC)2](+) complex doped in sol-gel matrix by va
154 analogous to the use of optically triggered nano-"sonicators" deep inside the body for drug delivery
156 e growth of graphene into desired micro- and nano- structures with control over placement, orientatio
159 sed formulations utilize silk's well-defined nano- through microscale structural hierarchy, stimuli-r
160 dynamics of CAP-Gly on time scales spanning nano- through milliseconds reveals its unusually high mo
161 ives estimates of human exposure to dietary (nano-) TiO(2), and discusses the impact of the nanoscale
162 depend on their microstructure, which is the nano- to centimeter scale arrangement of phases and defe
163 edical devices including precisely patterned nano- to centimeter scale polyhedral containers, scaffol
165 es for nicotinamide-dependent enzymes in the nano- to femtomole scale, in alternative enzymatic assay
168 ials with a specific emphasis on advances in nano- to macroscale control, static to dynamic functiona
169 er- and intracellular heterogeneity from the nano- to macroscale is captured and dimensionally preser
171 ique platform for performing high-throughput nano- to macroscale photochemistry with relevance to bio
172 Ts with a full structural size spectrum from nano- to micro- to macro-scale by using a variety of in
176 ation of natural, engineered, and incidental nano- to micro-size particles are beneficial to assessin
179 5-80 degrees C) indicated rapid formation of nano- to micrometer sized HA crystals on granular limest
180 re we provide a novel method of synthesizing nano- to micrometer sized HA on the surfaces of granular
182 coiled coils with affinities that range from nano- to micromolar [Cu(II)], and picomolar [Cu(I)].
183 oxide species formed during autoxidation of nano- to micromolar levels of NO were examined using the
184 anup and found to more completely remove the nano- to micromole amounts of anions (and cations) in HP
185 nfined metallic surfaces, we observe in situ nano- to microscale dissolution and pit formation (quali
186 vel assemblies have been obtained, including nano- to microscale fibers, gels, spheres, and meshes, e
187 entation, movement, and sense of rotation of nano- to microscale objects is currently an active resea
189 hermoresponsive hydrogel particles, from the nano- to microscale, using a single starting material.
192 NiP occurs efficiently in all systems on the nano- to microsecond time scale, through three distinct
196 t glucose affinities (K(d)) covering the low nano- to mid- millimolar range can be targeted genetical
197 ast two ternary complex intermediates in the nano- to millisecond time scale (1000-10000 s-1) that eq
203 he domain by dynamics of the backbone on the nano- to picosecond time-scale shown by (15)N relaxation
204 the semi-quantitative analysis of both fast (nano- to picosecond) and intermediate (micro- to millise
209 that control cellular interactions from the nano- to the microscale, allowing more precise quantitat
211 allows a broad separation range from several nano- up to micrometers and enables a superior character
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