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Additive Manufacturing of High-Temperature Hybrid Electronics via Molecular-Decomposed Metals

  • Saurabh Khuje
  • , Firas Alshatnawi
  • , Detlef Smilgies
  • , Mohammed Alhendi
  • , Abdullah Islam
  • , Jason Armstrong
  • , Jian Yu
  • , Mark Poliks
  • , Shenqiang Ren
  • University of Maryland, College Park
  • State University of New York Binghamton University
  • DEVCOM Army Research Laboratory

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

As the modern electronic technology extends into operating in harsh working conditions, it calls for a system that is capable of uncompromising performance in extreme environments, thus providing a strong motivation to look for advanced materials and electronics with the capability of high-throughput and rapid prototyping. Coupled with additive manufacturing, molecular decomposition metals bypass the challenging oddities of traditional material-limited and thermally initiated metalworking, enabling high throughput and rapid prototyping of stoichiometry and composition-controlled metals. Here, a new paradigm for the design and additive manufacturing of copper metallic alloy materials onto ceramics is described by printing molecular decomposable metal materials, capable of withstanding thermo-mechanical loading, operating in extreme environments in static and dynamic conditions. The resulting printed hybrid electronics are electrically stable for 25 h of aging at 1000 °C. This curious fact paves a way for printed antenna and sensor electronics that reliably operate up to 1000 °C. These results can be further extended to establish other printable molecular decomposable materials as a platform for rapid prototyping of high temperature electronics that are suitable for harsh environments.

Original languageEnglish
Article number2311085
JournalAdvanced Functional Materials
Volume34
Issue number4
DOIs
StatePublished - Jan 22 2024

Keywords

  • antenna
  • copper─nickel
  • extreme environments
  • high temperature
  • printable electronics
  • temperature sensors

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