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1 ized microscale arrays fabricated by dip-pen nanolithography.
2 hermal, in addition to conventional, dip-pen nanolithography.
3 ts using nanoshaving, an AFM-based method of nanolithography.
4 s such as real-time biomolecular imaging and nanolithography.
5 microfluidics, capillary chromatography, and nanolithography.
6 ies and thereby patterns produced in dip-pen nanolithography.
7 e exploited to enhance patterning using soft nanolithography.
8 ducting polymers deposited within by dip-pen nanolithography.
9 tures within libraries generated via dip-pen nanolithography.
10 atomic force microscopy technique of dip-pen nanolithography.
11 r, often relies on complicated and expensive nanolithography.
12 ment, establishes a new paradigm for polymer nanolithography, allowing rapid (of the order of millise
13 tics of polymer crystal growth using dip-pen nanolithography and an atomic force microscope tip coate
14 Fabricated using three-dimensional colloidal nanolithography and atomic layer deposition, the process
18 wever, existing technologies such as dip-pen nanolithography and inkjet printing are currently unsuit
20 d to combine scanning probe microscopy (SPM) nanolithography and modified SPM break junction techniqu
21 th common patterning methods such as dip-pen nanolithography and multichannel microfluidic delivery d
22 chemical syringe include fluid dispensing in nanolithography and pumping in microfluidic systems.
23 rs using atomic force microscopy (AFM)-based nanolithography and subsequent selective immobilization
24 escribe a protocol that combines solid-state nanolithography and supported lipid membrane techniques
26 fully patterned on gold surfaces via dip-pen nanolithography, and the predicted molecular orientation
27 patial-frequency template, will be useful in nanolithography applications such as the formation of hi
30 n nanowire was fabricated using the top-down nanolithography approach, through nanostructuring of sil
32 micron-scale focal spots for high-throughput nanolithography, as they uniquely feature large numerica
33 m of the inks most typically used in dip-pen nanolithography by patterning both 16-mercaptohexadecano
34 d shallow compartments produced by STM-based nanolithography carried out on a graphite surface with a
35 transmission efficiency with applications to nanolithography, data storage, and bio-chemical sensing.
42 this paper, we demonstrate that the dip pen nanolithography (DPN) method can be used to precisely fu
46 es and use microcontact printing and Dip-Pen Nanolithography (DPN) to pattern alkanethiols with both
56 organosilane MNLs are used as lubricants, in nanolithography, for corrosion protection and in the cry
62 atterned metasurfaces, which require complex nanolithography, limiting their practical applications,
63 eous-acid clusters are relevant to inorganic nanolithography, metal-organic frameworks (MOFs), cataly
68 we demonstrate that a novel form of dip-pen nanolithography provides an effective means to pattern t
70 -tip, soft-spring lithography is a versatile nanolithography strategy that should be widely adopted b
72 ting, an atomic force microscopy (AFM)-based nanolithography technique, to fabricate thiolated DNA na
73 canning probe and large-area cantilever free nanolithography techniques, resulting in a library of de
78 w-cost, high-throughput approach to maskless nanolithography that uses an array of plasmonic lenses t
79 These studies demonstrate that biomolecular nanolithography (the arrangement of nanoscale building b
81 In light of the scalability limitations of nanolithography, this work presents an important step an
82 ly used in laser-assisted nanopatterning and nanolithography to pattern nanoscale features on a large
83 Such particles are made by (i) using dip-pen nanolithography to prepare nanoreactors consisting of me
84 This work demonstrates the potential of 3D nanolithography towards wafer-scale production, showing
85 d novel lithography technique--electrostatic nanolithography using atomic force microscopy--that gene
89 NFP combines the high-resolution of dip-pen nanolithography with the efficient continuous liquid fee
90 y merges the feature size control of dip-pen nanolithography with the large-area capability of contac