Low‐Loss Graded Dielectrics via Active Mixing of Nanocomposite Inks during 3D Printing

Abstract

Additive manufacturing has emerged as a promising approach for fabricating graded refractive index structures that control the electromagnetic response of radio frequency (RF) devices. However, current 3D printing methods cannot produce continuous gradients from multiple materials. Here, low‐loss graded dielectrics via active mixing of nanocomposite inks composed of block copolymers and oxide nanoparticles are designed and printed. By simultaneously tailoring their rheological, printing, and their local filler particle‐to‐polymer ratio using an active mixing printhead, a conductive microstrip‐graded substrate matching network with a gradually changing dielectric response, is created. In these printed devices, the impedance of the RF signal is controlled by the graded substrate rather than by varying the conductive microstrip geometry, enabling the fabrication of smaller RF devices. This approach enables the rapid design and fabrication of high‐performance RF devices with locally tunable dielectric properties.

Document Details

Document Type
Pub Defense Publication
Publication Date
Nov 11, 2022
Source ID
10.1002/admt.202201496

Entities

People

  • Benjamin Barclay
  • Bradley Duncan
  • Devon Beck
  • Jennifer A. Lewis
  • John Russo
  • Maxwell Plaut
  • P. Bluem
  • Robert D Weeks
  • Roberto Rojas
  • Sebastien G. M. Uzel
  • Theodore Fedynyshyn

Organizations

  • Harvard University
  • Massachusetts Institute of Technology
  • United States Air Force
  • Uyttenboogaart-Eliasen Stichting

Tags

Fields of Study

  • Materials science

Readers

  • Manufacturing Engineering.
  • Microwave Engineering.
  • Nanocomposite Materials Science

Technology Areas

  • Biotechnology
  • Microelectronics