Breakthrough in Electronics: New Study on Pressure Conductive Rubber

A team of researchers from National Tsing-Hua University has made significant progress in the development of pressure conductive rubber (PCR) with enhanced high-frequency performance, crucial for semiconductor testing interfaces. The study focuses on synthesizing core shell onion-like carbon-nickel (CNi) particles using a hydrothermal process, optimizing six key parameters to improve bonding interactions with metallic nickel. The research has been funded by the National Science and Technology Council, Taiwan, R.O.C.

Key Takeaways:

  • The researchers successfully functionalized onion-like carbon (OLC) with carboxyl (-COOH) surface modification, facilitating thiol exchange reactions, as validated by Fourier Transform Infrared (FTIR) analysis.
  • Experimental results showed that refining synthesis conditions, including a 6-hour acid treatment, a reaction temperature of 130 degrees C, and a 72-hour reaction time, resulted in uniform CNi coatings with an average thickness of 450 nm, as confirmed by scanning electron microscopy (SEM) and energy dispersive X-ray spectroscopy (EDX) analyses.
  • The study investigated the influence of magnetic field strengths (0.7 T, 1.0 T, and 1.3 T) and magnetization durations (3 and 6 h) on particle alignment within a Polydimethylsiloxane (PDMS) matrix, observing the highest surface area packing factor (22.8 %) under a 1.0 T field for 6 h.
  • Insertion loss measurements revealed that the CNi:Ni ratio strongly influenced electromagnetic performance, with the 1:1 ratio exhibiting the widest bandwidth (-3 dB at 471.84 MHz) and the highest material density, suggesting an optimal balance between conductivity and dielectric properties.

Statistics:

  • Average thickness of CNi coatings: 450 nm
  • Highest surface area packing factor: 22.8 %
  • Widest bandwidth: -3 dB at 471.84 MHz
  • Optimal CNi:Ni ratio: 1:1
  • Reaction temperature: 130 degrees C
  • Acid treatment time: 6 hours
  • Reaction time: 72 hours
  • Magnetic field strengths: 0.7 T, 1.0 T, and 1.3 T
  • Magnetization durations: 3 and 6 h

Sources:

  • National Science and Technology Council, Taiwan, R.O.C.
  • National Tsing-Hua University
  • Diamond and Related Materials (Elsevier Science Sa, PO Box 564, 1001 Lausanne, Switzerland)
  • VerticalNews
  • Electronics Newsweekly
  • NewsRx LLC