Related Experiment Video
Updated: Aug 29, 2026

Optimized Fabrication Procedure for High-Quality Graphene-based Moiré Superlattice Devices
Published on: July 11, 2025
Direct-Write Laser-Induced Graphene Microstrip Patch Antennas on Medium-Density Fiberboard
Elsa M Materón1, Faustino Reyes Gómez1, Desirée Tamara Scheidt2,3
1National Institute of Telecommunications (Inatel), Santa Rita do Sapucaí, Minas Gerais 37540-000, Brazil.
Abstract:
Laser-induced graphene (LIG) has been used in flexible and wearable antennas fabricated on polymeric substrates and paper; however, these materials are not ideal for seamless integration into rigid indoor structures. Antennas integrated into such structures would represent a sustainability advantage over conventional technologies. In this work, we report LIG microstrip patch antennas fabricated directly on medium-density fiberboard (MDF), a ubiquitous wood-derived material used in indoor furniture and architectural fixtures, enabling unobtrusive radiators that can be integrated into ordinary wooden objects. MDF substrates were pretreated with sodium tetraborate and patterned via CO2-laser scribing to form a porous conductive layer with sheet resistance of approximately 9 Ω/sq, without cleanroom processing. Two inset-fed patch geometries, rectangular planar and circular conformal, were produced and validated. Impedance matching with return loss S 11 ≤ -10 dB was achieved over 3.19-4.12 GHz and 5.95-7.49 GHz for the rectangular antenna, and 2.98-3.84 GHz and 5.50-7.96 GHz for the circular antenna, in good agreement with full-wave simulations. The measured radiation patterns were consistent with the simulated modes, and the peak realized gain was approximately -2.5 dBi, limited primarily by MDF and conductor losses. With these results, the LIG-on-MDF approach is demonstrated as a scalable route to furniture-integrated antennas for short-range sub-6-GHz indoor connectivity.

