4.6 Article

Robust self-gated-carriers enabling highly sensitive wearable temperature sensors

Journal

APPLIED PHYSICS REVIEWS
Volume 8, Issue 3, Pages -

Publisher

AIP Publishing
DOI: 10.1063/5.0059204

Keywords

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Funding

  1. National Key R&D Program of China [2020YFA0709900]
  2. National Natural Science Foundation of China [51872139, 52172204]
  3. Natural Science Basic Research Program of Shaanxi [2019JLM-28]
  4. Department of Science & Technology of Shaanxi Province [2020GXLH-Z-025]
  5. Northwestern Polytechnical University [2020GXLH-Z-025]
  6. Natural Science Foundation of Jiangsu Province [BK20200702]
  7. Innovation Foundation for Doctorate Dissertation of Northwestern Polytechnical University [CX202064]

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A new type of metal-semiconductor-metal (MSM) self-gated device based on NiO/Ni heterostructure frameworks has been fabricated and utilized in wearable high-performance temperature sensors, demonstrating high sensitivity and a wide working range.
Wearable temperature sensors can obtain and convey accurate temperature information on the human body and objects. However, most reported wearable temperature sensors suffer from limitations, such as high fabrication cost and low working efficiency, sensing performance, and scalability, which impede their broad application in wearable fields. In this work, a new type of metal-semiconductor-metal (MSM) self-gated device based on NiO/Ni heterostructure frameworks is fabricated and employed in wearable high-performance temperature sensors. The MSM self-gated device is prepared via a facile and controllable in situ oxidation method and demonstrates efficient charge transportation, excellent thermal conductivity [3.74 W (m K-1)], and high thermal diffusivity (9.39 mm(2) s(-1)). The obtained temperature sensors exhibit high sensitivity (-5.04% ?C-1), wide working range (-15 to 80 C), and excellent stability (more than three months) and have been applied to monitor the temperature of objects and the human body. In particular, a flexible temperature sensor array is fabricated to measure the spatially resolved temperature distribution. The array demonstrates the bright application prospects of the sensors in the fields of human-machine interfaces and intelligent medical systems.& nbsp;Published under an exclusive license by AIP Publishing.

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