4.5 Article

Tunable and highly sensitive temperature sensor based on graphene photonic crystal fiber*

Journal

CHINESE PHYSICS B
Volume 30, Issue 11, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/1674-1056/ac11d0

Keywords

graphene; photonic crystal fiber; temperature sensor; high sensitivity; Fermi level

Funding

  1. National Natural Science Foundation of China [52021006, 52025023, 51991342, 11888101]
  2. Key R&D Program of Guangdong Province, China [2019B010931001, 2020B010189001, 2018B030327001]
  3. Pearl River Talent Recruitment Program of Guangdong Province, China [2019ZT08C321]
  4. Strategic Priority Research Program of Chinese Academy of Sciences [XDB33000000]
  5. Beijing Natural Science Foundation, China [JQ19004]
  6. Beijing Municipal Science & Technology Commission, China [Z181100004818003]
  7. China Postdoctoral Science Foundation [2020M680177, 2019M660280]
  8. National Postdoctoral Program for Innovative Talents of China [BX20190016]

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A tunable and highly sensitive temperature sensor based on graphene photonic crystal fiber (Gr-PCF) has been proposed, which efficiently enhances the temperature detection ability of graphene with a non-destructive integration of graphene into the holes of PCF.
Optical fiber temperature sensors have been widely employed in enormous areas ranging from electric power industry, medical treatment, ocean dynamics to aerospace. Recently, graphene optical fiber temperature sensors attract tremendous attention for their merits of simple structure and direct power detecting ability. However, these sensors based on transfer techniques still have limitations in the relatively low sensitivity or distortion of the transmission characteristics, due to the unsuitable Fermi level of graphene and the destruction of fiber structure, respectively. Here, we propose a tunable and highly sensitive temperature sensor based on graphene photonic crystal fiber (Gr-PCF) with the non-destructive integration of graphene into the holes of PCF. This hybrid structure promises the intact fiber structure and transmission mode, which efficiently enhances the temperature detection ability of graphene. From our simulation, we find that the temperature sensitivity can be electrically tuned over four orders of magnitude and achieve up to similar to 3.34 x 10(-3) dB/(cm.degrees C) when the graphene Fermi level is similar to 35 meV higher than half the incident photon energy. Additionally, this sensitivity can be further improved by similar to 10 times through optimizing the PCF structure (such as the fiber hole diameter) to enhance the light-matter interaction. Our results provide a new way for the design of the highly sensitive temperature sensors and broaden applications in all-fiber optoelectronic devices.

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