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Porphyrins and other tetrapyrroles are attractive building blocks for functional nanostructures.
Acrylamido boronic acids are important building blocks for functional polymers but suffer from poor synthetic strategies and unwanted polymerisation.
One-dimensional (1D) metal-oxide nanostructures with a high aspect ratio and good crystallinity are promising as building blocks for functional device architecture.
In addition, ZnO nanostructures also exhibit the richest morphologies reported so far (e.g., nanocomb, nanoring, nanobridge, nanonail, nanobelt) [2, 6 9], making it coveted as building blocks for functional devices.
SnO2 with various morphologies such as nanoparticle, nanowire, nanosilk, nano-sawtooth, nanobelt, or nanotube are obtained by the abovementioned methods [9 11], which can be used as building blocks for functional devices [12, 13].
Polyoxometalates (POMs) have attracted much attention as building blocks for functional composite materials due to their interesting nanosized structures [1].They are superlative models for the construction of hybrid systems, hence they are considered as the potential candidates to be converted into the nanometer-sized materials.
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With either nanobiotechnology or bionanotechnology, biological molecules are indispensable building blocks for fabricating functional nanomaterials, nanodevices and nanosystems.
One-dimensional nanostructures can provide versatile building blocks for fabricating functional nanoscale electronic, optoelectronic, biomedical devices, magnetic and optical properties based on the bottom-up paradigm [16 20].
Many ZFO nanostructures can be used as versatile building blocks for fabricating functional nanodevices; however, integrating the reported methodologies for preparing nanostructured ZFO into Si-based semiconductor device processes remains a challenge.
These findings highlight the concept of guided self-organized QD ordering for formation of complex QD architectures, establishing the building blocks for future quantum functional devices.
These remarkably ordered and stable nanofibrils can be useful as building blocks for protein-based functional materials, but they are also implicated in severe neurodegenerative diseases.
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