Illusion Thermotics

Run Hu, Shuling Zhou, Ying Li, Dang-Yuan Lei, Xiaobing Luo*, Cheng-Wei Qiu*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

252 Citations (Scopus)

Abstract

“Fata Morgana” or “Mirage” phenomena have long been captivated as optical illusions, which actually relies on gradient-density air or vapor. Man-made optical illusions have witnessed significant progress by resorting to artificially structured metamaterials. Nevertheless, two long-standing challenges remain formidable: first, exotic parameters (negative or less than unity) become inevitable; second, the signature of original object is altered to that of a virtual counterpart. It is thus not able to address the holy grail of illusion per se, since a single virtual object still exposes the location. In this study, those problems are successfully addressed in a particular setup—illusion thermotics, which identically mimics the exterior thermal behavior of an equivalent reference and splits the interior original heat source into many virtual signatures. A general paradigm to design thermal illusion metadevices is proposed to manipulate thermal conduction, and empower robust simultaneous functions of moving, shaping, rotating, and splitting heat sources of arbitrary cross sections. The temperature profile inside the thermal metadevice can mislead the awareness of the real location, shape, size, and number of the actual heat sources. The present concept may trigger unprecedented development in other physical fields to realize multiple functionalized illusions in optics, electromagnetics, etc.
Original languageEnglish
Article number1707237
JournalAdvanced Materials
Volume30
Issue number22
Online published17 Apr 2018
DOIs
Publication statusPublished - 29 May 2018
Externally publishedYes

Research Keywords

  • coordinate transformation
  • splitting signatures
  • thermal camouflage
  • thermal illusion

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