A Real-Time Self-Adaptive Thermal Metasurface

  • Jun Guo
  • , Guoqiang Xu
  • , Di Tian
  • , Zhiguo Qu
  • , Cheng Wei Qiu

Research output: Contribution to journalArticlepeer-review

55 Scopus citations

Abstract

Emerging metamaterials have served as an efficient strategy for the realization of unconventional heat control and management using structural thermal properties, and many functional thermal metadevices have been investigated. However, thermal functions are usually fixed or limited in the switching range. Thus far, real-time thermal regulation is elusive for thermal metamaterials because of deterministic artificial metastructures and uncontrollable phase transitions, coupled with the absence of dynamic adaptability. Here, a self-adaptive metasurface platform to implement programmable thermal functions via the automatic evolution of thermoelectric heat sources and real-time control of the driven voltage is reported. The proof-of-concept smart platform experimentally demonstrates arbitrary switching between elaborate thermal patterns consolidated into an active thermoelectric element matrix. Further, thermal pixels and feedback control systems are integrated into printed circuit boards, resulting in self-adaptability to any thermal requirements. This study sets up a new paradigm for arbitrary transitions between exquisite thermal patterns and is expected to pave the way for real-time thermal management in a programming formation.

Original languageEnglish
Article number2201093
JournalAdvanced Materials
Volume34
Issue number24
DOIs
StatePublished - 16 Jun 2022

Keywords

  • real-time regulation
  • spatial evolution
  • thermal camouflage
  • thermal metasurfaces

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