AI Article Synopsis

  • The study introduces a method called controlled dynamic nanoinscribing (DNI) for creating customized nanopatterns with different shapes, depths, and dimensions on flexible materials without leaving any rough edges.
  • By adjusting key processing factors like inscribing force, temperature, and substrate feed rate, researchers can fine-tune the nanopatterns, allowing for both rounded and angular profiles.
  • The technique also enables the creation of complex patterns with varied depths and designs, which can be applied to various fields such as precision machinery, transparent electronics, and wearable devices, exemplified by the ability to control light diffusion in LEDs using DNI nanopatterns.

Article Abstract

We present that the tailored nanopatterning with tunable shape, depth, and dimension for diverse application-specific designs can be realized by utilizing controlled dynamic nanoinscribing (DNI), which can generate bur-free plastic deformation on various flexible substrates continuous mechanical inscription of a small sliced edge of a nanopatterned mold in a compact and vacuum-free system. Systematic controlling of prime DNI processing parameters including inscribing force, temperature, and substrate feed rate can determine the nanopattern depths and their specific profiles from rounded to angular shapes as a summation of the force-driven plastic deformation and heat-driven thermal deformation. More complex nanopatterns with gradient depths and/or multidimensional profiles can also be readily created by modulating the horizontal mold edge alignment and/or combining sequential DNI strokes, which otherwise demand laborious and costly procedures. Many practical user-specific applications may benefit from this study by tailor-making the desired nanopattern structures within desired areas, including precision machine and optics components, transparent electronics and photonics, flexible sensors, and reattachable and wearable devices. We demonstrate one vivid example in which the light diffusion direction of a light-emitting diode can be tuned by application of specifically designed DNI nanopatterns.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acsnano.9b04221DOI Listing

Publication Analysis

Top Keywords

tailored nanopatterning
8
tunable shape
8
shape depth
8
depth dimension
8
plastic deformation
8
nanopatterning controlled
4
controlled continuous
4
continuous nanoinscribing
4
nanoinscribing tunable
4
dimension tailored
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!