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Variable-Temperature Electron Transport and Dipole Polarization Turning Flexible Multifunctional Microsensor beyond
Mao-Sheng Cao1, Xi-Xi Wang1, Min Zhang1
1School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, China.
Advanced Materials (Deerfield Beach, Fla.)
|January 30, 2020
Summary
This study introduces a flexible microsensor that integrates multiple sensing capabilities and electromagnetic interference shielding. It converts electromagnetic radiation into usable energy, paving the way for advanced intelligent devices.
Area of Science:
- Materials Science
- Electrical Engineering
- Nanotechnology
Background:
- The proliferation of intelligent devices and
- Big Data
- intensifies electromagnetic radiation challenges.
- Current technologies struggle to manage electromagnetic interference (EMI) effectively.
Purpose of the Study:
- To develop a flexible, multifunctional microsensor for intelligent devices.
- To address the growing issue of electromagnetic radiation.
- To integrate multiple perception capabilities and EMI shielding within a single device.
Main Methods:
- Development of a novel flexible microsensor with integrated non-crosstalk multiple perception.
- Implementation of green electromagnetic interference shielding within a single pixel.
- Exploitation of variable-temperature electromagnetic response for energy harvesting.
Main Results:
- The microsensor demonstrates satisfactory sensitivity and fast information feedback.
- It successfully integrates multiple sensing functions and EMI shielding in one pixel.
- The device converts electromagnetic radiation into self-generated power.
Conclusions:
- The proposed microsensor offers a new paradigm for intelligent devices by transforming EMI threats into energy.
- This innovation has significant implications for next-generation technologies in aerospace, communications, and medical fields.
- The device opens new directions for fields requiring advanced sensing and energy harvesting.

