Login / Signup

Highly Aligned Carbon Nanowire Array by E-Field Directed Assembly of PAN-Containing Block Copolymers.

Kyu Hyo HanHohyung KangGil Yong LeeHo Jin LeeHyeong Min JinSeung Keun ChaTaeyoung YunJang Hwan KimGeon Gug YangHee Jae ChoiYoung Kyu KoHee-Tae JungSang Ouk Kim
Published in: ACS applied materials & interfaces (2020)
Nanoscale engineering of carbon materials is immensely demanded in various scientific areas. We present highly ordered nitrogen-doped carbon nanowire arrays via block copolymer (BCP) self-assembly under an electric field. Large dielectric constant difference between distinct polymer blocks offers rapid alignment of PMMA-b-PAN self-assembled nanodomains under an electric field. Lithographic patterning of the graphene electrode as well as straightforward thermal carbonization of the PAN block creates well-aligned carbon nanowire device structures. Diverse carbon nanopatterns including radial and curved arrays can be readily assembled by the modification of electrode shapes. Our carbon nanopatterns bear a nitrogen content over 26%, highly desirable for NO2 sensing, as the nitrogen element acts as adsorption sites for NO2 molecules. Aligned carbon nanowire arrays exhibits a 6-fold enhancement of NO2 sensitivity from a randomly aligned counterpart. Taking advantage of well-established benefits from device-oriented BCP nanopatterning, our approach proposes a viable route to highly ordered carbon nanostructures compatible to next-generation device architectures.
Keyphrases
  • mass spectrometry
  • drug delivery
  • risk assessment
  • heavy metals
  • atomic force microscopy
  • single cell
  • drug release